Health and safety in 12 different countries.
\\n\\n
IntechOpen was founded by scientists, for scientists, in order to make book publishing accessible around the globe. Over the last two decades, this has driven Open Access (OA) book publishing whilst levelling the playing field for global academics. Through our innovative publishing model and the support of the research community, we have now published over 5,700 Open Access books and are visited online by over three million academics every month. These researchers are increasingly working in broad technology-based subjects, driving multidisciplinary academic endeavours into human health, environment, and technology.
\\n\\nBy listening to our community, and in order to serve these rapidly growing areas which lie at the core of IntechOpen's expertise, we are launching a portfolio of Open Science journals:
\\n\\nAll three journals will publish under an Open Access model and embrace Open Science policies to help support the changing needs of academics in these fast-moving research areas. There will be direct links to preprint servers and data repositories, allowing full reproducibility and rapid dissemination of published papers to help accelerate the pace of research. Each journal has renowned Editors in Chief who will work alongside a global Editorial Board, delivering robust single-blind peer review. Supported by our internal editorial teams, this will ensure our authors will receive a quick, user-friendly, and personalised publishing experience.
\\n\\n"By launching our journals portfolio we are introducing new, dedicated homes for interdisciplinary technology-focused researchers to publish their work, whilst embracing Open Science and creating a unique global home for academics to disseminate their work. We are taking a leap toward Open Science continuing and expanding our fundamental commitment to openly sharing scientific research across the world, making it available for the benefit of all." Dr. Sara Uhac, IntechOpen CEO
\\n\\n"Our aim is to promote and create better science for a better world by increasing access to information and the latest scientific developments to all scientists, innovators, entrepreneurs and students and give them the opportunity to learn, observe and contribute to knowledge creation. Open Science promotes a swifter path from research to innovation to produce new products and services." Alex Lazinica, IntechOpen founder
\\n\\nIn conclusion, Natalia Reinic Babic, Head of Journal Publishing and Open Science at IntechOpen adds:
\\n\\n“On behalf of the journal team I’d like to thank all our Editors in Chief, Editorial Boards, internal supporting teams, and our scientific community for their continuous support in making this portfolio a reality - we couldn’t have done it without you! With your support in place, we are confident these journals will become as impactful and successful as our book publishing program and bring us closer to a more open (science) future.”
\\n\\nWe invite you to visit the journals homepage and learn more about the journal’s Editorial Boards, scope and vision as all three journals are now open for submissions.
\\n\\nFeel free to share this news on social media and help us mark this memorable moment!
\\n\\n\\n"}]',published:!0,mainMedia:{caption:"",originalUrl:"/media/original/237"}},components:[{type:"htmlEditorComponent",content:'
After years of being acknowledged as the world's leading publisher of Open Access books, today, we are proud to announce we’ve successfully launched a portfolio of Open Science journals covering rapidly expanding areas of interdisciplinary research.
\n\n\n\nIntechOpen was founded by scientists, for scientists, in order to make book publishing accessible around the globe. Over the last two decades, this has driven Open Access (OA) book publishing whilst levelling the playing field for global academics. Through our innovative publishing model and the support of the research community, we have now published over 5,700 Open Access books and are visited online by over three million academics every month. These researchers are increasingly working in broad technology-based subjects, driving multidisciplinary academic endeavours into human health, environment, and technology.
\n\nBy listening to our community, and in order to serve these rapidly growing areas which lie at the core of IntechOpen's expertise, we are launching a portfolio of Open Science journals:
\n\nAll three journals will publish under an Open Access model and embrace Open Science policies to help support the changing needs of academics in these fast-moving research areas. There will be direct links to preprint servers and data repositories, allowing full reproducibility and rapid dissemination of published papers to help accelerate the pace of research. Each journal has renowned Editors in Chief who will work alongside a global Editorial Board, delivering robust single-blind peer review. Supported by our internal editorial teams, this will ensure our authors will receive a quick, user-friendly, and personalised publishing experience.
\n\n"By launching our journals portfolio we are introducing new, dedicated homes for interdisciplinary technology-focused researchers to publish their work, whilst embracing Open Science and creating a unique global home for academics to disseminate their work. We are taking a leap toward Open Science continuing and expanding our fundamental commitment to openly sharing scientific research across the world, making it available for the benefit of all." Dr. Sara Uhac, IntechOpen CEO
\n\n"Our aim is to promote and create better science for a better world by increasing access to information and the latest scientific developments to all scientists, innovators, entrepreneurs and students and give them the opportunity to learn, observe and contribute to knowledge creation. Open Science promotes a swifter path from research to innovation to produce new products and services." Alex Lazinica, IntechOpen founder
\n\nIn conclusion, Natalia Reinic Babic, Head of Journal Publishing and Open Science at IntechOpen adds:
\n\n“On behalf of the journal team I’d like to thank all our Editors in Chief, Editorial Boards, internal supporting teams, and our scientific community for their continuous support in making this portfolio a reality - we couldn’t have done it without you! With your support in place, we are confident these journals will become as impactful and successful as our book publishing program and bring us closer to a more open (science) future.”
\n\nWe invite you to visit the journals homepage and learn more about the journal’s Editorial Boards, scope and vision as all three journals are now open for submissions.
\n\nFeel free to share this news on social media and help us mark this memorable moment!
\n\n\n'}],latestNews:[{slug:"webinar-introduction-to-open-science-wednesday-18-may-1-pm-cest-20220518",title:"Webinar: Introduction to Open Science | Wednesday 18 May, 1 PM CEST"},{slug:"step-in-the-right-direction-intechopen-launches-a-portfolio-of-open-science-journals-20220414",title:"Step in the Right Direction: IntechOpen Launches a Portfolio of Open Science Journals"},{slug:"let-s-meet-at-london-book-fair-5-7-april-2022-olympia-london-20220321",title:"Let’s meet at London Book Fair, 5-7 April 2022, Olympia London"},{slug:"50-books-published-as-part-of-intechopen-and-knowledge-unlatched-ku-collaboration-20220316",title:"50 Books published as part of IntechOpen and Knowledge Unlatched (KU) Collaboration"},{slug:"intechopen-joins-the-united-nations-sustainable-development-goals-publishers-compact-20221702",title:"IntechOpen joins the United Nations Sustainable Development Goals Publishers Compact"},{slug:"intechopen-signs-exclusive-representation-agreement-with-lsr-libros-servicios-y-representaciones-s-a-de-c-v-20211123",title:"IntechOpen Signs Exclusive Representation Agreement with LSR Libros Servicios y Representaciones S.A. de C.V"},{slug:"intechopen-expands-partnership-with-research4life-20211110",title:"IntechOpen Expands Partnership with Research4Life"},{slug:"introducing-intechopen-book-series-a-new-publishing-format-for-oa-books-20210915",title:"Introducing IntechOpen Book Series - A New Publishing Format for OA Books"}]},book:{item:{type:"book",id:"6873",leadTitle:null,fullTitle:"Magnesium - The Wonder Element for Engineering/Biomedical Applications",title:"Magnesium",subtitle:"The Wonder Element for Engineering/Biomedical Applications",reviewType:"peer-reviewed",abstract:"Magnesium-based materials are rapidly emerging in recent years to primarily assist in mitigating global warming and for health benefits. They are seen as materials of the future due to their lightweight, nutritional characteristics and abundance on Earth. Their applications are in a wide array of engineering and biomedical sectors, promising a multi-billion-dollar market in the very near future. The applicability of magnesium-based materials also suits the current emphasis on sustainability and a greener earth. This book was thus conceptualized and highlights important areas of current research and future directions including fundamental and applied principles related to primary and secondary processing types, microstructural evolution, machining, joining, and the past and current application scenario of magnesium-based materials.",isbn:"978-1-78923-842-6",printIsbn:"978-1-78923-841-9",pdfIsbn:"978-1-83880-615-6",doi:"10.5772/intechopen.73398",price:119,priceEur:129,priceUsd:155,slug:"magnesium-the-wonder-element-for-engineering-biomedical-applications",numberOfPages:128,isOpenForSubmission:!1,isInWos:1,isInBkci:!1,hash:"36f7a7ad1be568643bb9e63cbf6d96e5",bookSignature:"Manoj Gupta",publishedDate:"February 26th 2020",coverURL:"https://cdn.intechopen.com/books/images_new/6873.jpg",numberOfDownloads:5560,numberOfWosCitations:7,numberOfCrossrefCitations:6,numberOfCrossrefCitationsByBook:0,numberOfDimensionsCitations:18,numberOfDimensionsCitationsByBook:1,hasAltmetrics:0,numberOfTotalCitations:31,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"September 3rd 2018",dateEndSecondStepPublish:"September 24th 2018",dateEndThirdStepPublish:"November 23rd 2018",dateEndFourthStepPublish:"February 11th 2019",dateEndFifthStepPublish:"April 12th 2019",currentStepOfPublishingProcess:5,indexedIn:"1,2,3,4,5,6,7",editedByType:"Edited by",kuFlag:!1,featuredMarkup:null,editors:[{id:"206890",title:"Prof.",name:"Manoj",middleName:null,surname:"Gupta",slug:"manoj-gupta",fullName:"Manoj Gupta",profilePictureURL:"https://mts.intechopen.com/storage/users/206890/images/system/206890.jpg",biography:"Dr. Manoj Gupta was formerly the Head of Materials Division of\nthe Mechanical Engineering Department and Director designate\nof the Materials Science and Engineering Initiative at NUS, Singapore. In August 2017, he was chosen for the Top 1% Scientist\nof the World position by The Universal Scientific Education and\nResearch Network and achieved 2.5% among scientists as per\nResearchGate. He has published over 545 peer-reviewed journal\npapers and owns two US patents and one trade secret. His current h-index is 63,\nRG index is > 47, and citations are greater than 15000. He has also co-authored six\nbooks, published by John Wiley, Springer, and MRF - USA. He is Editor-in-chief/\nEditor of twelve international peer-reviewed journals. A multiple award winner, he\nactively collaborates with and visits Japan, France, Saudi Arabia, Qatar, China, USA\nand India as a visiting researcher, professor, and chair professor",institutionString:"Department of Mechanical Engineering, National University of Singapore",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"2",totalChapterViews:"0",totalEditedBooks:"1",institution:{name:"National University of Singapore",institutionURL:null,country:{name:"Singapore"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"930",title:"Metallurgy",slug:"materials-science-composite-materials-metallurgy"}],chapters:[{id:"70765",title:"Introductory Chapter: An Insight into Fascinating Potential of Magnesium",doi:"10.5772/intechopen.90866",slug:"introductory-chapter-an-insight-into-fascinating-potential-of-magnesium",totalDownloads:551,totalCrossrefCites:1,totalDimensionsCites:3,hasAltmetrics:0,abstract:null,signatures:"Sravya Tekumalla and Manoj Gupta",downloadPdfUrl:"/chapter/pdf-download/70765",previewPdfUrl:"/chapter/pdf-preview/70765",authors:[{id:"206890",title:"Prof.",name:"Manoj",surname:"Gupta",slug:"manoj-gupta",fullName:"Manoj Gupta"},{id:"317582",title:"Dr.",name:"Sravya",surname:"Tekumalla",slug:"sravya-tekumalla",fullName:"Sravya Tekumalla"}],corrections:null},{id:"65447",title:"Synthesis of Magnesium Based Nano-composites",doi:"10.5772/intechopen.84189",slug:"synthesis-of-magnesium-based-nano-composites",totalDownloads:940,totalCrossrefCites:1,totalDimensionsCites:3,hasAltmetrics:0,abstract:"Magnesium based nanocomposites are new lightweight and high-performance materials for potential applications in automotive, aerospace, space, electronics, sports and