Main characteristics of studies.
\r\n\tEqually important are the consequences deriving from the extraordinary nature of the present times. The COVID-19 pandemic and the restrictive measures to contain the infection (lockdown and "physical distancing" in primis) have revolutionized the lives, and a distortion/modification of habits, rhythms, arrangements will continue to be necessary.
\r\n\tGovernments have implemented a series of actions to mitigate the spread of infections and alleviate the consequent pressure on the hospital system. On the other hand, the Covid-19 pandemic has caused a series of other cascading effects that will probably be much more difficult to mitigate and which expose to complex consequences. The past two years have brought many challenges, particularly for healthcare professionals, students, family members of COVID-19 patients, people with mental disorders, the frail, the elderly, and more generally those in disadvantaged socio-economic conditions, and workers whose livelihoods have been threatened. Indeed, the substantial economic impact of the pandemic may hinder progress towards economic growth as well as progress towards social inclusion and mental well-being.
\r\n\t
\r\n\tAlthough in all countries the knowledge on the impact of the pandemic on mental health is still limited and mostly derived from experiences only partially comparable to the current epidemic, such as those referring to the SARS or Ebola epidemics, it is likely that the demand for intervention it will increase significantly in the coming months and years. The extraordinary growth of scientific research in the field of neuroscience now offers the possibility of a new perspective on the relationship between mind and brain and generates new scenarios in understanding the long wave of the pandemic and in the prospects for treatment. Moreover, the pandemic also has led to opportunities to implement remote monitoring and management interventions.
\r\n\t
\r\n\tOverall this volume will address the complex relationship existing between COVID-19, mental health, acquired knowledge, and possible interventions taking a highly multidisciplinary approach; from physiological and psychobiological mechanisms, and neuromodulation through medical treatment, psychosocial interventions, and self-management.
The warm-up is widely understood as a preparation practice to perform before any physical exercise. It is usually used by athletes, coaches, and general physical activity participants, to obtain an optimal physical and psychological state and to get kinetic and coordinative preparation in the prevention of injuries during the practice [1, 2, 3, 4].
Based on previous studies, the main benefits of the warm-up were increased body temperature, decreased muscle and joint stiffness, [5] increased efficiency in the transmission of nerve impulses, [6] and, simultaneously, the increase in metabolic reactions, leading to the improvement of muscle power [7]. It may also lead to an increase in the dissociation of oxygen, hemoglobin, and myoglobin, causing vasodilation and, consequently, an increase in muscle blood flow [8]. These changes could be promoted by two basic types of warm-up, specifically, the active and passive warm-up [3, 9]. Hot water bags, short waves, hot baths, sauna, are some of the means used to complete a passive warm-up [3, 9]. This type of warm-up provides an increase in muscle and central temperature without energy expenditure, with the use of external heating [3, 9]. On the other hand, the active warm-up can be performed through the use of physical activity, for instance, walking, running, swimming, cycling, or any other specific exercises [3, 9, 10]. One of the main advantages of the active warm-up is its specificity, as it prepares the muscles that will be used during the activity and could benefit from the movement itself [3, 9].
Despite the positive influence of warm-up on sports performance, [9] there is still a lack of specific investigations about the variables that compose it, the optimal warm-up design as well as its effects on the force production and strength training performance [11, 12]. Any movement performed during physical activity requires the use of specific muscles to produce movement. The movement depends on muscle performance and therefore force production, either in maximal or submaximal efforts so that the exercise could be carried out successfully. The role of muscle strength performance is widely recognized in the scientific and sports context [9, 13]. Maximizing the strength and optimizing force production should be a priority to any person participating or willing to participate in sports performance or physical exercise. For this performance improvement, in physical activity and sport context, resistance training (strength training exercises where muscles exert a force against an external load) assumes an important role to develop individual capacities. Moreover, to improve the efficiency of resistance training and force production, the warm-up could be essential. It is important to understand the way that warm-ups can influence strength training and performance, to analyze the effects, and then to provide a useful strategy to apply in the real context. With this knowledge, professionals are able to design a warm-up that will optimize resistance training and thus, maximizing strength gains, force production, and resulting in improvements in physical exercise performance.
