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The grain amaranths (
The grain amaranth was an important crop for the Aztecs and the Incas [1, 2]. In the pre-Columbian period, it was one of the major crops like beans and corn in the New World and carried religious importance [1]. During the various dates of the religious calendar, Aztec people ground amaranth seeds mixed with honey or human blood and make different shapes of animals, birds, mountains, and gods, and they were eaten during the ceremonies [1, 2].
Prior to the conquest by Spaniards, Mexicans had a culture where a ceremonial paste called
Along with the widespread use in food products, grain amaranths also gained religious significance in India and Nepal. In Uttar Pradesh, India, the crop amaranth is recognized as
Based on the solubility and extractability, there are four major seed storage proteins in plants: albumins, globulins, prolamins, and glutelins. In pseudo-cereals, including amaranth, the major seed storage proteins are composed of albumin, globulin, and glutelin [9, 10, 11, 12, 13]. However, there are some reports showing traces of prolamins in some of the amaranth species [10, 12]. Storage proteins accumulate in developing seeds and store nitrogen, carbon, and sulfur [14]. These proteins are hydrolyzed and mobilized during seed germination and early seedling growth [14, 15]. They do not carry any enzymatic functions and are found only in seeds. However, some storage proteins may also be involved in defense or metabolism. These proteins are synthesized in the rough endoplasmic reticulum. As seeds mature, they are collected in the protein bodies that are derived from vacuole [15]. They may also act as a sink for excess nitrogen.
Chief distinction between the major proteins is outlined as follows: albumin storage proteins are water soluble with low molecular weight 10–18 kDa and low isoelectric point between pH 4.0 and 5.0 [16]. Based on the sedimentation coefficients (S20w), albumin has the coefficient of approximately 2S; therefore it is defined as 2S albumin [17]. However, in the case of pseudo-cereals, the sedimentation coefficients of 1.7S comprised of polypeptides with Mr. ranging from 4000 to 20,000, and they are high in sulfur-containing amino acids, including cysteine and methionine [17]. Majority of albumins consists of two polypeptide chains linked by four disulfide bonds [18]. They are found in dicot plants and account for 20–60% of the total proteins in seed [16]. Globulin storage proteins are soluble in salt with their molecular weights in the range of 150–190 kDa [16]. They have an isoelectric point of pH 5–10 [19]. Based on the sedimentation coefficients, (S20w), globulin has the coefficients ranging from 7S to 12S [16]. They lack cysteine residues and lack disulfide bonds [16]. Glutelin storage proteins are soluble in borate buffer but poorly soluble in water. They have molecular weights in the range of 45–150 kDa and an isoelectric point range between the pH range of 4.8 and 8.7 and are highly hydrophobic in nature [16]. They are high in proline and glutamine content [16]. One of the distinctive signal peptides that is distinguished from other storage proteins is the 37 amino acid sequence at the NH2 terminus that is followed by 269 amino acid acidic subunit (Mr = 32,489) and a 193 amino acid basic unit (Mr = 19,587) [20].
Amaranth grain and leaves are popular for their nutritional value. Protein content is about 15% in grains [21], and it has a well-balanced amino acid composition with high lysine content [22]. Lysine is the limiting amino acid in most of the cereal crops including wheat, sorghum, and rice, but it is abundant in amaranth; only the first limiting amino acid in amaranth is leucine [21], and it is also abundant in most of our staple food sources. Therefore, amaranth is considered as a complete protein supplier when it is consumed with another cereal.