biomedical sectors primarily due to their lower density when compared to aluminum-based materials and steels. Synthesis of magnesium-based materials is relatively challenging and accordingly this chapter explicitly provides an insight into various techniques hitherto devised/adopted by various researcher for synthesizing magnesium based nano-composites (MMNCs). Overall processing of MMNCs often includes combination of primary and secondary processing. Primary processing fundamentally leads to the initial formulation and creation of MMNC ingots by solid, semi-solid or liquid state processing routes. This is followed by secondary processing that includes plastic deformation or severe plastic deformation to alleviate inhomogeneity, clustering of particles and fabrication defects to enhance the properties of the MMNCs. This chapter provides an insight into different fabrication methodologies, their benefits and limitations for MMNCs.",signatures:"Srinivasan Murugan, Quy Bau Nguyen and Manoj Gupta",downloadPdfUrl:"/chapter/pdf-download/65447",previewPdfUrl:"/chapter/pdf-preview/65447",authors:[{id:"206890",title:"Prof.",name:"Manoj",surname:"Gupta",slug:"manoj-gupta",fullName:"Manoj Gupta"},{id:"277150",title:"Dr.",name:"Srinivasan",surname:"Murugan",slug:"srinivasan-murugan",fullName:"Srinivasan Murugan"},{id:"277154",title:"Dr.",name:"Nguyen Quy",surname:"Bau",slug:"nguyen-quy-bau",fullName:"Nguyen Quy Bau"}],corrections:null},{id:"68609",title:"Severely Plastic Deformed Magnesium Based Alloys",doi:"10.5772/intechopen.88778",slug:"severely-plastic-deformed-magnesium-based-alloys",totalDownloads:702,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:0,abstract:"Magnesium can be replaced with materials which experience strain controlled fatigue in their respective applications. Still, there are infrequent predicaments with utilizing magnesium alloys, comprising lower strength, fatigue life, ductility, toughness, and creep resistant attributes correlate with aluminum alloys. Some recent studies have been affirming that through the severe plastic deformation process, particularly equal-channel angular pressing (ECAP) method promotes very significant ultra-grain refinement in bulk solids, which enhances the mechanical properties. ECAP with a 90° clockwise rotation around the billet axis between consecutive passes in route BC has improved the ductile characteristics with increased yield strength and rate of elongation which leads to a greater fatigue life because ultra-fine grain refinement can be able to resist the crack propagations. To attain the plasticity at higher temperature magnesium and its alloys are required to undergo extrusion operation before proceeding to the multiple pass ECAP at 200°C because the magnesium alloys exhibit a limited number of slip systems due to its hexagonal crystal structure.",signatures:"Ramesh Kumar Subramanian, Arun Kumar Srirangan and SreeArravind Mani",downloadPdfUrl:"/chapter/pdf-download/68609",previewPdfUrl:"/chapter/pdf-preview/68609",authors:[{id:"277221",title:"Dr.",name:"Ramesh Kumar",surname:"Subramanian",slug:"ramesh-kumar-subramanian",fullName:"Ramesh Kumar Subramanian"},{id:"277224",title:"Dr.",name:"Arun Kumar",surname:"Srirangan",slug:"arun-kumar-srirangan",fullName:"Arun Kumar Srirangan"},{id:"291047",title:"Mr.",name:"Sreearravind",surname:"M",slug:"sreearravind-m",fullName:"Sreearravind M"}],corrections:null},{id:"70050",title:"Fatigue of Magnesium-Based Materials",doi:"10.5772/intechopen.85226",slug:"fatigue-of-magnesium-based-materials",totalDownloads:576,totalCrossrefCites:1,totalDimensionsCites:5,hasAltmetrics:0,abstract:"Magnesium alloys and metal matrix composites (MMCs) are attractive materials for biomedical application. Magnesium has a module of elasticity that is close to that of human bones and it is biocompatible with the human body. Human body fluids make a corrosive environment to magnesium. In addition, different body parts are subjected to cyclic loading reaching a magnitude of about 80 MPa and an estimated total of 106 cycles per year. Therefore, understanding the fatigue behavior of magnesium alloys and magnesium metal matrix composites (MMCs) is an essential aspect especially when they are used as load bearing components. Magnesium has a hexagonal closed-packed (HCP) lattice structure with a c/a ratio of 1.623, and it does not have enough independent slip systems to sustain large plastic deformation. Therefore, magnesium deforms plastically by two different mechanisms: slipping and twinning. Twinning-detwinning deformation is manifested in the cyclic stress-strain response of wrought magnesium alloys when loaded along the working direction. A significant stress asymmetry is usually observed resulting in the development of high mean stress. Research on magnesium and its alloys is rapidly increasing. This chapter presents different aspects of fatigue, in general, and on magnesium in particular, including experimental method, damage models and fatigue life equation.",signatures:"Jafar Albinmousa",downloadPdfUrl:"/chapter/pdf-download/70050",previewPdfUrl:"/chapter/pdf-preview/70050",authors:[{id:"272605",title:"Dr.",name:"Jafar",surname:"Albinmousa",slug:"jafar-albinmousa",fullName:"Jafar Albinmousa"}],corrections:null},{id:"66399",title:"Abrasive Water Jet Cutting: A Risk-Free Technology for Machining Mg-Based Materials",doi:"10.5772/intechopen.85209",slug:"abrasive-water-jet-cutting-a-risk-free-technology-for-machining-mg-based-materials",totalDownloads:1026,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Mg-based materials are considered to be the most machinable of all materials due to their good machinability. Though conventional machining of Mg-based materials is a topic that has been widely discussed, they are associated with ignition issues. Ignition risk in conventional machining of Mg-based materials thus cannot be denied and should be avoided. Literature has witnessed ignition risk when machining temperature reaches above 450°C during turning and milling processes, and some cases are reported with fire hazard. In order to obtain the safest machining atmosphere, abrasive water jet machining, a most desired machining technology for machining Mg-based materials, is discussed in the present chapter. The text covers ignition risk in conventional machining of Mg-based materials, an overview of non-traditional methods for machining Mg-based materials, advantages of abrasive water jet machining over other methods, abrasive water jet linear cutting of Mg alloys and composites, and drilling of Mg alloys. Experimental investigations are carried out to know the effect of abrasive water jet process parameters on machining Mg alloys and Mg nanocomposites. Surface topography of cut surfaces is analyzed. Suitability of abrasive water jet in drilling Mg alloys is justified by comparing results with holes drilled by conventional drilling and jig boring.",signatures:"Niranjan Channagiri Anandatirthachar, S. Srinivas and M. Ramachandra",downloadPdfUrl:"/chapter/pdf-download/66399",previewPdfUrl:"/chapter/pdf-preview/66399",authors:[{id:"273898",title:"Mr.",name:"Niranjan",surname:"C A",slug:"niranjan-c-a",fullName:"Niranjan C A"},{id:"286668",title:"Dr.",name:"Srinivas",surname:"Satyanarayana",slug:"srinivas-satyanarayana",fullName:"Srinivas Satyanarayana"},{id:"286670",title:"Dr.",name:"Ramachandra",surname:"Madhavarao",slug:"ramachandra-madhavarao",fullName:"Ramachandra Madhavarao"}],corrections:null},{id:"66830",title:"Dissimilar Welding and Joining of Magnesium Alloys: Principles and Application",doi:"10.5772/intechopen.85111",slug:"dissimilar-welding-and-joining-of-magnesium-alloys-principles-and-application",totalDownloads:932,totalCrossrefCites:2,totalDimensionsCites:3,hasAltmetrics:0,abstract:"The growing concerns regarding fuel consumption within the aerospace and transportation industries make the development of fuel-efficient systems a significant engineering challenge. Currently, materials are selected because of their abilities to satisfy engineering demands for good thermal conductivity, strength-to-weight ratio, and tensile strength. These properties make magnesium an excellent option for various industrial or biomedical applications, given that is the lightest structural metal available. The utilization of magnesium alloys, however, requires suitable welding and joining processes that minimizes microstructural changes while maintaining good joint/bond strength. Currently, magnesium are joined using; mechanical fastening, adhesive bonding, brazing, fusion welding processes or diffusion bonding process. Fusion welding is the conventional process used for joining similar metals. However, the application of any welding technique to join dissimilar metals presents additional difficulties, the principal one being; the reaction of the two metals at the joint interface can create intermetallic compounds that may have unfavorable properties and metallurgical disruptions which deteriorates the joint performance. This chapter investigates the welding and joining technologies that are currently used to join magnesium alloys with emphasis on the development of multi-material structures for applications in the biomedical industries. Multi-material structures often provide the most efficient design solution to engineering challenges.",signatures:"Kavian O. Cooke, Abdulaziz Alhazaa and Anas M. Atieh",downloadPdfUrl:"/chapter/pdf-download/66830",previewPdfUrl:"/chapter/pdf-preview/66830",authors:[{id:"138778",title:"Dr.",name:"Kavian",surname:"Cooke",slug:"kavian-cooke",fullName:"Kavian Cooke"},{id:"274196",title:"Dr.",name:"Abdulaziz",surname:"Alhazaa",slug:"abdulaziz-alhazaa",fullName:"Abdulaziz Alhazaa"},{id:"274218",title:"Dr.",name:"Anas",surname:"Attieh",slug:"anas-attieh",fullName:"Anas Attieh"}],corrections:null},{id:"69027",title:"Magnesium-Based Materials for Hydrogen Storage: Microstructural Properties",doi:"10.5772/intechopen.88679",slug:"magnesium-based-materials-for-hydrogen-storage-microstructural-properties",totalDownloads:833,totalCrossrefCites:0,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Magnesium (Mg) is hydrogenated as core-shell-type hydride. Therefore, increase of absorption capacity to the theoretical hydrogen capacity is still one of the most important issues for the hydrogen storage materials. In this study, the procedure of the core-shell structure as well as effect of Al concentration in Mg on the growth MgH2 in Mg were investigated. MgH2 was formed on the surface as well as inside of unreacted Mg core. The inside MgH2 was formed in a granular form on Mg grain boundary and its size increased by applying plastic deformation. Thickness of the surface MgH2 and size of the internal MgH2 increased with an increase in hydrogenation time until the hydride surface was completely covered with MgH2. However, the growth of the surface and internal MgH2 came to a halt after the surface was covered with MgH2. From these results, supplying H from metal side was dominantly contributed for growth of the surface and internal MgH2 because diffusion rate of H in Mg was much higher than that in MgH2. In addition, the growth of internal MgH2 as well as control of surface MgH2 can contribute to the promotion of the complete hydrogenation of Mg-based hydrogen storage materials.",signatures:"Ryota Kondo and Takeshita T. Hiroyuki",downloadPdfUrl:"/chapter/pdf-download/69027",previewPdfUrl:"/chapter/pdf-preview/69027",authors:[{id:"273878",title:"Ph.D.",name:"Ryota",surname:"Kondo",slug:"ryota-kondo",fullName:"Ryota Kondo"},{id:"318128",title:"Dr.",name:"Takeshita",surname:"T. Hiroyuki",slug:"takeshita-t.-hiroyuki",fullName:"Takeshita T. 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\r\n\tIntensive animal farming, also known as factory farming, is an advanced technique to maximize production while reducing the cost of production. Intensive animal farming is a very recent development in agribusiness which involves the high stocking of animals like cattle, poultry, and fish on a large scale and the use of advanced biotechnology to enhance production. Livestock, particularly cattle and poultry are important contributors to total food production in the world. Intensive animal farming is very important from the food security perspective as it involves a dense population of animals on small land and increases food production.
\r\n\r\n\tIntensive animal farming benefits global trade but it also has some harmful impacts on human health. To lessen the harmful effects of intensive farming, farmers should improve the health, welfare, and productivity of their animals through animal health planning and disease control measures that are less dependent on veterinary medicines without jeopardizing animal welfare.
\r\n\r\n\tIntensive animal farming is very prevalent in developed countries and the aim is to produce large quantities of milk, meat, and eggs at low cost. Intensive farming involves mass production through modernized feeding systems and improved breeding and health programs.