It is then important to understand the effect of warm-up in strength performance and this may be through the assessment of maximum dynamic strength (load at 1 repetition maximum: 1RM), isometric strength, or even through the rate of production of muscle strength [3, 10, 11, 12, 14]. Previous findings suggested that the warm-up procedure (for example, aerobic exercise, specific activity, and stretching) seems to influence the results of the 1RM assessment, as well as to improve the strength produced during the assessments [3, 12, 15]. Generally, it is recommended that the warm-up routine prior to a 1RM test includes general (aerobic) and specific (imitating target activity) exercises [16, 17, 18]. The general warm-up is usually completed using an aerobic activity of low to moderate intensity with the main purpose to increase the muscle temperature, which can be performed with different types of aerobic activity (for example, running or cycling) [3, 10, 12]. Stretching exercises can also be performed as part of a typical warm-up routine. Regarding the specific warm-up, it is recommended to perform it by including exercises that use the same or similar movements as the main activity at progressively higher intensities in an attempt to increase neuromuscular activation [2, 12]. In fact, there is suitable scientific evidence in the literature to support the implementation of only specific warm-ups before exercise, [19, 20] however, the effects of general warm-up on strength measurements are not clear yet.
In order to design an effective warm-up, several parameters and variables are associated with it, which seems to be extremely difficult to select an ideal type of warm-up for all sports. Then, it is necessary to understand what type of warm-up is more appropriate to the variable that influences performance in all exercises, i.e. force production. Thus, our narrative review aimed to analyze and discuss the main results of the literature on the effects of warm-up on force production and strength, by analyzing responses during resistance training and assessments of maximum strength. The results determined in this study, aimed to elucidate sport-related professionals about the effects of warm-up and help them to design their training.
The current study intended to summarize the findings and evidence reported in the literature about the effect of warm-up protocols in force production, strength evaluation and resistance training. In order to identify relevant articles on this topic, an extensive bibliographic search was carried out. Of all the articles identified, only nine were chosen, which corresponded to the theme addressed here.
A search in the literature that studied different types of warm-up was conducted, where the focus was to understand the effects of warm-up in strength performance. Considering that active warm-up is the most commonly used by people engaged in sports and physical exercise and that is the most investigated, it was only included original articles that focused on the effects of active warm-up. Original research articles published between 2010 and 2020 were selected to identify studies in which warm-up and strength performance were reported. The search for scientific articles was performed in 4 databases (Web of Science, Scopus, PubMed and ScienceDirect) in which the keywords “warming-up”, “resistance training” and “strength” with multiple combinations were used and with no restrictions of language.
To carry out this research, the studies had to respect inclusion criteria such as, being focused on active warm-up, being cross-sectional studies, focusing on measures of strength, being carried out by healthy individuals, aged 18 years or over. As exclusion criteria, all types of review (qualitative review, systematic review and meta-analysis) were excluded, the non-use of at least one active warm-up and studies with young participants (<18 years old). Articles that were not written in English were also excluded.
The literature search found 163 relevant articles, of which 152 did not meet the defined inclusion criteria. These studies were excluded based on the focus on other physical activities rather than strength-related ones, such as running performance, anthropometric characteristics, or strength evaluation performed in participants of other chronological ages including children. Consequently, a total of 11 studies were considered for further analysis. These studies were published between 2009 and 2020. The studies focus on the results that different types of warm-ups may cause in resistance training (Table 1).