Grain amaranth plant produces millions of seeds that are small (≈1 mm) in diameter and has not been analyzed for detailed morphological features [23, 24]. The color of the seeds is highly variable from white, gold, brown, and pink to black [24]. Coons [25] reported that black color is dominant over white and a single gene controls the inheritance. It is possible that the seed coat colors, perisperm type, and seed shape in
Starch is formed by two glucan polymers, amylose and amylopectin [26], and is stored in the perisperm of amaranth seed [27]. Like the grasses, amaranth starch can be classified as either glutinous (waxy) or non-glutinous (starchy) [27]. Non-glutinous (starchy) seeds contain both amylose and amylopectin, and glutinous (waxy) seeds lack amylose [24, 26]. Both perisperm forms are found in all three species of the grain
Squalene is a unique triterpene compound that has a biological and pharmacological importance. Although squalene is an intermediate product in the cholesterol biosynthesis process [30], earlier work has predicted that daily consumption can decrease cholesterol levels [31]. It can inhibit chemically induced breast and colon cancer [32]. There are also evidences of a lower frequency of heart diseases in the Mediterranean region [33], as people in this region consume more olive oil, which is rich in squalene [34]; thus it is believed that squalene consumption in the diet has a positive impact on human health. It originates partly from cholesterol synthesis process and partly from dietary sources such as plant oils or shark liver. Among the different types of plant oils, oil extracted from olive and amaranth has a higher concentration of squalene [34, 35]. Especially, grain amaranths have been suggested as an alternative natural source of squalene. The chemical content in five different accessions of
One of the most common and costly problems affecting bakery products is fungal contamination. Rizzello et al. [45] reported that the use of amaranth in bakery products can enhance antifungal activity in bread. Amaranth seeds contain some antifungal peptides, which can show a defensive response toward pathogenic fungi [50]. It is noteworthy to mention that amaranth is rich in betalain pigment, which has also been shown to exhibit antimicrobial activities. Thus, betalain is a high demand in the food coloring industry. These pigments with a strong hue not only color the food products but also provide strong antimicrobial response. Thus, amaranth can be an excellent natural additive in the food industry.
To date, 75 different betalains have been reported from 17 of the 34 families in the Caryophyllales order [51]. Interestingly, no species outside Caryophyllales has been found to produce betalains naturally [52]. Most species in the Amaranthaceae have detectable betalains in organs including root, stem, leaves, and flowers. The ecological functions of betalains are presumed to include attracting pollinators to flowers and possibly protect vegetative cells from stresses. There is a long-standing speculation that these pigments are involved in response to abiotic and biotic stresses, but evidence in support of this idea is scant.
Red beetroot
Amaranth was a staple of the Aztec diet and is described now as a “superfood” in part because of its high protein content and balanced amino acid profile. It produces a large number of seeds loaded with high-quality protein components, squalene, lysine, and many other health benefitting nutritional and nutraceutical components. Amaranth grain is gluten-free, which makes it a desirable food crop for millions of peoples all over the world. This widely distributed and protein-rich pseudo-cereal has a potential to support food security. However, this crop is still not in the mainstream cultivation practices in North America and in many parts of the world. With the increasing understanding of molecular and biological information of this crop, there is a strong basis for amaranth to be considered for our future generation. As we are witnessing the massive increase in human population in the next few decades and global climate change, we strongly believe amaranth has a huge potential to support the global food system.
All authors have read and approved the manuscript for submission. There is no competing interest.