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Additionally, there are about 374 million non-fatal work-related injuries and illnesses each year, many of these resulting in extended absences from work. Construction is a major industry providing jobs to millions of people and contributing to individual countries and the world economy. With the construction industry being notorious for safety, this condition has compelled companies to improve their safety performance. There are at least five reasons which demonstrate the importance of safety for construction companies [2]: lack of safety; increase probability of accidents; increase human suffering through injuries; accidents leading to disabilities; and fatalities. Governments around the world have laws that require construction organisations to provide safe work conditions and adequate supervision. Lack of safety, therefore, may lead to prosecution or claims, which will become the source of extra costs and adverse publicity. When an accident happens, the morale of workers is weakened. On the contrary, accident prevention programs strengthen morale and improve on-site productivity. A good safety record and proven safety management system is a valuable marketing tool to attract new clients and support business expansion. A safe operation of workplace is considered as a moral obligation imposed by the current society, thus good safety practices are essential to improve and maintain reputation; and safety management program contributes to the financial health of construction companies by helping them avoid costs associated with accidents. An accident incurs both direct and indirect costs as well as insured and uninsured costs. Sun and Zou [3] found that an accident can cost up to a $1.6 million. The hidden costs could be 36 times greater than the direct costs of the accident [4].
In most countries, the rates of accident and injury prevailing in the construction industry are higher than what prevails in other industries. For developed countries, Idoro [5] found that the United States construction industry currently accounts for over 22% of all occupational fatalities in the entire United States even though it employs less than 7% of the country’s workforce. However, according to the UK Health and Safety Executive Warren [6], each year in the construction sector alone, 4% of workers suffer from an illness they believe to be work-related and 3% of people suffer from a work-related injury. That is 79,000 people have musculoskeletal disorders.
The situation in developing countries is worst because research studies discovered that accident and injury rates in many of the developing countries such as Kingdom of Saudi Arabia [7]; Nigeria [8, 9], Thailand [10], and Tanzania are considerably higher than in European countries [5]. Mbuya and Lema [11] are of the opinion that in most developing countries, safety consideration in construction projects delivery is not given a priority and the employment of safety measures during construction is considered a burden Enshassi et al. [12]. Also discover that in many developing countries, the legislation governing Health and Safety is significantly limited when compared with UK. They report further that there are rarely any special provisions for construction on workers’ safety and the general conditions for workers are often not addressed.
Health and safety globally is enacted by varying regulations, standards, model and acts. The International Labour Organisation (ILO) publish a database of current occupational health and safety legislation globally, described in Table 1 are countries who apply occupational health and safety law, who is responsible for ensuring regulation, standards are being enacted and the occupational health and safety laws they are compliant with regards to training and development of their given work forces. In spite of this every 15 seconds, a worker dies from a work-related accident or disease. 317 million accidents occur on the job annually; many of these resulting in extended absences from work. The human cost of this daily adversity is vast and the economic burden of poor occupational safety and health practices is estimated at 4% of global Gross Domestic Product each year [13]. Therefore, investment in health and safety initiatives is critical to a company’s sustainability and future competitiveness.
Country | H&S regulation | H&S compliance |
---|---|---|
United Kingdom | Health and Safety Executive | Health and Safety at Work Act 1974 |
United States of America | Occupational Safety and Health Administration (OSHA) | Occupational and Safety Health Act 1970 |
Canada | Canadian Centre for Occupational Safety and Health (CCOHS) | Canada Labour Code (Labour Code), Part II and the Canada Occupational Health and Safety Regulations (OSH Regulations) |
Australia | Safe work Australia | Work Health and Safety Act 2011 |
Russia | Russian National Centre of Occupational Health | The Labour Code 2001 |
Portugal | National Council for Health and Safety at Work | Occupational Safety and Health Law (L102/2009, amended and consolidated by L3/2014) |
China | State Administration of Work Safety (SAWS) | Major OSH laws are Law on Work Safety, Law on Prevention and Control of Occupational Diseases, Laz on Safety in Mines |
Sweden | Work Environment Authority | Work Environment Act (1977:1160) |
Switzerland | Secretariat for Economic Affairs (SECO) | Labour Law, the Order No. 3 on Hygiene and the Order on the Prevention of Accidents |
Peru | National Council on Occupational Health and Safety | Safety and Health at work 2012 |
Oman | Ministry of Manpower, Occupational Health and Safety Department | Omani Labour Code 2003 |
New Zealand | Ministry of Business, Innovation and Employment | Health and Safety and Employment Act 1992 |
Health and safety in 12 different countries.
Lee and Halpin [14] discovered that in many of the countries where safety legislation exists, the regulatory authority is weak and non-existent and employers ‘pay lip service ‘to regulations. Koehn and Datta [15] further discover that in developing countries, injuries are often not reported and the employer only provides some form of cash compensation for an injury to the employee. Suresh et al. [7] study concluded that it is possible to improve construction industry Health and Safety through effective enforcement of existing Health and Safety laws. In addition to the company leadership team recognising the importance of health and safety especially for small companies which constitute to more than 90% in the construction industry.
Health and Safety is always considered as a management issue in which the top management team, who has the authority to allocate resources and enforce organisation’s policies, plays a key role in successful health and safety management [16]. The top management team must be willing to accept responsibility for the safety of their employees and must consider safety as an integral part in conducting business. They need to announce and demonstrate their safety commitment as well as stimulate safety awareness from the rest of their employees. Therefore, a safety program or any other implementation of a safety management system must start from or be supported by top management.
Without management support, safety is degraded into behavioural issues, such as asking workers to work with care and to wear protective equipment. Proper behaviours are, of course, necessary, but it is important to remember that humans are prone to error. Changing people’s mindset and implementing a safety management system are more important and effective to counter safety issues [17]. On the other hand, safety should not only be the responsibility of top management. Due to the complexity of the nature of safety, concerted efforts by all stakeholders, directed at all levels in the influence hierarchy are required to achieve a sustained safety improvement [18]. Everyone in the organisation must be involved and accountable. Sunindijo and Zou [19] stated that misalignment of management commitment and subordinates’ actions lead to continuous unsafe conditions of work. More so the concepts of safety by the managers are not fully disseminated to their subordinated to take measures on the construction site. These attribute to lack of safety leadership [20].
Tyssen et al. [21] noted that effective leadership plays an important role in ensuring the success of construction project facing a high degree of uncertainty. A project team will either succeed or fail largely by the quality of the leadership skills of project managers. Therefore, strong safety leadership should be the key for improvement.
The roles of leadership are distinct from those of managers. Health and safety managers hold employees accountable to health and safety and typically held accountable for outcome numbers. Thus, they use outcome numbers to direct the behaviour of those who report to them. While health and safety leaders motivate others to be self-motivated and self-accountable for health and safety go beyond the call of duty on behalf of their co-workers’ safety, health and well-being [22]. Health and safety leaders also hold people accountable for accomplishing proactive process activities that can prevent harm and lower injury rates.
Most of the leadership research has focused on outcomes such as productivity, profit, and worker satisfaction as their criteria, and very few research studies have looked at health and safety as a criterion for measuring leadership effectiveness. This is surprising, given that creating a safe workplace and promoting effective leadership are key goals of most modern organisations. Yet it cannot be assumed that similar leadership behaviours will be associated with effectiveness in health and safety as with other outcomes because safety, unlike other organisational outcomes is intangible. Good safety performance culminates in non-events which are not self-reinforcing. Thus, in order to develop and sustain employee motivation for safety it is likely that leadership in construction projects will require certain communication and motivational skills, which may differ from those required to fulfil task orientated goals.
Cattell et al. [23] noted that productivity is about getting the best value from all inputs across the whole value chain and for this, there needs to be sustained improvement in leadership, culture and processes. Furthermore, Ribiere and Sitar [24] referred leadership behaviour as ‘leading through a knowledge lens’. Leading through a knowledge lens gives some special characteristics since it is dealing with knowledge workers having specialised expertise, leading them can be done only by intellectual power, conviction, persuasion and interactive dialogue, it requires skills that build confidence and engagement. Therefore, leaders should establish trust and commitment that will help the knowledge organisation to achieve its business goal. Leadership initiatives for health and safety risk management systems in a small construction company is paramount as construction workers are already at a higher risk of accidents in construction than in any other industry.
The employees of small companies have less experience, less education and are younger than employees of large companies. Moreover, they are not conscious of the risk they confront because of their lack of knowledge and information about H&S. Lin and Mills [25] research in Australia showed that small companies did not consider they have to pay attention to H&S administratively. On the other hand, large companies consider that the H&S needs to be included in the administrative system and in all the projects developed by the company. H&S is not a priority in small companies for several reasons. First, they are economically vulnerable, which make them consider that investing in H&S is not profitable as the benefits are perceived in long term. Furthermore, owners and managers tend to take responsibility of all managerial aspects of the company, without having any management knowledge and training. Also, as the frequency of accidents is in these types of companies is low, owners tend to misinterpret these facts [26]. In order to have a more specific analysis of the size of the companies these workers belong to, the range of the number of employees followed the definition of SME from the European Union, which is used also by the UK government. In terms of quantity of employees, a SME is described as follows:
Micro business: compound of less than 10 employees.
Small business: compound of less than 50 employees.
Medium business: compound of less than 250 employees [27].
Small businesses in the UK account for 99.3% of all private sector businesses at the start of 2016 and 99.9% were small or medium-sized (SMEs). The combined annual turnover of SMEs was £1.8 trillion. Just under a fifth of all SMEs operate in the construction industry [28]. These numbers show that there is a significant presence of SMEs in the industry, thus it is important for the construction sector that these types of companies implement H&S practices in the workplace in order to diminish accidents and any other risks that affect their workforce and people around the construction site. Small and medium enterprises are being increasingly recognised as “the life blood of modern economies” [29]. Even though this was stated more than a decade ago it still stands true reflecting on the statistics. Therefore the role of leadership for H&S in a construction small company was investigated using the leadership toolkit.
The Leadership and Worker Involvement toolkit was developed by the construction industry’s Leadership and Worker Engagement Forum in UK to help contractors and managers learn how to make health and safety improvements in their businesses. This contains of assessment sheet and then knowing the status and way forward (Figures 1 and 2). The assessment is in the areas of: commitment, workers engagement, prioritisation of H&S, compliance, measurement and organisational learning. There are five options for each of the areas and the participant should choose one statement which applies to their company/organisation.
Leadership toolkit.
Current H&S system.
Once the options are chosen in Figure 1 the next step is to analyse the data to identify which state the company is i.e. starting block, getting going, walking, running and sprinting (Figure 2). Thereafter suggestions are provided how to proceed to the next level.
As part of a European Commission (EC) project this tool was administered in an Italian company which is reported in the following section.
This is a company that started 60 years ago which is a family lead small construction company. There are 15 employees working and specialise in commercial, residential, school and refurbishment projects. The project cost varies from 30,000 to 2 million Euros. They undertake three types of work i.e. Skeleton 15% (foundation, column, beams and brickwork); skeleton with plaster and screed (75%) and complete building (10%).
Health and Safety legislation within the UK is established by statute law, the Health and Safety at Work Act 1974 although not a detailed act, it enables further legislation (regulations) to be passed without going back through parliament and under guidance from the European Union guidance in the form of directives. There are similarities of UK and Italian regulations. For example: PPE is called DPI. The Health and Safety Executive (HSE) implemented the Construction Design and Management Regulations (CDM 2015) with the intention to encourage the integration of health and safety into project management. A principal designer/principal contractor is appointed by the client to control the pre-construction/construction phase on projects with more than one contractor. The main duty is to plan, manage, monitor and coordinate health and safety during this phase which they are involved in.