Authors | Objective | Sample | Warm-ups | Main outcomes |
---|---|---|---|---|
Ribeiro et al. [21] | Verify the effects of three specific warm-ups on squat and bench press resistance training. | 14 males | 3 protocols:
| The results showed that the strength outputs were optimized mainly by warm-up with 80% of the training load in the squat training and by the warm-up that brought the two loads together (40% and 80%) in the bench press training. |
Krzysztofik and Wilk [22] | Determine the effects of plyometric push-ups as a conditioning activity on high-loaded bench press performance. | 24 males | 2 protocols:
| The results demonstrated that plyometric push-ups lead to performance enhancement of the bench press exercise at 70%1RM. |
Rodrigues et al. [23] | Investigate the acute effect of three different warm-up protocols on a maximal isokinetic strength test. | 22 males | 3 protocols:
| None of warm-ups were able to change the total work of maximal isokinetic strength. |
Mina et al. [24] | Examine the influence of another form of variable resistance during a warm-up on subsequent free-weight 1RM back squat performance compared to free-weight resistance alone. | 16 males | 2 protocols:
| The results are indicative of a potentiating effect of chain-loaded resistance in a warm-up. |
Ribeiro and Romanzini [25] | Investigate the acute effect of different warm-up procedures on the repetition performance of a fatiguing resistance training protocol designed to induce metabolic stress. | 15 males | 4 protocols:
| No significant difference for the sum of repetitions or for fatigue index among conditions for the 3 exercises. |
Abad et al. [26] | Investigate whether the combination of a general with a specific warm-up protocol would improve leg press 1RM values compared with a specific warm- up protocol. | 13 males | 2 protocols:
| These results suggest that a general with a specific warm-up protocol induced temperature-dependent neuromuscular adjustments that increased muscle force production capacity. |
Chattong et al. [27] | Investigate the potentiating effects of different levels of external resistance during box jumps on vertical jump performance. | 12 males | 5 protocols:
| Performing an active dynamic warm-up with or without a weighted vest produced significantly greater posttest vertical jump performance. |
Sotiropoulos et al. [28] | Determine the effects of a specific warm-up using half-squats at low and moderate intensity on vertical jump performance and electromyographic activity of the thigh muscles. | 26 males | 2 protocols:
| The use of a specific warm-up that includes half-squats performed explosively with low to moderate intensity, improves countermovement jump performance. |
Barroso et al. [29] | Investigate the effect of different intensities and durations of general warm-up on 1RM performance. | 16 males | 5 protocols:
| Long-duration low-intensity general warm-up seems to be appropriate to improve 1RM performance in strength-trained individuals |
Resende et al. [30] | Analyze different types of warm-up on the physical performance of Paralympic powerlifting athletes. | 12 males | 3 protocols:
| The different types of warm-up methods did not seem to provide significant differences in the force indicators in elite Paralympic powerlifting athletes. |
Girard et al. [31] | Investigate the influence of two warm-up protocols on neural and contractile parameters of knee extensors | 10 males | 2 protocols:
| Running and strength-based warm-ups induce a similar increase in knee extensors force-generating capacity by improving muscle activation. |
Main characteristics of studies.
It has been evidenced that the warm-up brings positive effects to the subsequent physical exercise, so it is very important to study it and understand how it can be manipulated according to the specificity of exercise training and performance. The purpose of this investigation aimed to analyze and discuss the main results of the literature regarding the effects of warm-up on force production, as well as to analyze those responses during resistance training and maximal strength assessments. The scarcity of research on warm-up protocols in resistance training and strength performance is notorious. Nevertheless, it is possible to verify that the results obtained in most studies are positive. The use of warm-up causes enhancement of performance when external loads are used, especially when the intensity is high. However, more research should be carried out on this topic.
The selected articles of this review tend to focus on the effects that warm-up produces on resistance training, namely the effects on strength performance. Due to the scarcity of articles about the addressed issue, it was difficult to compare the different types and approaches of warm-ups. Moreover, it was also noticed that exercises were not the same in different studies, which also difficult outcomes analysis.
In the study of Rodrigues and collaborators, [23] three different types of warm-up were compared: a general warm-up, a specific warm-up, and a warm-up through stretching, to understand whether it would influence maximal isokinetic training. The results reported that the three types of warm-up had no adverse effect or any type of improvement in acute muscle strength. However, it is important to highlight that the peak of concentric torque reported a lower value in the specific warm-up protocol when compared to the control group, which may mean that the use of a specific warm-up tends to reveal positive results when compared to the control group, which did not perform any type of warm-up.