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Greatest advantage of this thermal insulation material is its low thermal conductivity, which at 20–25 mW/(m·K) is superior to other commercially available insulation materials. In recent years polyurethane materials from renewable resources have been widely studied. But their use on industrial scale was limited due to inconstant performance and relatively high price of raw materials. Different bio-based raw materials, such as rapeseed oil and tall oil, could provide abundant feedstock for PU foam production. Decrease of flammability of PU materials conventionally is achieved by addition of flame retardants, halogen-containing compounds, and phosphates. It can be considered that halogenated fire retardants could have several health hazards, such as volatile compound emission from materials and toxic gas release during burning process. Expandable graphite could be an answer to this flammability problem. This chapter describes development of bio-based rigid polyurethane foams and their flammability reduction using sustainable flame retardants. Different expandable graphite intumescent flame retardants provided significant flammability reduction while maintaining low thermal conductivity of insulation materials.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Mikelis Kirpluks, Ugis Cabulis and Andris Avots",authors:[{id:"177961",title:"M.Sc.",name:"Mikelis",middleName:null,surname:"Kirpluks",slug:"mikelis-kirpluks",fullName:"Mikelis Kirpluks"},{id:"178278",title:"Dr.",name:"Ugis",middleName:null,surname:"Cabulis",slug:"ugis-cabulis",fullName:"Ugis Cabulis"},{id:"178280",title:"Dr.",name:"Maria",middleName:null,surname:"Kuranska",slug:"maria-kuranska",fullName:"Maria Kuranska"},{id:"178281",title:"Prof.",name:"Aleksander",middleName:null,surname:"Prociak",slug:"aleksander-prociak",fullName:"Aleksander Prociak"},{id:"178282",title:"BSc.",name:"Andris",middleName:null,surname:"Avots",slug:"andris-avots",fullName:"Andris Avots"}]},{id:"50729",doi:"10.5772/63311",title:"Unconventional Insulation Materials",slug:"unconventional-insulation-materials",totalDownloads:2459,totalCrossrefCites:4,totalDimensionsCites:6,abstract:"Materials obtained from petrochemicals (mainly polystyrene) or from natural sources processed with high-energy consumptions such as glass and rock wools are commonly utilized for the insulation of buildings. From the perspective of sustainable development, it is important to choose easily recyclable, renewable, locally available and environmentally friendly raw materials. Thermal performance of unconventional insulation materials such as pine apple leaves, wheat straw, rice straw, rice husk/hull, coconut fibre, bagasse, date palm fibre, cellulose fibre-forestry waste, corn cob and sheep wool were investigated for this study. In addition, an experiment was conducted to compare the thermal performance of different materials being used at the Eco-Center in Turkey. As a result, it can be said that the thermal conductivity of petroleum by-products (XPS, EPS, polyurethane foam) is slightly lower than that of plant/agricultural waste materials; however, preferring the latter over the former has many hidden advantages that have great long-term impacts.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Neşe Dikmen and Soofia Tahira Elias Ozkan",authors:[{id:"178329",title:"Associate Prof.",name:"Nese",middleName:null,surname:"Dikmen",slug:"nese-dikmen",fullName:"Nese Dikmen"}]},{id:"50068",doi:"10.5772/62339",title:"Possible Applications of Corncob as a Raw Insulation Material",slug:"possible-applications-of-corncob-as-a-raw-insulation-material",totalDownloads:2439,totalCrossrefCites:1,totalDimensionsCites:2,abstract:"Some alternative applications of corncob as a raw thermal insulation material are presented in this research work. Usually, corncob has been treated as an agricultural waste. Finding practical applications of this waste in product manufacturing may preserve the environment and may also allow using more green technologies. Therefore, a corncob particleboard, a lightweight concrete for nonstructural purposes, and a lightweight concrete masonry unit (CMU) are the granulated corncob-based products proposed. These products are studied in terms of thermal performance, and some thermal parameters are delivered. The results obtained through the experimental study allowed to estimate the thermal conductivity of the granulated corncob and of the granulated corncob particleboards. The values obtained were 0.058 and 0.101 W/m°C, respectively. A thermal transmission coefficient of 1.99 W/m2°C was obtained for the nonstructural corncob lightweight concrete, and it was concluded that the density and the thermal properties of this alternative solution are in accordance with the properties of the currently used expanded clay concrete. For the granulated corncob lightweight CMU, a value of 1.15 W/m2°C was estimated. This shows that this agricultural waste may have potential as a thermal insulation product.