Similarly Italians have Coordinalove per IA Sicurezza. D. Lgs nr. 81/08, “a model of organisation and management” satisfies the requirement on health and safety, if it is constructed in accordance with OHSAS 18001 or with the UNI-INAIl guidelines. The regulations include construction activities in Italy are defined by state law. A company after a firm enrolled in an institution dedicated to work should follow the provisions of the Law D. lga. nr. 81/2008. This law identifies the liable subject around the activity of work and then gives each of the roles. It also lists the minimum requirements necessary to be able to exercise (technical and professional qualification). Therefore in this study it was explored how leadership in small company implements the regulations. As a starting point, the Chief Executive Officer (CEO) and the project manager filled the leadership and workers involvement questions of the toolkit. The mean scores were calculated for the options selected which resulted in 4C’s and 2D’s (Figure 3). This indicated that the company was in “walking mode” and in some instances in the “running mode”.
H&S system.
Figure 4 shows the way forward for the company for leadership initiatives in: Commitment; Worker Engagement; Prioritisation of health and safety; Compliance; Measurement and Organisational learning. The next stage, the leadership of the company should aim is to reach the ‘sprinting’ stage as a long-term strategy.
Way forward H&S system.
For short term (within 6 months) the company should reach the ‘running’ stage. To enable achieve this ERM framework was proposed as part of the EC project.
Analysis of the documents and focus group discussions with project team revealed that there should be a health and safety strand in the enterprise risk management framework and hence it was developed (Figure 5). This aspect was further taken forward and details of strategy, process and performance are looked into greater depth. This chapter discusses only the health and safety strand.
Enterprise risk management with health and Safety.
to provide adequate control of the health and safety risks arising from our work activities
to consult with our employees on matters affecting their health and safety
to provide and maintain safe plant and equipment
to ensure safe handling and use of substances
to provide information, instruction and supervision for employees
to ensure all employees are competent to do their tasks, and to give them adequate training
to prevent accidents and cases of work-related ill health
to maintain safe and healthy working conditions
to review and revise this policy as necessary at regular intervals
Specific aspects must relate to who takes the responsibilities (a named person within the organisation); Arrangements for Health and Safety Risks Arising from Work Activities; Consultation with Employees; Safe Plant and Equipment; Safe Handling and Use of Substances; Information, Instruction and Training; Competency for Tasks and Training; Accidents, First Aid and Work Related Ill-Health; Emergency Procedures, Fire and Evacuation; Monitoring (ensure safe working practices are followed). This partially agrees with Warren [6] who states 8 ways in which safety in the construction sector can be improved:
Ensure equipment has been correctly assembled and installed
Make sure that all equipment is properly maintained and regularly checked
Avoid working at height where possible and find ways of decreasing it
Keep all walkways, stairs, and work areas clear of debris and obstructions
Make sure that all materials are stored away safely
Provide staff with protective equipment and make sure they can use it correctly
Ensure all employees are appropriately trained
Ensure all workplace tasks are risk assessed
The H&S policy provided to the small company is comprehensive as it takes into account Safe Handling and Use of Substances; Information, Accident reporting, First Aid and Work Related Ill-Health; Emergency Procedures, Fire and Evacuation; Monitoring. The next step within the ERM is to look into the process of health and safety which in discussed in the following sections.
In Italy it is based on the type of client. If it is a public sector client then Health and Safety is considered separately and the cost of the project for construction is separate. Therefore there is no negotiation on the H&S aspects whereas the cost on the construction activities could be negotiated. For example if the total cost of the project is one million Euros the cost allocated for H&S is 50,000 Euros and 950,000 Euro for the construction phase. 50,000 Euro is fixed and must be used for H&S aspects whereas there is room for negotiations in 950,000 Euro say 10–20%. In the case of private client it is a lump sum contract and the cost of health and safety is included in the total cost of project at the tender stage.
When the contract is awarded and the site is to set up there is a checklist that could be used in the construction phase to make sure aspects of health and safety are considered. This can be a document which is based on knowledge gained from previous projects. In the case study company each project has a risk assessment H&S file which identifies project specific risks and also suggests methods to mitigate risk. The issue lies whether the labours on site are able to read and write to understand the risk assessment document.
The project level has to be linked to the company level. Therefore, based on the literature review and focus group with three members (CEO, Senior project manager, project manager) in the case study company 38 risk factors were identified (Table 2).
1. Cost allocated to H&S aspects in the clients brief (CDM co-ordinator/co-ordinator) | 20. Extreme task demands—example: high workloads, boring and repetitive jobs, jobs that require a lot of concentration, too many distractions |
2. H&S aspects during tight project schedule | 21. Social issues—example: peer pressure, conflicting attitudes to health and safety, conflicting attitudes of workers on how to complete work, too few workers |
3. Checklist provided by the co-ordinator for risk assessment thorough out the project life cycle | 22. Individual stressors—example: drugs and alcohol, lack of sleep, family problems, ill health |
4. Checklist followed by the company for risk assessment | 23. Violation of health and safety laws and regulations |
5. Lack of method statement | 24. Risks associated with project transport |
6. Lack of DPE/PPE | 25. Premises |
7. Measure to prevent falling from heights | 26. Defined roadways/one way system |
8. Excavation activities | 27. Need for reversing eliminated/minimised |
9. Rebars/steel rods edge exposed | 28. Roadways in good condition |
10. Defective scaffolding | 29. Speed bumps |
11. Welfare aspects | 30. Plant |
12. Access to utilities (water, electricity) | 31. Vehicle selection e.g. good driver access/visibility |
13. Equipment condition aspects | 32. Vehicles maintained in good condition—tyres/brakes |
14. Equipment usage aspects—example: inaccurate or confusing instructions and procedures | 33. Seat restraints fitted |
15. First aid aspects | 34. Reversing aids provided |
16. Fire prevention measures | 35. Procedures |
17. Accident reporting procedures including near misses | 36. Speed limits set for vehicles |
18. Human error which involves mistakes | 37. Vehicles chocked appropriately |
19. The work environment—example: too hot, too cold, poor lighting, restricted workspace, noise | 38. Reversing controlled |
Risk factors.
This list was given to the senior project manager who had experience as developer, planner, contractor and working for a company populated the matrix. Prior to that, they have to understand the risk scale. In a scale of five the risk factors are to be identified where 1—being the least risk and 5—being catastrophic (see Table 3). The probability factor is not considered as it depends on the projects they are involved. Also the relationship of the risk factors for project and the company was asked. Table 4 is a snapshot of 13 factors of the 38 risk factors. Y means it is a risk factor. Prior to discussing the risk factors it is important to look into the role of effective leaders in this context.
Scale | Classification | Explanation |
---|---|---|
1 | Insignificant | Insignificant infringement of operating procedure with immediate correction, none loss |
2 | Minor | Low loss, <10% cost increase, <5% time increase, only very demanding applications are affected |
3 | Moderate | Substantial loss, 10–20% cost increase, 5–10% time increase, quality reduction requires sponsor approval |
4 | Major | Major loss, 20–40% cost increase, 10–25% time increase, quality reduction unacceptable to sponsor |
5 | Catastrophic | Enormous loss, permanent damage, >40% cost increase, >25% time increase, project end item is effectively useless |
Risk scale.
Sl. no | Welch and Welch [31] | McEwan [32] |
---|---|---|
1 | Leaders relentlessly upgrade their team, using every encounter as an opportunity to evaluate, coach, and build self-confidence | Leaders should establish, implement and achieve great standards |
2 | Leaders make sure people not only see the vision, they live and breathe it | Leaders should be an instructional resource for your staff |
3 | Leaders get into everyone’s skin, exuding positive energy and optimism | Leaders should create a school culture and climate conducive to learning (for everyone) |
4 | Leaders establish trust with candour, transparency, and credit | Leaders should communicate the vision and mission of the organisation |
5 | Leaders have the courage to make unpopular decisions and gut calls | Leaders should set high expectations for staff and themselves |
6 | Leaders probe and push with a curiosity that borders on scepticism, making sure their questions are answered with action | Leaders should develop leaders |
7 | Leaders inspire risk taking and learning by setting the example | Leaders should establish and maintain positive relationship with other staff members |
Seven rules for effective leaders.
Edgeman et al. [30] noted that leaders are the raw material of business excellence as well as organisational failure. Some of the causes of failure are: lack of long-term management commitment; wrong people on the team; teams do not understand their work completely; team take too much; focus on metrics rather than processes; not positioning projects within a larger strategy; misunderstanding the organisation’s mission, goals and objectives. Welch and Welch [31] and McEwan [32] listed seven rules for effective leaders (see Table 5).
Health and safety risk factors.
Leaders can be effective in helping those involved to think creatively and discover the possibility of achieving a win-win situation only when they incorporate the interests, pronounced or latent, from the different participating groups [33]. Thus, vision formation should result from mutual influences in the collaboration. In studying leader effectiveness, Denison et al. [34] found that the most effective leaders have styles that reflect greater complexity in their thinking and variety in their behaviours. They are able to recognise paradox, contradiction, and complexity in their environment, and simultaneously attend to seemingly opposing and competing requirements, such as the need for integration and differentiation, and the demand for accountability and creativity at the same time. Alternatively, Pitcher and Smith [35] examined the possibility of sharing strategic decision-making processes in teams of leaders with different leadership strengths. They concluded that top management teams that exhibit strong cognitive diversity—a balanced combination of different types of leaders—are more successful in producing long-term results, because they include diverse ideas stemming from different cognitive perspectives and permit a more comprehensive and creative analysis of strategic alternatives. Therefore it is necessary to have H&S measurement performance matrix.
Thiveos [36] noted that leaders with responsibilities for health and safety concerns in their organisations rely on technology solutions to manage training, certification, incidents, observations, records, documents, risk assessment, corrective actions, inspection, monitoring, auditing, and to provide results-oriented performance metrics to stakeholders. Furthermore, Kelloway et al. [37] identified the 10 different health and safety leadership actions including: expressing satisfaction when jobs are performed safely; rewarding achievement of safety targets; continuous encouragement for safe working; maintaining a safe working environment; suggesting new ways of working more safely; encouraging employees to openly discuss safety at work; talking about personal value and beliefs in the importance of safety; behaving in a way that demonstrates commitment to safety; spending time to demonstrate how to work safely; and, listening to safety concerns.
In the EC project a Balance Score Card (BSC) concept developed by Kaplan suggests that we view the organisation from four perspectives, and to develop metrics, collect data and analyse it relative to each of these perspectives were adapted. Therefore the identified health and safety risk factors were mapped with the four perspectives i.e. financial, clients, business process and learning and growth. These are further classified as: Financial (cash flow, profit, stock turnover, turnover claim); clients (client satisfaction, new client, client loyalty); business process (quality of services, number of errors; percentage of delivered project; average hourly cost of labour); learning and growth (resources spent in training; workers satisfaction; number of prestigious project; resources spent in research).
From the analysis of Table 6 it clearly indicates that health and safety risks factors fall into learning and growth of the company within which works satisfaction is ranked as high and medium risk (8 major + 6 medium + 1 minor = 15 risk factors) followed by business process related to quality of services (5 major + 3 medium = 8) and clients related to client satisfaction (4 major + 3 medium + 1 minor = 8). Thereafter is the financial aspect (4 major + 1 medium + 1 minor = 6) related to profit followed by business process related to number of errors (2 major + 3 medium + 1 minor = 6).
Balance score card with high, medium and minor risk factors.
It is interesting to note that financial aspects comes third whereas the learning and growth comes first therefore it does not surprise why small and medium enterprises pay less attention to health and safety aspects. Especially activities on a project or in a company are going well i.e. no accidents or fatality and/or no inspections on site. However, it is revealing that violation of health and safety law and regulations have an impact on all the four aspects of BSC (financial, clients, business process and learning and growth). This is an important finding from this case study which informs professional at site (operatives/site trainees), project and programme level (site/project/programme managers) and for leadership team (directors/board members) regarding the attention that H&S needs to be given.