The study by Ribeiro and Romanzini [25] aimed to compare the effects of three types of warm-ups on the performance of resistance training: a specific warm-up, an aerobic warm-up, and a combined warm-up of both, also using a control group. This study had the particularity of evaluating the performance using repetitions until failure, thus observing whether the conditions would affect resistance training. As in the abovementioned study, none of these conditions showed significant differences in resistance training, although no negative effects were observed after applying a warm-up. This study seems to suggest that the warm-up protocols used do not contribute to the development of strength.
Although the previous two studies have not found a significantly positive response in the strength assessment, the literature reported several benefits on the human body when considering the implementation of warm-up before resistance training [12]. In the study by Abad and his collaborators, [26] the aim was to understand if the implementation of a general warm-up before a specific warm-up would be beneficial when compared with a specific warm-up only. The tests were measured in the leg-press exercise, being evaluated by its 1RM. Two protocols were used in order to determine the effects of warm-up on training: combined warm-up (general with specific) and specific warm-up. The results of the combined warm-up were higher values in the force production, in comparison with the specific warm-up. Considering the positive results of the tests, a combined warm-up would have more benefits than a specific warm-up.
Barroso and his collaborators, [29] purposed to understand the best intensity to use in the general warm-up before the specific warm-up. Thus, four combined warm-up protocols were performed, with different intensities and durations, which were compared with each other and with a control group, which performed only a specific warm-up, with no general warm-up. These researchers found that a general warm-up followed by a specific warm-up would be more beneficial to increase the strength when compared to a specific warm-up that reported lower results. The authors also suggested that when performing the aerobic component of general warm-up, it should be long lasting with low intensity for better results.
On the other hand, the results of Krzysztofik and Wilk [22] did not corroborate with the studies of Abad and his collaborators [26] and Barroso and his collaborators [29]. This study aimed to compare a specific warm-up (named conditioning activity) with a general warm-up, performed before a bench press exercise. In this study, the specific warm-up was performed with a different exercise (plyometric push-ups) from the training exercise (in this case, bench press). The researchers concluded that the use of a specific warm-up had significant results in the strength assessment compared to the general warm-up. The outcomes showed improvement in the bench press exercise performance, being incongruent with the previously mentioned results.
Otherwise, Ribeiro and colleagues, [21] aimed to understand the best intensity to use when only a specific warm-up was performed. This study verified if three types of warm-ups would have an effect on strength training, and its protocols would use three types of external loads in the warm-up exercise: 40% of the training load, 80% of the training load, and the combination of the 40% and 80% of the training load. Positive effects in force production were found when warming-up with higher loads (80% of the training load) before the squat exercise training. The same authors also reported that, when performing a warm-up with low loads and repetitions, there was no effect on strength training performance.
Similar to Ribeiro and colleagues, [21] Minas and collaborators [24] evaluated a specific warm-up in their study. These authors, although also used the squat exercise in their study, used two different warm-ups. A protocol with a chain-loaded (as external weight) and another where it would be used only with the weight of the body, without any help from external loads. The aim of this study was to perceive the effect of another form of variable resistance in a warm-up compared to a warm-up with only bodyweight. After applied the two defined protocols, it was concluded that using a chain-loaded weight as the body’s external weight can enhance our results in the field of strength. Then, it is possible to notice that this study is in agreement with the previous one, although it cannot be directly compared. Both concluded that when using a warm-up with external loads to our body, the results tend to be better.
Sotiropoulos and his collaborators [28] carried out a study to determine the effects of a specific warm-up using low and moderate-intensity squats in the vertical jump. In his study, two warm-up protocols were performed using two different external loads (low and moderate), before performing the countermovement jump. Both protocols demonstrated to be effective when performed before the vertical jump, reporting significant results in the acute force production and the electromyographic activity, showing to be quite beneficial for the countermovement jump.
In the study of Chattong and his companions, [27] which aimed to investigate the potentiating effects of different levels of external resistance (weight vest) during box jumps in the vertical jump, five different warm-ups were assessed. The control condition was performed without any external load and then, the experimental warm-ups were performed with additional weight from 5% to 20% of bodyweight. In this study, the researchers concluded that no improvements in force production were found when increasing the load in the different warm-ups, not even any between using a vest or without it.