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Jorge Pinto, Ana Briga Sá, Sandra Pereira, Isabel Bentes and\nAnabela Paiva",authors:[{id:"80460",title:"Prof.",name:"Isabel",middleName:null,surname:"Bentes",slug:"isabel-bentes",fullName:"Isabel Bentes"},{id:"179060",title:"Dr.",name:"Jorge Tiago",middleName:null,surname:"Pinto",slug:"jorge-tiago-pinto",fullName:"Jorge Tiago Pinto"},{id:"184190",title:"Prof.",name:"Ana",middleName:null,surname:"Briga Sá",slug:"ana-briga-sa",fullName:"Ana Briga Sá"},{id:"184191",title:"Prof.",name:"Sandra",middleName:null,surname:"Pereira",slug:"sandra-pereira",fullName:"Sandra Pereira"},{id:"184192",title:"Prof.",name:"Anabela",middleName:null,surname:"Paiva",slug:"anabela-paiva",fullName:"Anabela Paiva"}]},{id:"50174",doi:"10.5772/62294",title:"Seismic Aspects of the Application of Thermal Insulation Boards Beneath the Foundations of Buildings",slug:"seismic-aspects-of-the-application-of-thermal-insulation-boards-beneath-the-foundations-of-buildings",totalDownloads:2072,totalCrossrefCites:2,totalDimensionsCites:2,abstract:"In recent years, there has been a significant increase in the construction of energy-efficient buildings. These buildings are mainly characterized by their thermal envelope, which needs to follow the complete outer perimeter of the building without any interruptions, to avoid thermal bridges. It has been observed, however, that the specific new details which prevent the occurrence of thermal bridges can, in many cases, substantially affect the structural integrity of such buildings during earthquakes. This chapter deals with the seismic aspects of the application of thermal insulation (TI) boards beneath the foundations of buildings. For this purpose, the mechanical characteristics of the most commonly used material in practice (i.e., extruded polystyrene — XPS) were experimentally determined. Additionally, the shear behaviour of differently composed TI foundation sets was investigated and their friction capacity estimated. The authors have proposed a new solution for the foundation detail, which is based on controlling the sliding mechanism between the individual layers of TI boards in order to reduce the seismic forces induced on the superstructure. The proposed detail with a specially designed sliding layer surface is made of commonly used TI materials for modern passive houses, thus reducing the potential additional costs. The solution was verified by means of nonlinear dynamic analysis of several realistic building models and various friction coefficients between XPS boards. The selected results are presented in terms of fragility curves for the occurrence of sliding between the layers of XPS boards. Based on these curves, the desired seismic response scenario and level of protection of a building structure could be selected.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"David Koren, Vojko Kilar and Boris Azinović",authors:[{id:"178243",title:"Dr.",name:"David",middleName:null,surname:"Koren",slug:"david-koren",fullName:"David Koren"},{id:"178252",title:"Dr.",name:"Boris",middleName:null,surname:"Azinović",slug:"boris-azinovic",fullName:"Boris Azinović"},{id:"178253",title:"Prof.",name:"Vojko",middleName:null,surname:"Kilar",slug:"vojko-kilar",fullName:"Vojko Kilar"}]}],mostDownloadedChaptersLast30Days:[{id:"51497",title:"The Review of Some Commonly Used Methods and Techniques to Measure the Thermal Conductivity of Insulation Materials",slug:"the-review-of-some-commonly-used-methods-and-techniques-to-measure-the-thermal-conductivity-of-insul",totalDownloads:5507,totalCrossrefCites:24,totalDimensionsCites:45,abstract:"The use of insulation materials is considered as one of the most effective means of conserving energy in various fields. Thermal insulation materials enable systems to achieve energy efficiency. Many different thermal insulation materials have been developed to reduce heat flow by limiting conduction, convection, and/or radiation while performing one or more functions. These functions may vary in the context of thermal design, numerical simulations, and a wide range of engineering problems, such as determining the heat loss, temperature field, isolation, and cooling conservation, and in a variety of other technologies. One of the most effective ways to identify and determine performance is effective thermal conductivity. The thermal measurement performance is usually evaluated in a temperature and signal gradient for single or combined homogeneous/heterogenous materials. The two main categories of thermal conductivity measurement techniques are steady‐state methods and transient methods. The aim of this chapter is to present various measurement methods and to investigate their suitability for method purposes. This chapter presents new and accurate experimental techniques and methods for measuring the thermal conductivity of several most commonly used insulation materials. Some of these methods are commonly used in the field for measuring the thermal property of insulation materials. On the other hand, different insulation measurement practices are presented depending upon the overall structures. The analysis predicting the thermal conductivities of insulation materials is also discussed.