The construction sector is characterised for having the largest numbers of accidents and health deterioration among all the working sectors. Companies must also have a health and safety system which has the strategy, process and performance aspects. Irrespective of the size of the company there should be a health and safety policy. This leads to providing health and safety manual at the construction site which has the risk assessments. The companies should make sure the employees on the site are able to read and understand the associated risks which will enable them to implement it. In addition, it is important for construction stakeholders to invest in health and safety strategies.
The first step is to assess at what level the company is i.e. starting, get going, walking, running and sprinting from six building blocks. They are: commitment, workers engagement, prioritisation of H&S, compliance, measurement and organisational learning. Thereafter apply the ERM which includes strategy, process and performance to enable to achieve sustainable company success. In the case study company eight risk factors stood out of the 38 identified which had influence on financial, client, business process and learning and growth. All the eight risk factors contributed to workers/professional satisfaction. They are H&S aspects during tight project schedule; Lack of DPE/PPE; measures to prevent fall from heights; measures during excavation; using defective scaffolding; providing fire prevention measures; individual stress and violation of regulations.
In small companies leadership must have health and safety policy which clearly publicise and states the values behind health and safety standards and procedures through simple ways such as posters and the repetition of goals such as everyone going home safely at night. Therefore, in conclusion leadership for H&S risk management is paramount for a survival and sustainability of small companies.
The authors would like to express their gratitude to the European Commission for granting the project and also to the company which supported us. This enabled us to write the book chapter.
The immune system is comprised of a complex network of biological molecules and activities in organs, tissues, and cells to protect an organism against foreign substances or microbes (Figure 1). The immunity is generally categorized into two subsystems of innate and adaptive immunity [12]. The innate immunity initiates a quick immune response [13], while the adaptive immunity generates a comprehensive and long-lasting immune defense [12]. These two immune branches work closely together to defense host against the encountered foreign substances or microbes. The intestinal immunity is highly involved with
Schematic illustration of the role of innate (left side) and adaptive (right side) immunity in campylobacteriosis.
In the gastrointestinal tract, the innate immunity is consisted of innate cells and soluble molecules, which are an important defense mechanism against foreign substances or microbes. The cellular innate immunity is consisted of various types of cells, including intestinal epithelial cell (IEC), granulocyte (neutrophil, basophil, and eosinophil,) dendritic cell (DC), macrophage, natural killer cell (NK), master cell, and innate lymphoid cell (ILC), and γδ T cell [15]. Only a single layer of IEC separates nearly sterile internal intestinal tissue from microbe-rich intestinal lumen, hence the integrity of IEC is essential for intestinal health. Notably, IEC line breakdown is often implicated in various intestinal disorders such as IBD [16], irritable bowel syndrome (IBS) [17], colorectal cancer [18], and
At the molecular level, the innate cells recognize the microbes of their microbial-associated molecular patterns (MAMPs), such as lipopolysaccharides (LPS) and flagellin. MAMP is a component of a microbe and is sensed by innate cellular pathogen recognition receptors (PRRs), such as toll-like receptors (TLRs), nucleotide oligomerization domain (NOD) like receptors (NLRs), and retinoic acid inducible gene-I (RIG-I) like receptors (RLRs) [26, 27]. Previous articles have comprehensively reviewed the interaction between MAMP and PRR [28], hence we will not devote too much on them. Relevant to the topics of this chapter, LPS is expressed on the surface of Gram-negative bacteria such as
After trigged by PRRs detecting MAMP, innate response of a network of signaling pathways are activated, including TLR-MyD88/TRIF and inflammasome. MyD88 is a downstream adaptor protein of TLR and is essential for the signal transduction of the TLR signaling pathway [32]. The TLR signaling pathway is classified into either MyD88-dependent or MyD88-independent. With the exception of TLR3, all downstream signaling pathways of TLRs mediate through MyD88 [33]. For MyD88 dependent pathway, TLR signaling recruits and activates a number of molecules, including IRAK, TRAF6, TAK1, IKK, and NF-κB [32]. The TLR/Myd88/NF-κB signaling pathway then induces proinflammatory and cell survival responses. NF-κB signaling is activated in
Despite the effective, fast, and general/non-specific response of innate immunity against infection, adaptive immunity is often developed in vertebrate animals, particularly in the case of unresolved innate response. With the assistance of innate immunity, the adaptive immunity of lymphocytes recognize and remember a foreign substance’s or pathogen’s unique antigens and builds an antigen-specific response to eliminate it [12]. Two major lineages of T and B lymphocytes are generated in the thymus and the bone marrow or the avian bursa of Fabricius [36]. The adaptive immunity mounts two types of activities: B cell mediated antibody responses, and T cell mediated immune response. DC, B-cell, and macrophage express specific “co-stimulatory” ligands recognized by co-stimulatory receptors on T cells, and are named antigen-presenting cells (APCs) for T cell activation. During the early developmental stages, B lymphocyte progenitor cells make somatic hypermutation for specific antibody, while T and B cells rearrange different sets of immunoglobulin (Ig) variable (V), diversity (D), and joining (J) gene segments to make the antigen binding regions of the T cell receptors (TCRs) and B cell receptors (BCRs) [37].
T cells are grouped into two types based on the surface antigens: CD4-expressing T-helper cells, and CD8-expressing cytotoxic T-cells [38]. It remains elusive the role of CD8 cells in campylobacteriosis, but accumulating evidence supports the notion on the important role of CD4 cells in campylobacteriosis pathogenesis. The major intestinal CD4+ T cells are T help cell 1 (Th1), Th17, and regulatory T cell (Treg, Foxp3-expressing) cells, although Th2, Th9, Th22, follicular helper T (Tfh), iTreg, and type 1 regulatory T cell (Tr1) are present [39, 40]. The adaptive immunity is actively influenced by innate immunity. In gut lamina propria, intestinal innate tolerogenic CD103+ DCs induce FoxP3+ Tregs by stimulating CCR7 and integrin-αIVβ7 on T cells resided in mesenteric lymph nodes [41, 42, 43]. The differential interaction between
After Th2 cell activation, B-cells are induced to produce antibody (Ab) against
Human body, particularly gastrointestinal tract, inhabits trillions of diverse microbes including bacteria, archaea, virus, and eukarya [51]. These microbes called microbiota (Figure 2), and their metabolic activities and metabolites are collectively named microbiome [52]. The microbiota demonstrates a complex and diverse phylogeny of notable microbial species [53, 54, 55]. The human microbiota is comprised of 2172 prokaryotic species and the main phyla are Bacteroidetes, Firmicutes, Proteobacteria, and Actinobacteria [56]. The inhabitant gut microbiota influences important biological processes, such as metabolism of food, production of fat and vitamins, activation of angiogenesis as well as safeguard against adversary pathogens [53, 54]. Relevant to the topic of this chapter, the colonization of gut microbiota effectively inhibits the colonization and excessive growth of potential pathogenic microbes, called colonization resistance [55]. The colonization resistance is through various mechanisms including direct competition of spatial and nutrients, production of antimicrobial defensin and metabolites, and indirect inhibition via stimulation of innate and adaptive immunity [57]. Certain microbiota phyla reduction is associated with an abolished biological colonization resistance [7, 58]. The colonization resistance, therefore, prevents pathogen attachment to the respective target site, depletes nutrients, and blocks virulence expression.
Schematic illustration of the role of microbiota and its metabolites in campylobacteriosis.
During its metabolism of nutrients, microbiota synthesizes varied range of metabolites and related small molecules [59, 60, 61, 62]. It is recognized that the microbiota metabolites are absorbed across the gastrointestinal tract in circulation and impact host physiology [63, 64, 65]. Accumulating findings strongly support the important role of microbiota metabolites against gut pathogens. One example of the metabolite is short-chain fatty acids (SCFA). SCFA is fermented from carbohydrates (e.g., starch and fiber) and influences the gut microbiota community by reducing luminal pH level [66, 67, 68, 69]. Another abundant microbiota metabolite is bile acid. Bile acids produced in the liver are excreted into the intestine as conjugated (taurine or glycine) forms to facilitate in digestion of dietary lipids. The bile acids are deconjugated in small intestine by bile salt hydrolases (BSH) [70] and absorbed up to 95% along intestinal line through enterohepatic cycle [71]. Furthermore, microbiota produces bacterial toxic and short peptides (e.g. bacteriocin) and bacterial toxins to inhibit the growth and colonization of other species [72]. The bacterial toxic peptides are categorized into those produced by Gram-negative bacteria (mostly by
To colonize in the gut,
Chickens are susceptible to
On the other hand, SPF mice are resistant to
In human subjects with
The questions following section 3.2 are how microbiota facilitates or reduces
Furthermore, IBD patients have increased polyunsaturated fatty acids (e.g., adrenate and arachidonate) but reduced pantothenate and nicotinate [101]. CD patients have increased levels of conjugated and sulfated bile acids in the feces [102]. In a functional analysis with shotgun metagenomics data, sulfur metabolism is identified with an enrichment of sulfonate, methionine, cysteine and taurine transport systems in mice colonized with microbiota from active IBD patients [88]. These metabolic changes are consistent with the increased abundance of sulfate-reducing bacteria (e.g.,
One specific and well-studied bacteria-bacteria interaction through microbial metabolites is called quorum sensing (QS) [103]. When the number of bacteria in the surrounding environment reaches certain level, bacteria activate QS and release specific signaling molecules of autoinducers (AIs) to modulate the expression of themselves and surrounding others on virulence, the ability for invasion and colonization, and the formation of biofilm [104]. Two types of AIs have been studied. AI-1 is produced by N-acyl-homoserine lactones (AHL) synthase and mediates intraspecies communication in Gram-negative bacteria. AI-2 is produced by S-ribosylhomocysteine lyase (LuxS) and mediates both intra- and interspecies communication in Gram-positive or Gram-negative bacteria [103, 104]. LuxS/AI-2 system plays important roles in cell–cell interactions in
Because of their proximity, microbiome and gut immune system are actively interact with each other against the foreign substances and pathogens [11]. Gut microorganisms form a microbial community co-existed with the gut-associated lymphoid tissue [111], which is the largest immune organ in our body. Under normal circumstances, the intestinal epithelium and resident flora are separated by mucus layer, which not only provides static shielding, but also limits normal microbiomes’ immunogenicity by imprinting dendritic cells [112, 113] that have ability to distinguish antigens present by normal microbiota and invaded pathogens [114]. Thus, the normal flora can live along with the host without causing damage, or getting removed by the host immunity [115]. The elimination of microbiomes results in a deficiency function of immunity, as a fact, antibiotics treated mice can be used as a model for the study of pathogen colonization [116]. Infectious pathogens often break gut microenvironment’s equilibrium to generate ill effects, which may cause the gastrointestinal illnesses like campylobacteriosis. The normal flora have the capacity to induce lymphoid tissue’s immune response to protect host from pathogens infection [117].
As one of the enteritis, campylobacteriosis has a common feature of leading extensive intestinal inflammation driven by Th1 and Th17 lymphocytes and TLR4 when homeostatic is perturbed [118], sharing typical pathology at cellular levels, such as neutrophils infiltration, leukocytes existence in fecal, and crypt abscesses. However, the pathogenesis of campylobacteriosis is not well studied.
The gut homeostasis is dependent on the symbiotic relationship interacts between microbiota and immunity, with the occasional breaks by intestinal diseases such as IBD and campylobacteriosis (Figure 3). Signals derived from gut microbiota are essential for the development of the immune system. Germ-free mice display impaired immunity maturation such as defective Peyer’s patches (PPs), plasma cells, intraepithelial lymphocytes (IELs), antimicrobial peptide, IgA secretion, epithelial barrier function, and CD4+ T cell maturation [120, 121, 122]. Comparably, manipulating microbiota by antibiotic treatment or microbiota reconstitution (fecal microbiota transplantation, FMT) shows the essential role of the microbiota in immune homeostasis. FMT reduces dextran sulfate sodium (DSS)-induced mouse colitis with reduced CD4+ T, CD8+ T cells expressing, CD107a, MHC II-expressing, professional antigen present cells (APCs) expressing, while innate lymphocytes ILC2 and ILC3 are increased [123]. Human FMT to mice fails to resist
Schematic illustration of the interaction of microbiota and immunity in campylobacteriosis.