The study by Resende and his collaborators [30] aimed to analyze three different types of protocols, to understand their effect on the physical performance of paralympic powerlifting athletes. The protocols applied were: without warm-up, traditional warm-up and stretching warm-up. The results indicated by the researchers revealed that there were no significant differences when applying any of the protocols studied. Although the results did not show significant results, it is important to note that the participants were highly trained athletes and this might have triggered these results.
Gerard and his colleagues, [31] performed the following protocols: running-based warm-up and strength-based warm-up to investigate the influence of two warm-up protocols on the neural and contractile parameters of the knee extensors. It was revealed a significant shortening of time to contract, while the other twitch parameters did not change significantly. Thus, they concluded that both protocols can influence strength training and muscle contraction during training.
After analyzing these studies, there is still controversy around the issue of warming. All studies included in this narrative review are relatively recent, but a consensus has not yet been reached, neither what is the best type of warming up that will have the best results on force production and strength performance. Further investigations should be developed to provide a consensus and clarify the subject. For future studies, it would be interesting to explore this topic a little more. We suggest to study the effect of warm-up on strength training, exploring different types of intensities, in order to achieve more robust and concrete results. The same studies should not be based on a single exercise, but rather deepen the study on several exercises performed in a sequence. It is true that, in a real training context, no single exercise is performed. For example, most resistance training includes more than one exercise and for different muscular groups. It would also be interesting to verify if it will be necessary to warm-up before each exercise and specifically for each exercise, or if the first warm-up before training is enough to guaranty better results during the entire training.
With this narrative review, we could verify that there is a great lack of studies on the subject of warm-up for strength performance, resistance training performance, and force production. It was also possible to show that some authors did not report benefits after warm-up, however, others found quite significant results in their studies. These positive results were either after using only a specific warm-up or using a general warm-up followed by a specific warm-up. So, it is possible to determine that special attention on this topic is needed. Nevertheless, most of the studies tended to suggest that a warm-up should be performed before resistance training is performed. The increased strength outcomes seemed to be better when a higher load is used during warm-up, with few repetitions. Moreover, the use of a general warm-up showed to be beneficial in some specific assessments. Therefore it can also be a strategy to be applied and combined with the specific warm-up. Further investigations should be developed to better understand and determine the effects of warm-up, or even other studies using another type of exercise, so we can provide a more in-depth conclusion.
This work was supported by national funding through the Portuguese Foundation for Science and Technology, I.P., under project UIDB/04045/2020.
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\n\n\r\n\tThis series will provide a comprehensive overview of recent research trends in business and management, economics, and marketing. Topics will include asset liability management, financial consequences of the financial crisis and covid-19, financial accounting, mergers and acquisitions, management accounting, SMEs, financial markets, corporate finance and governance, managerial technology and innovation, resource management and sustainable development, social entrepreneurship, corporate responsibility, ethics and accountability, microeconomics, labour economics, macroeconomics, public economics, financial economics, econometrics, direct marketing, creative marketing, internet marketing, market planning and forecasting, brand management, market segmentation and targeting and other topics under business and management. This book series will focus on various aspects of business and management whose in-depth understanding is critical for business and company management to function effectively during this uncertain time of financial crisis, Covid-19 pandemic, and military activity in Europe.