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Numan Yüksel",authors:[{id:"178245",title:"Dr.",name:"Numan",middleName:null,surname:"Yüksel",slug:"numan-yuksel",fullName:"Numan Yüksel"}]},{id:"50729",title:"Unconventional Insulation Materials",slug:"unconventional-insulation-materials",totalDownloads:2459,totalCrossrefCites:4,totalDimensionsCites:6,abstract:"Materials obtained from petrochemicals (mainly polystyrene) or from natural sources processed with high-energy consumptions such as glass and rock wools are commonly utilized for the insulation of buildings. From the perspective of sustainable development, it is important to choose easily recyclable, renewable, locally available and environmentally friendly raw materials. Thermal performance of unconventional insulation materials such as pine apple leaves, wheat straw, rice straw, rice husk/hull, coconut fibre, bagasse, date palm fibre, cellulose fibre-forestry waste, corn cob and sheep wool were investigated for this study. In addition, an experiment was conducted to compare the thermal performance of different materials being used at the Eco-Center in Turkey. As a result, it can be said that the thermal conductivity of petroleum by-products (XPS, EPS, polyurethane foam) is slightly lower than that of plant/agricultural waste materials; however, preferring the latter over the former has many hidden advantages that have great long-term impacts.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Neşe Dikmen and Soofia Tahira Elias Ozkan",authors:[{id:"178329",title:"Associate Prof.",name:"Nese",middleName:null,surname:"Dikmen",slug:"nese-dikmen",fullName:"Nese Dikmen"}]},{id:"50924",title:"Flammability of Bio-Based Rigid Polyurethane Foam as Sustainable Thermal Insulation Material",slug:"flammability-of-bio-based-rigid-polyurethane-foam-as-sustainable-thermal-insulation-material",totalDownloads:2657,totalCrossrefCites:8,totalDimensionsCites:14,abstract:"One of the biggest disadvantages of rigid polyurethane foams is its low thermal resistance, high flammability, and high smoke production when burning. Greatest advantage of this thermal insulation material is its low thermal conductivity, which at 20–25 mW/(m·K) is superior to other commercially available insulation materials. In recent years polyurethane materials from renewable resources have been widely studied. But their use on industrial scale was limited due to inconstant performance and relatively high price of raw materials. Different bio-based raw materials, such as rapeseed oil and tall oil, could provide abundant feedstock for PU foam production. Decrease of flammability of PU materials conventionally is achieved by addition of flame retardants, halogen-containing compounds, and phosphates. It can be considered that halogenated fire retardants could have several health hazards, such as volatile compound emission from materials and toxic gas release during burning process. Expandable graphite could be an answer to this flammability problem. This chapter describes development of bio-based rigid polyurethane foams and their flammability reduction using sustainable flame retardants. Different expandable graphite intumescent flame retardants provided significant flammability reduction while maintaining low thermal conductivity of insulation materials.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Mikelis Kirpluks, Ugis Cabulis and Andris Avots",authors:[{id:"177961",title:"M.Sc.",name:"Mikelis",middleName:null,surname:"Kirpluks",slug:"mikelis-kirpluks",fullName:"Mikelis Kirpluks"},{id:"178278",title:"Dr.",name:"Ugis",middleName:null,surname:"Cabulis",slug:"ugis-cabulis",fullName:"Ugis Cabulis"},{id:"178280",title:"Dr.",name:"Maria",middleName:null,surname:"Kuranska",slug:"maria-kuranska",fullName:"Maria Kuranska"},{id:"178281",title:"Prof.",name:"Aleksander",middleName:null,surname:"Prociak",slug:"aleksander-prociak",fullName:"Aleksander Prociak"},{id:"178282",title:"BSc.",name:"Andris",middleName:null,surname:"Avots",slug:"andris-avots",fullName:"Andris Avots"}]},{id:"50068",title:"Possible Applications of Corncob as a Raw Insulation Material",slug:"possible-applications-of-corncob-as-a-raw-insulation-material",totalDownloads:2439,totalCrossrefCites:1,totalDimensionsCites:2,abstract:"Some alternative applications of corncob as a raw thermal insulation material are presented in this research work. Usually, corncob has been treated as an agricultural waste. Finding practical applications of this waste in product manufacturing may preserve the environment and may also allow using more green technologies. Therefore, a corncob particleboard, a lightweight concrete for nonstructural purposes, and a lightweight concrete masonry unit (CMU) are the granulated corncob-based