Beside microbiota transplantation, individual or groups of probiotics have been studied to reduce enteric pathogens, such as
In addition to the direct talk between microbiota and gut immunity, microbiota metabolites influence intestinal immune homeostasis, which is dependent on the balance of pro- and anti-inflammatory response (Figure 4). As discussed in section 2.2, Treg is the key ant-inflammatory T cell with its signature cytokine IL-10. IBD patients show reduced SCFAs in stool compared to healthy people, a consistent observation with reduced butyrate-producing bacterial taxa [141]. SCFAs, such as butyrate, acetate, and propionate, are microbial fermentation products of polysaccharides [142]. SCFAs are the energy source for colonocytes that lining the gastrointestinal tract [143], which have antiproliferative and anti-inflammatory features [144, 145]. SCFAs promotes the differentiation of Treg cells and their anti-inflammatory IL-10 secretion [146]. Butyrate or mixtures of SCFAs in enemas show clinical and histological improvement in active UC patients and diversion colitis [147, 148]. At the molecular level, butyrate in enemas decrease NF-κB activation in macrophages from distal colon tissue of UC patients [149], and reduce LPS-induced cytokine expression, NF-κB activation in lamina propria, and the number of peripheral blood monocytes in CD patients [150].
Schematic illustration of the role of microbiota metabolites and immunity in campylobacteriosis.
Besides microbiota metabolites regulation immune cells, they also modulate immune signaling pathways. Caffeic acid (CaA) is a hydrolyzed metabolite of chlorogenic acid by gut microbial esterase. CaA reduces DSS-induced in C57BL/6 mice colitis through blocking NF-κB signaling pathway, suppressing the secretion of IL-6, TNFα, and IFNγ, and inhibiting the infiltration of CD3+ T cells, CD177+ neutrophils and F4/80+ macrophages [152]. L-arabinose, the digestion production of fiber, inhibits DSS-induced colitis by downregulating p38−/p65-dependent inflammation activation [153]. β-glucan is a polysaccharide naturally appeared in the cell walls of cereals, bacteria, and fungi. β-glucan reduces DSS-induced IBD by downregulating pro-inflammatory cytokines (TNFα, IL-6 and IL-8) and inflammatory mediators (iNOS, COX-2 and PEG2) [154]. Oxyberberine, a gut microbiota metabolite of berberine, shown anti-colitis effect through the inhibition of TLR4-MyD88-NF-κB signaling pathway with reducing phosphorylation of IκBα and translocation of NF-κB p65 from cytoplasm to nucleus [155]. Notably, microbiota metabolic product DCA reduces
Furthermore, microbiota mediated metabolites are the important nutrients for host growth and immunity. Germ-free mice are usually more susceptible to infection diseases and show deficient to Vitamin K and B6 [156, 157]. Gut microbiota-synthesized Vitamins B12 and folate are vital for red blood cells synthesis, and red blood cells are crucial for supplying oxygen to immune cells and participating in the defensive process against pathogens [158]. Vitamin E delta-tocotrienol and its metabolite 13′-carboxychromanol inhibit tumor-associated colitis by reduction of pro-inflammatory cytokines GM-CSF, MCP-1, and IL-1β, respectively [159].
Given the fast research advancement on mucosal immunology, microbiota, and metabolomics recently in gastroenterology field, it is better than ever to investigate the mechanism of immunity-microbiota interaction and to use the knowledge to prevent and treat campylobacteriosis. The gut adaptive and innate system is the key for the permission or resistance to enteric pathogens and their induction of intestinal inflammation. Microbiota and its metabolic products or metabolites are essential for preventing gut pathogen invasion and the enteritis. Together, the development and function of the intestinal immunity is modulated by intestinal microbiota and its metabolic activities and products. Indeed, microbiota reconstitution by FMT is able to prevent or treat a number of intestinal disorders such as human CDI and mouse campylobacteriosis. Consistently, supplementing microbial metabolite of secondary bile acid DCA prevents campylobacteriosis in mice. Based on the successful or failed examples of the microbiome intervention on intestinal diseases, it is reasonable to conclude that a better knowledge on disease etiology and microbiome status during health and the diseases are essential for specifically targeting the pathogenic driving factors to prevent and treat the enteritis. Additional research will open new avenues to elucidate the in-depth understanding of the role of immunity and microbiota and to develop therapeutic approaches to control enteritis such as campylobacteriosis.
The authors declare no conflict of interest.
This research was supported by grants of Arkansas Biosciences Institute, USDA National Institute of Food and Agriculture (NIFA) Hatch project 1012366, NIFA Hatch/Multi State project 1018699, NIFA project 2020-67016-31346, and NIFA SAS 2019-69012-29905 to X. Sun. Poultry Federation Scholarships to Y. Fu. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.
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Cyanide is formed following the hydrolysis of cyanogenic glycosides that occur during crushing of the edible plant material either during consumption or during processing of the food crop. Exposure to cyanide from unintentional or intentional consumption of cyanogenic glycosides may lead to acute intoxications, characterized by growth retardation and neurological symptoms resulting from tissue damage in the central nervous system (CNS). Processing methods can detoxify cyanogenic glycosides and reduce the risk of cyanide poisoning. The efficiency of cyanide removal, however, depends on the processing technique employed and the extent of processing. Processing operations such as fermentation, boiling/cooking, and drying, applied to process food‐containing cyanogenic glycosides have been reported to reduce cyanide content to acceptably safe levels. The present review discusses the level of cyanogenic glycosides in specific plant foods, health implications of consuming cyanogenic plants and effect of various processing method on cyanogenic glycosides with updated information gathered from the published reports on cyanogenic glycosides.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Islamiyat Folashade Bolarinwa, Moruf Olanrewaju Oke, Sulaiman\nAdebisi Olaniyan and Adeladun Stephen Ajala",authors:[{id:"190129",title:"Dr.",name:"Islamiyat Folashade",middleName:null,surname:"Bolarinwa",slug:"islamiyat-folashade-bolarinwa",fullName:"Islamiyat Folashade Bolarinwa"},{id:"194068",title:"Dr.",name:"Sulaiman Adebisi",middleName:null,surname:"Olaniyan",slug:"sulaiman-adebisi-olaniyan",fullName:"Sulaiman Adebisi Olaniyan"},{id:"194071",title:"Dr.",name:"Adeladun Steven",middleName:null,surname:"Ajala",slug:"adeladun-steven-ajala",fullName:"Adeladun Steven Ajala"},{id:"194073",title:"Dr.",name:"Moruf Olanrewaju",middleName:null,surname:"Oke",slug:"moruf-olanrewaju-oke",fullName:"Moruf Olanrewaju Oke"}]},{id:"52341",doi:"10.5772/65266",title:"Environmental Fate of Zinc Oxide Nanoparticles: Risks and Benefits",slug:"environmental-fate-of-zinc-oxide-nanoparticles-risks-and-benefits",totalDownloads:3589,totalCrossrefCites:12,totalDimensionsCites:25,abstract:"Zinc oxide nanoparticles (ZnO-NPs) are among nanoscale materials displaying exponentially growing production due to their applications in the field of cosmetology, medicine, as antibacterial agent and catalyst. The ZnO nanomaterials release into the aquatic ecosystems through domestic and industrial wastewaters has the potential to induce pernicious effects on fish and other organisms. Increasing concerns on the environmental hazard to aquatic biota have been highlighted by the toxic potential of some metal-based nanomaterials. Several characteristics of ZnO-NPs (e.g. size, shape, surface charge and agglomeration state) play a central role in biological effects such as genotoxic, mutagenic or cytotoxic effects. Overall, Zn bioaccumulation, histopathological, and hematological changes with oxidative and cellular stress have been reported in ZnO-NPs exposed animals.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Asfina Beegam, Parvathy Prasad, Jiya Jose, Miguel Oliveira,\nFernando G. Costa, Amadeu M.V.M. Soares, Paula P. Gonçalves, Tito\nTrindade, Nandakumar Kalarikkal, Sabu Thomas and Maria de\nLourdes Pereira",authors:[{id:"30304",title:"Prof.",name:"Tito",middleName:null,surname:"Trindade",slug:"tito-trindade",fullName:"Tito Trindade"},{id:"79715",title:"Prof.",name:"Maria De Lourdes",middleName:null,surname:"Pereira",slug:"maria-de-lourdes-pereira",fullName:"Maria De Lourdes Pereira"},{id:"146943",title:"Prof.",name:"Sabu",middleName:null,surname:"Thomas",slug:"sabu-thomas",fullName:"Sabu Thomas"},{id:"174419",title:"Prof.",name:"Fernando",middleName:null,surname:"Garcia E Costa",slug:"fernando-garcia-e-costa",fullName:"Fernando Garcia E Costa"},{id:"194616",title:"BSc.",name:"Asfeena",middleName:null,surname:"Began",slug:"asfeena-began",fullName:"Asfeena Began"},{id:"194617",title:"BSc.",name:"Parvathy",middleName:null,surname:"Prasad",slug:"parvathy-prasad",fullName:"Parvathy Prasad"},{id:"194618",title:"Dr.",name:"Jhose",middleName:null,surname:"Jyia",slug:"jhose-jyia",fullName:"Jhose Jyia"},{id:"194619",title:"Prof.",name:"Miguel",middleName:null,surname:"Oliveira",slug:"miguel-oliveira",fullName:"Miguel Oliveira"},{id:"194620",title:"Prof.",name:"Amadeu",middleName:null,surname:"M.V.M. 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Inherent properties of NPs (including size, shape, surface area, surface charge, crystal structure, coating, and solubility/dissolution) as well as environmental factors (such as temperature, pH, ionic strength, salinity, and organic matter) collectively influence NP behavior, fate and transport, and ultimately toxicity. The mechanisms underlying the toxicity of nanomaterials (NMs) have recently been studied extensively. Reactive oxygen species (ROS) toxicity represents one such mechanism. An overproduction of ROS induces oxidative stress, resulting in inability of the cells to maintain normal physiological redox-regulated functions. In the context of this book, this chapter includes topics pertaining to chemical and physical properties of NMs and characterization for proper toxicological evaluation, exposure, and environmental fate and transport, and ecological and genotoxic effects. This chapter reviews the available research pertaining specifically to NMs in the aquatic environment (in plants, aquatic invertebrates, and fish) and their use in biomarker studies.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Chavon Walters, Edmund Pool and Vernon Somerset",authors:[{id:"176939",title:"Dr.",name:"Chavon",middleName:null,surname:"Walters",slug:"chavon-walters",fullName:"Chavon Walters"}]},{id:"52031",doi:"10.5772/64815",title:"Microplastics in Aquatic Environments and Their Toxicological Implications for Fish",slug:"microplastics-in-aquatic-environments-and-their-toxicological-implications-for-fish",totalDownloads:3166,totalCrossrefCites:10,totalDimensionsCites:24,abstract:"The intensive use of plastics and derivatives during the last century has increased the contamination of animal habitats. The breakdown of these primary plastics in the environment results in microplastics (MP), small fragments of plastic typically <1–5 mm in size. Apart from the potential negative effects of the MPs per se, it is generally assumed that microplastics may increase the exposure of marine aquatic organisms to chemicals associated with the plastics. In addition, to enhance the performance of plastics, additives are added during manufacture. Furthermore, they are active in absorbing other contaminants and be used as vectors of highly and well‐documented persistent contaminants. Finally, these small MPs are easily ingested by animals and affect their physiology and behaviour. Thus, aquatic living organisms are continuously exposed to these MPs, and associated contaminants, and could suffer from its contamination but also introduce them into the food chain.