products proposed. These products are studied in terms of thermal performance, and some thermal parameters are delivered. The results obtained through the experimental study allowed to estimate the thermal conductivity of the granulated corncob and of the granulated corncob particleboards. The values obtained were 0.058 and 0.101 W/m°C, respectively. A thermal transmission coefficient of 1.99 W/m2°C was obtained for the nonstructural corncob lightweight concrete, and it was concluded that the density and the thermal properties of this alternative solution are in accordance with the properties of the currently used expanded clay concrete. For the granulated corncob lightweight CMU, a value of 1.15 W/m2°C was estimated. This shows that this agricultural waste may have potential as a thermal insulation product.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Jorge Pinto, Ana Briga Sá, Sandra Pereira, Isabel Bentes and\nAnabela Paiva",authors:[{id:"80460",title:"Prof.",name:"Isabel",middleName:null,surname:"Bentes",slug:"isabel-bentes",fullName:"Isabel Bentes"},{id:"179060",title:"Dr.",name:"Jorge Tiago",middleName:null,surname:"Pinto",slug:"jorge-tiago-pinto",fullName:"Jorge Tiago Pinto"},{id:"184190",title:"Prof.",name:"Ana",middleName:null,surname:"Briga Sá",slug:"ana-briga-sa",fullName:"Ana Briga Sá"},{id:"184191",title:"Prof.",name:"Sandra",middleName:null,surname:"Pereira",slug:"sandra-pereira",fullName:"Sandra Pereira"},{id:"184192",title:"Prof.",name:"Anabela",middleName:null,surname:"Paiva",slug:"anabela-paiva",fullName:"Anabela Paiva"}]},{id:"50506",title:"Thermal Insulation Material Based on “Jute”",slug:"thermal-insulation-material-based-on-jute-",totalDownloads:2314,totalCrossrefCites:2,totalDimensionsCites:2,abstract:"Among the different natural fibres, jute is a less expensive fibre, annually renewable, and commercially available compared to other natural fibre crops. This jute is mostly cultivated in India and Bangladesh. More than a century, this fibre is well known as packaging (sacks), hessian, and carpet backing. Since 1950s, the synthetic fibres slowly took the market share of conventional jute textiles due to their low cost and high production speed. As far as suitability of the insulating material is concerned, it has high potential of using as three types of insulation (thermal, sound, and electrical). This present chapter gives emphasis on the basic methods of measuring jute based thermal insulation materials in different application areas. Apart from its evaluation methods, special attention has been made on the important factors affecting the thermal insulation behaviours of the jute-based textile materials. Focusing the needs of the industry, present chapter also covers the future aspects regarding the insulation application from jute-based materials.",book:{id:"5124",slug:"insulation-materials-in-context-of-sustainability",title:"Insulation Materials in Context of Sustainability",fullTitle:"Insulation Materials in Context of Sustainability"},signatures:"Sanjoy Debnath",authors:[{id:"23285",title:"Dr.",name:"Sanjoy",middleName:null,surname:"Debnath",slug:"sanjoy-debnath",fullName:"Sanjoy Debnath"}]}],onlineFirstChaptersFilter:{topicId:"936",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:8,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:286,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:106,numberOfOpenTopics:3,numberOfUpcomingTopics:1,issn:"2631-6188",doi:"10.5772/intechopen.71852",isOpenForSubmission:!0},{id:"13",title:"Veterinary Medicine and Science",numberOfPublishedBooks:9,numberOfPublishedChapters:101,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:11,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:9,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. The whole process of submitting an article and editing of the submitted article goes extremely smooth and fast, the number of reads and downloads of chapters is high, and the contributions are also frequently cited.",author:{id:"55578",name:"Antonio",surname:"Jurado-Navas",institutionString:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRisIQAS/Profile_Picture_1626166543950",slug:"antonio-jurado-navas",institution:{id:"720",name:"University of Malaga",country:{id:null,name:"Spain"}}}},{id:"6",text:"It is great to work with the IntechOpen to produce a worthwhile collection of research that also becomes a great educational resource and guide for future research endeavors.",author:{id:"259298",name:"Edward",surname:"Narayan",institutionString:null,profilePictureURL:"https://mts.intechopen.com/storage/users/259298/images/system/259298.jpeg",slug:"edward-narayan",institution:{id:"3",name:"University of Queensland",country:{id:null,name:"Australia"}}}}]},series:{item:{id:"24",title:"Sustainable Development",doi:"10.5772/intechopen.100361",issn:null,scope:"