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Cristóbal Espinosa, M. Ángeles Esteban and Alberto Cuesta",authors:[{id:"28342",title:"Dr.",name:"M. Ángeles",middleName:null,surname:"Ăngeles Esteban",slug:"m.-angeles-angeles-esteban",fullName:"M. Ángeles Ăngeles Esteban"},{id:"72817",title:"Dr.",name:"Alberto",middleName:null,surname:"Cuesta",slug:"alberto-cuesta",fullName:"Alberto Cuesta"},{id:"194251",title:"Dr.",name:"Cristobal",middleName:null,surname:"Espinosa",slug:"cristobal-espinosa",fullName:"Cristobal Espinosa"}]},{id:"51762",doi:"10.5772/64468",title:"Toxic Effects as a Result of Herbal Medicine Intake",slug:"toxic-effects-as-a-result-of-herbal-medicine-intake",totalDownloads:4436,totalCrossrefCites:12,totalDimensionsCites:23,abstract:"Concurrent use of herbs with therapeutic drugs increases the potential of herb-drug interactions. The clinical importance of herb-drug interactions is associated with the particular herb, drug, and patient profile. Herbs are potentially potent as they affect body functions. The use herbal medicine and supplements can be risky as they are not subject to review by the FDA. In this chapter, we make an attempt to discuss the possible reasons for toxic effects, types of toxicities, some reported cases of toxicities involving the use of herbal medicine alone, and some herb-drug interactions. In addition to this, possible ways to reduce toxic effects of herbal medicines have also been discussed.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Nudrat Fatima and Naira Nayeem",authors:[{id:"186023",title:"Dr.",name:"Nudrat",middleName:null,surname:"Fatima",slug:"nudrat-fatima",fullName:"Nudrat Fatima"},{id:"186802",title:"Dr.",name:"Naira",middleName:null,surname:"Nayeem",slug:"naira-nayeem",fullName:"Naira Nayeem"}]}],mostDownloadedChaptersLast30Days:[{id:"52207",title:"A Review of Cyanogenic Glycosides in Edible Plants",slug:"a-review-of-cyanogenic-glycosides-in-edible-plants",totalDownloads:7487,totalCrossrefCites:18,totalDimensionsCites:50,abstract:"Cyanogenic glycosides are natural plant toxins that are present in several plants, most of which are consumed by humans. Cyanide is formed following the hydrolysis of cyanogenic glycosides that occur during crushing of the edible plant material either during consumption or during processing of the food crop. Exposure to cyanide from unintentional or intentional consumption of cyanogenic glycosides may lead to acute intoxications, characterized by growth retardation and neurological symptoms resulting from tissue damage in the central nervous system (CNS). Processing methods can detoxify cyanogenic glycosides and reduce the risk of cyanide poisoning. The efficiency of cyanide removal, however, depends on the processing technique employed and the extent of processing. Processing operations such as fermentation, boiling/cooking, and drying, applied to process food‐containing cyanogenic glycosides have been reported to reduce cyanide content to acceptably safe levels. The present review discusses the level of cyanogenic glycosides in specific plant foods, health implications of consuming cyanogenic plants and effect of various processing method on cyanogenic glycosides with updated information gathered from the published reports on cyanogenic glycosides.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Islamiyat Folashade Bolarinwa, Moruf Olanrewaju Oke, Sulaiman\nAdebisi Olaniyan and Adeladun Stephen Ajala",authors:[{id:"190129",title:"Dr.",name:"Islamiyat Folashade",middleName:null,surname:"Bolarinwa",slug:"islamiyat-folashade-bolarinwa",fullName:"Islamiyat Folashade Bolarinwa"},{id:"194068",title:"Dr.",name:"Sulaiman Adebisi",middleName:null,surname:"Olaniyan",slug:"sulaiman-adebisi-olaniyan",fullName:"Sulaiman Adebisi Olaniyan"},{id:"194071",title:"Dr.",name:"Adeladun Steven",middleName:null,surname:"Ajala",slug:"adeladun-steven-ajala",fullName:"Adeladun Steven Ajala"},{id:"194073",title:"Dr.",name:"Moruf Olanrewaju",middleName:null,surname:"Oke",slug:"moruf-olanrewaju-oke",fullName:"Moruf Olanrewaju Oke"}]},{id:"52341",title:"Environmental Fate of Zinc Oxide Nanoparticles: Risks and Benefits",slug:"environmental-fate-of-zinc-oxide-nanoparticles-risks-and-benefits",totalDownloads:3586,totalCrossrefCites:11,totalDimensionsCites:25,abstract:"Zinc oxide nanoparticles (ZnO-NPs) are among nanoscale materials displaying exponentially growing production due to their applications in the field of cosmetology, medicine, as antibacterial agent and catalyst. The ZnO nanomaterials release into the aquatic ecosystems through domestic and industrial wastewaters has the potential to induce pernicious effects on fish and other organisms. Increasing concerns on the environmental hazard to aquatic biota have been highlighted by the toxic potential of some metal-based nanomaterials. Several characteristics of ZnO-NPs (e.g. size, shape, surface charge and agglomeration state) play a central role in biological effects such as genotoxic, mutagenic or cytotoxic effects. Overall, Zn bioaccumulation, histopathological, and hematological changes with oxidative and cellular stress have been reported in ZnO-NPs exposed animals.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Asfina Beegam, Parvathy Prasad, Jiya Jose, Miguel Oliveira,\nFernando G. Costa, Amadeu M.V.M. Soares, Paula P. Gonçalves, Tito\nTrindade, Nandakumar Kalarikkal, Sabu Thomas and Maria de\nLourdes Pereira",authors:[{id:"30304",title:"Prof.",name:"Tito",middleName:null,surname:"Trindade",slug:"tito-trindade",fullName:"Tito Trindade"},{id:"79715",title:"Prof.",name:"Maria De Lourdes",middleName:null,surname:"Pereira",slug:"maria-de-lourdes-pereira",fullName:"Maria De Lourdes Pereira"},{id:"146943",title:"Prof.",name:"Sabu",middleName:null,surname:"Thomas",slug:"sabu-thomas",fullName:"Sabu Thomas"},{id:"174419",title:"Prof.",name:"Fernando",middleName:null,surname:"Garcia E Costa",slug:"fernando-garcia-e-costa",fullName:"Fernando Garcia E Costa"},{id:"194616",title:"BSc.",name:"Asfeena",middleName:null,surname:"Began",slug:"asfeena-began",fullName:"Asfeena Began"},{id:"194617",title:"BSc.",name:"Parvathy",middleName:null,surname:"Prasad",slug:"parvathy-prasad",fullName:"Parvathy Prasad"},{id:"194618",title:"Dr.",name:"Jhose",middleName:null,surname:"Jyia",slug:"jhose-jyia",fullName:"Jhose Jyia"},{id:"194619",title:"Prof.",name:"Miguel",middleName:null,surname:"Oliveira",slug:"miguel-oliveira",fullName:"Miguel Oliveira"},{id:"194620",title:"Prof.",name:"Amadeu",middleName:null,surname:"M.V.M. Soares",slug:"amadeu-m.v.m.-soares",fullName:"Amadeu M.V.M. Soares"},{id:"194621",title:"Prof.",name:"Paula",middleName:null,surname:"Gonçalves",slug:"paula-goncalves",fullName:"Paula Gonçalves"},{id:"194622",title:"Dr.",name:"Nandakumar",middleName:null,surname:"Kalarikkal",slug:"nandakumar-kalarikkal",fullName:"Nandakumar Kalarikkal"}]},{id:"52031",title:"Microplastics in Aquatic Environments and Their Toxicological Implications for Fish",slug:"microplastics-in-aquatic-environments-and-their-toxicological-implications-for-fish",totalDownloads:3164,totalCrossrefCites:10,totalDimensionsCites:24,abstract:"The intensive use of plastics and derivatives during the last century has increased the contamination of animal habitats. The breakdown of these primary plastics in the environment results in microplastics (MP), small fragments of plastic typically <1–5 mm in size. Apart from the potential negative effects of the MPs per se, it is generally assumed that microplastics may increase the exposure of marine aquatic organisms to chemicals associated with the plastics. In addition, to enhance the performance of plastics, additives are added during manufacture. Furthermore, they are active in absorbing other contaminants and be used as vectors of highly and well‐documented persistent contaminants. Finally, these small MPs are easily ingested by animals and affect their physiology and behaviour. Thus, aquatic living organisms are continuously exposed to these MPs, and associated contaminants, and could suffer from its contamination but also introduce them into the food chain.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Cristóbal Espinosa, M. Ángeles Esteban and Alberto Cuesta",authors:[{id:"28342",title:"Dr.",name:"M. Ángeles",middleName:null,surname:"Ăngeles Esteban",slug:"m.-angeles-angeles-esteban",fullName:"M. Ángeles Ăngeles Esteban"},{id:"72817",title:"Dr.",name:"Alberto",middleName:null,surname:"Cuesta",slug:"alberto-cuesta",fullName:"Alberto Cuesta"},{id:"194251",title:"Dr.",name:"Cristobal",middleName:null,surname:"Espinosa",slug:"cristobal-espinosa",fullName:"Cristobal Espinosa"}]},{id:"51626",title:"Drug-Induced Cutaneous Toxicity",slug:"drug-induced-cutaneous-toxicity",totalDownloads:2534,totalCrossrefCites:2,totalDimensionsCites:2,abstract:"The skin is the largest organ in the body and is continually exposed to external stimuli, such as chemical and environmental substances. Cutaneous toxicity can be broadly classified according to the mechanism of onset, namely: contact dermatitis, i.e., damage resulting from contact with a substance (irritant dermatitis, allergic contact dermatitis, chemical burns); photosensitivity, i.e., caused by combined effects of a substance and ultraviolet light (phototoxic dermatitis, photoallergic contact dermatitis); contact urticaria; chemical-induced acne; pigmentary disturbance; drug rash; hair disturbance; nail disturbance; or tumor-induced. This review outlines the function and structure of the skin, outlining characteristics of these types of cutaneous toxicity. In recent years, advances have been made in the development of pharmaceutical products targeting specific molecules or genes and nanotechnology-based pharmaceutical products, raising concerns about the onset of toxicity by novel mechanisms involving new pharmaceutical products. Therefore, it is important to understand the basic toxicity-related changes described herein.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Katsuhiko Yoshizawa, Michiko Yuki and Airo Tsubura",authors:[{id:"186317",title:"Associate Prof.",name:"Katsuhiko",middleName:null,surname:"Yoshizawa",slug:"katsuhiko-yoshizawa",fullName:"Katsuhiko Yoshizawa"},{id:"186355",title:"Prof.",name:"Airo",middleName:null,surname:"Tsubura",slug:"airo-tsubura",fullName:"Airo Tsubura"},{id:"186356",title:"Dr.",name:"Michiko",middleName:null,surname:"Yuki",slug:"michiko-yuki",fullName:"Michiko Yuki"}]},{id:"51762",title:"Toxic Effects as a Result of Herbal Medicine Intake",slug:"toxic-effects-as-a-result-of-herbal-medicine-intake",totalDownloads:4435,totalCrossrefCites:12,totalDimensionsCites:23,abstract:"Concurrent use of herbs with therapeutic drugs increases the potential of herb-drug interactions. The clinical importance of herb-drug interactions is associated with the particular herb, drug, and patient profile. Herbs are potentially potent as they affect body functions. The use herbal medicine and supplements can be risky as they are not subject to review by the FDA. In this chapter, we make an attempt to discuss the possible reasons for toxic effects, types of toxicities, some reported cases of toxicities involving the use of herbal medicine alone, and some herb-drug interactions. In addition to this, possible ways to reduce toxic effects of herbal medicines have also been discussed.",book:{id:"5362",slug:"toxicology-new-aspects-to-this-scientific-conundrum",title:"Toxicology",fullTitle:"Toxicology - New Aspects to This Scientific Conundrum"},signatures:"Nudrat Fatima and Naira Nayeem",authors:[{id:"186023",title:"Dr.",name:"Nudrat",middleName:null,surname:"Fatima",slug:"nudrat-fatima",fullName:"Nudrat Fatima"},{id:"186802",title:"Dr.",name:"Naira",middleName:null,surname:"Nayeem",slug:"naira-nayeem",fullName:"Naira Nayeem"}]}],onlineFirstChaptersFilter:{topicId:"1205",limit:6,offset:0},onlineFirstChaptersCollection:[],onlineFirstChaptersTotal:0},preDownload:{success:null,errors:{}},subscriptionForm:{success:null,errors:{}},aboutIntechopen:{},privacyPolicy:{},peerReviewing:{},howOpenAccessPublishingWithIntechopenWorks:{},sponsorshipBooks:{sponsorshipBooks:[],offset:8,limit:8,total:0},allSeries:{pteSeriesList:[{id:"14",title:"Artificial Intelligence",numberOfPublishedBooks:9,numberOfPublishedChapters:87,numberOfOpenTopics:6,numberOfUpcomingTopics:0,issn:"2633-1403",doi:"10.5772/intechopen.79920",isOpenForSubmission:!0},{id:"7",title:"Biomedical Engineering",numberOfPublishedBooks:12,numberOfPublishedChapters:98,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2631-5343",doi:"10.5772/intechopen.71985",isOpenForSubmission:!0}],lsSeriesList:[{id:"11",title:"Biochemistry",numberOfPublishedBooks:27,numberOfPublishedChapters:287,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2632-0983",doi:"10.5772/intechopen.72877",isOpenForSubmission:!0},{id:"25",title:"Environmental Sciences",numberOfPublishedBooks:1,numberOfPublishedChapters:9,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2754-6713",doi:"10.5772/intechopen.100362",isOpenForSubmission:!0},{id:"10",title:"Physiology",numberOfPublishedBooks:11,numberOfPublishedChapters:139,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-8261",doi:"10.5772/intechopen.72796",isOpenForSubmission:!0}],hsSeriesList:[{id:"3",title:"Dentistry",numberOfPublishedBooks:8,numberOfPublishedChapters:129,numberOfOpenTopics:0,numberOfUpcomingTopics:2,issn:"2631-6218",doi:"10.5772/intechopen.71199",isOpenForSubmission:!1},{id:"6",title:"Infectious Diseases",numberOfPublishedBooks:13,numberOfPublishedChapters:107,numberOfOpenTopics:3,numberOfUpcomingTopics:1,issn:"2631-6188",doi:"10.5772/intechopen.71852",isOpenForSubmission:!0},{id:"13",title:"Veterinary Medicine and Science",numberOfPublishedBooks:10,numberOfPublishedChapters:103,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2632-0517",doi:"10.5772/intechopen.73681",isOpenForSubmission:!0}],sshSeriesList:[{id:"22",title:"Business, Management and Economics",numberOfPublishedBooks:1,numberOfPublishedChapters:12,numberOfOpenTopics:2,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100359",isOpenForSubmission:!0},{id:"23",title:"Education and Human Development",numberOfPublishedBooks:0,numberOfPublishedChapters:0,numberOfOpenTopics:2,numberOfUpcomingTopics:0,issn:null,doi:"10.5772/intechopen.100360",isOpenForSubmission:!1},{id:"24",title:"Sustainable Development",numberOfPublishedBooks:0,numberOfPublishedChapters:10,numberOfOpenTopics:4,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100361",isOpenForSubmission:!0}],testimonialsList:[{id:"13",text:"The collaboration with and support of the technical staff of IntechOpen is fantastic. 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",coverUrl:"https://cdn.intechopen.com/series/covers/22.jpg",latestPublicationDate:"May 18th, 2022",hasOnlineFirst:!0,numberOfPublishedBooks:1,editor:{id:"356540",title:"Prof.",name:"Taufiq",middleName:null,surname:"Choudhry",slug:"taufiq-choudhry",fullName:"Taufiq Choudhry",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y000036X2hvQAC/Profile_Picture_2022-03-14T08:58:03.jpg",biography:"Prof. Choudhry holds a BSc degree in Economics from the University of Iowa, as well as a Masters and Ph.D. in Applied Economics from Clemson University, USA. In January 2006, he became a Professor of Finance at the University of Southampton Business School. He was previously a Professor of Finance at the University of Bradford Management School. He has over 80 articles published in international finance and economics journals. His research interests and specialties include financial econometrics, financial economics, international economics and finance, housing markets, financial markets, among others.",institutionString:null,institution:{name:"University of Southampton",institutionURL:null,country:{name:"United Kingdom"}}},editorTwo:null,editorThree:null},subseries:{paginationCount:3,paginationItems:[{id:"86",title:"Business and Management",coverUrl:"https://cdn.intechopen.com/series_topics/covers/86.jpg",isOpenForSubmission:!0,editor:{id:"128342",title:"Prof.",name:"Vito",middleName:null,surname:"Bobek",slug:"vito-bobek",fullName:"Vito Bobek",profilePictureURL:"https://mts.intechopen.com/storage/users/128342/images/system/128342.jpg",biography:"Dr. Vito Bobek works as an international management professor at the University of Applied Sciences FH Joanneum, Graz, Austria. He has published more than 400 works in his academic career and visited twenty-two universities worldwide as a visiting professor. Dr. Bobek is a member of the editorial boards of six international journals and a member of the Strategic Council of the Minister of Foreign Affairs of the Republic of Slovenia. He has a long history in academia, consulting, and entrepreneurship. His own consulting firm, Palemid, has managed twenty significant projects, such as Cooperation Program Interreg V-A (Slovenia-Austria) and Capacity Building for the Serbian Chamber of Enforcement Agents. He has also participated in many international projects in Italy, Germany, Great Britain, the United States, Spain, Turkey, France, Romania, Croatia, Montenegro, Malaysia, and China. Dr. Bobek is also a co-founder of the Academy of Regional Management in Slovenia.",institutionString:"Universities of Applied Sciences FH Joanneum, Austria",institution:null},editorTwo:{id:"293992",title:"Dr.",name:"Tatjana",middleName:null,surname:"Horvat",slug:"tatjana-horvat",fullName:"Tatjana Horvat",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002hXb0hQAC/Profile_Picture_1642419002203",biography:"Tatjana Horvat works as a professor for accountant and auditing at the University of Primorska, Slovenia. She is a Certified State Internal Auditor (licensed by Ministry of Finance RS) and Certified Internal Auditor for Business Sector and Certified accountant (licensed by Slovenian Institute of Auditors). At the Ministry of Justice of Slovenia, she is a member of examination boards for court expert candidates and judicial appraisers in the following areas: economy/finance, valuation of companies, banking, and forensic investigation of economic operations/accounting. At the leading business newspaper Finance in Slovenia (Swedish ownership), she is the editor and head of the area for business, finance, tax-related articles, and educational programs.",institutionString:null,institution:{name:"University of Primorska",institutionURL:null,country:{name:"Slovenia"}}},editorThree:null},{id:"87",title:"Economics",coverUrl:"https://cdn.intechopen.com/series_topics/covers/87.jpg",isOpenForSubmission:!0,editor:{id:"327730",title:"Prof.",name:"Jaime",middleName:null,surname:"Ortiz",slug:"jaime-ortiz",fullName:"Jaime Ortiz",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y00002zaOKZQA2/Profile_Picture_1642145584421",biography:"Dr. Jaime Ortiz holds degrees from Chile, the Netherlands, and the United States. He has held tenured faculty, distinguished professorship, and executive leadership appointments in several universities around the world. Dr. Ortiz has previously worked for international organizations and non-government entities in economic and business matters, and he has university-wide globalization engagement in more than thirty-six countries. He has advised, among others, the United Nations Development Program, Inter-American Development Bank, Organization of American States, Pre-investment Organization of Latin America and the Caribbean, Technical Cooperation of the Suisse Government, and the World Bank. Dr. Ortiz is the author, co-author, or editor of books, book chapters, textbooks, research monographs and technical reports, and refereed journal articles. He is listed in Who’s Who in the World, Who’s Who in America, Who’s Who in Finance and Business, Who’s Who in Business Higher Education, Who’s Who in American Education, and Who’s Who Directory of Economists. Dr. Ortiz has been a Fulbright Scholar and an MSI Leadership Fellow with the W.K. Kellogg Foundation. His teaching interests revolve around global economies and markets while his research focuses on topics related to development and growth, global business decisions, and the economics of technical innovation.",institutionString:null,institution:{name:"University of Houston",institutionURL:null,country:{name:"United States of America"}}},editorTwo:null,editorThree:null},{id:"88",title:"Marketing",coverUrl:"https://cdn.intechopen.com/series_topics/covers/88.jpg",isOpenForSubmission:!1,editor:null,editorTwo:null,editorThree:null}]},overviewPageOFChapters:{paginationCount:1,paginationItems:[{id:"81831",title:"Deep Network Model and Regression Analysis using OLS Method for Predicting Lung Vital Capacity",doi:"10.5772/intechopen.104737",signatures:"Harun Sümbül",slug:"deep-network-model-and-regression-analysis-using-ols-method-for-predicting-lung-vital-capacity",totalDownloads:2,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Decision Science - Recent Advances and Applications",coverURL:"https://cdn.intechopen.com/books/images_new/11604.jpg",subseries:{id:"86",title:"Business and Management"}}}]},overviewPagePublishedBooks:{paginationCount:1,paginationItems:[{type:"book",id:"11392",title:"Leadership in a Changing World",subtitle:"A Multidimensional Perspective",coverURL:"https://cdn.intechopen.com/books/images_new/11392.jpg",slug:"leadership-in-a-changing-world-a-multidimensional-perspective",publishedDate:"May 11th 2022",editedByType:"Edited by",bookSignature:"Muhammad Mohiuddin, Bilal Khalid, Md. 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He has published research in Research Policy, Applied Economics, Review of Economic Philosophy, Strategic Change, International Journal of Logistics, Sustainability, Journal of Environmental Management, Journal of Global Information Management, Journal of Cleaner Production, M@N@GEMENT, and more. He is a member of CEDIMES Institut (France), Academy of International Business (AIB), Strategic Management Society (SMS), Academy of Management (AOM), Administrative Science Association of Canada (ASAC), and Canadian council of small business and entrepreneurship (CCSBE). He is currently the director of the Research Group on Contemporary Asia (GERAC) at Laval University. 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Behind these definitions are hidden all the aspects of normal and pathological functioning of all processes that the topic ‘Metabolism’ will cover within the Biochemistry Series. 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Thus proteomics, an area of research that detects all protein forms expressed in an organism, including splice isoforms and post-translational modifications, is more suitable than genomics for a comprehensive understanding of the biochemical processes that govern life. The most common proteomics applications are currently in the clinical field for the identification, in a variety of biological matrices, of biomarkers for diagnosis and therapeutic intervention of disorders. From the comparison of proteomic profiles of control and disease or different physiological states, which may emerge, changes in protein expression can provide new insights into the roles played by some proteins in human pathologies. Understanding how proteins function and interact with each other is another goal of proteomics that makes this approach even more intriguing. Specialized technology and expertise are required to assess the proteome of any biological sample. Currently, proteomics relies mainly on mass spectrometry (MS) combined with electrophoretic (1 or 2-DE-MS) and/or chromatographic techniques (LC-MS/MS). MS is an excellent tool that has gained popularity in proteomics because of its ability to gather a complex body of information such as cataloging protein expression, identifying protein modification sites, and defining protein interactions. 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