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He received his MSc and PhD in Biomedical Engineering respectively from the Federal University of Uberlândia (UFU, Brazil) in 2000 and from the University of Reading (UK) in 2005. He completed a one-year Post-Doctoral Fellowship awarded by the DFAIT (Foreign Affairs and International Trade Canada) at the Institute of Biomedical Engineering of the University of New Brunswick (Canada) in 2010. Currently, he is Professor in the Faculty of Electrical Engineering (UFU). He has authored and co-authored more than 200 peer-reviewed publications in Biomedical Engineering. He has been a researcher of The National Council for Scientific and Technological Development (CNPq-Brazil) since 2009. He has served as an ad-hoc consultant for CNPq, CAPES (Coordination for the Improvement of Higher Education Personnel), FINEP (Brazilian Innovation Agency), and other funding bodies on several occasions. He was the Secretary of the Brazilian Society of Biomedical Engineering (SBEB) from 2015 to 2016, President of SBEB (2017-2018) and Vice-President of SBEB (2019-2020). He was the head of the undergraduate program in Biomedical Engineering of the Federal University of Uberlândia (2015 - June/2019) and the head of the Centre for Innovation and Technology Assessment in Health (NIATS/UFU) since 2010. He is the head of the Postgraduate Program in Biomedical Engineering (UFU, July/2019 - to date). He was the secretary of the Parkinson's Disease Association of Uberlândia (2018-2019). Dr. Andrade's primary area of research is focused towards getting information from the neuromuscular system to understand its strategies of organization, adaptation and controlling in the context of motor neuron diseases. 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Novel computational algorithms for image analysis, scene understanding, biometrics, deep learning and their software or hardware implementations for natural and medical images, robotics, VR/AR, applications are some research directions relevant to this topic.",coverUrl:"https://cdn.intechopen.com/series_topics/covers/24.jpg",keywords:"Image Analysis, Scene Understanding, Biometrics, Deep Learning, Software Implementation, Hardware Implementation, Natural Images, Medical Images, Robotics, VR/AR"},{id:"25",title:"Evolutionary Computation",scope:"Evolutionary computing is a paradigm that has grown dramatically in recent years. This group of bio-inspired metaheuristics solves multiple optimization problems by applying the metaphor of natural selection. It so far has solved problems such as resource allocation, routing, schedule planning, and engineering design. Moreover, in the field of machine learning, evolutionary computation has carved out a significant niche both in the generation of learning models and in the automatic design and optimization of hyperparameters in deep learning models. This collection aims to include quality volumes on various topics related to evolutionary algorithms and, alternatively, other metaheuristics of interest inspired by nature. For example, some of the issues of interest could be the following: Advances in evolutionary computation (Genetic algorithms, Genetic programming, Bio-inspired metaheuristics, Hybrid metaheuristics, Parallel ECs); Applications of evolutionary algorithms (Machine learning and Data Mining with EAs, Search-Based Software Engineering, Scheduling, and Planning Applications, Smart Transport Applications, Applications to Games, Image Analysis, Signal Processing and Pattern Recognition, Applications to Sustainability).",coverUrl:"https://cdn.intechopen.com/series_topics/covers/25.jpg",keywords:"Genetic Algorithms, Genetic Programming, Evolutionary Programming, Evolution Strategies, Hybrid Algorithms, Bioinspired Metaheuristics, Ant Colony Optimization, Evolutionary Learning, Hyperparameter Optimization"},{id:"26",title:"Machine Learning and Data Mining",scope:"The scope of machine learning and data mining is immense and is growing every day. It has become a massive part of our daily lives, making predictions based on experience, making this a fascinating area that solves problems that otherwise would not be possible or easy to solve. This topic aims to encompass algorithms that learn from experience (supervised and unsupervised), improve their performance over time and enable machines to make data-driven decisions. It is not limited to any particular applications, but contributions are encouraged from all disciplines.",coverUrl:"https://cdn.intechopen.com/series_topics/covers/26.jpg",keywords:"Intelligent Systems, Machine Learning, Data Science, Data Mining, Artificial Intelligence"},{id:"27",title:"Multi-Agent Systems",scope:"Multi-agent systems are recognised as a state of the art field in Artificial Intelligence studies, which is popular due to the usefulness in facilitation capabilities to handle real-world problem-solving in a distributed fashion. The area covers many techniques that offer solutions to emerging problems in robotics and enterprise-level software systems. Collaborative intelligence is highly and effectively achieved with multi-agent systems. Areas of application include swarms of robots, flocks of UAVs, collaborative software management. Given the level of technological enhancements, the popularity of machine learning in use has opened a new chapter in multi-agent studies alongside the practical challenges and long-lasting collaboration issues in the field. It has increased the urgency and the need for further studies in this field. We welcome chapters presenting research on the many applications of multi-agent studies including, but not limited to, the following key areas: machine learning for multi-agent systems; modeling swarms robots and flocks of UAVs with multi-agent systems; decision science and multi-agent systems; software engineering for and with multi-agent systems; tools and technologies of multi-agent systems.",coverUrl:"https://cdn.intechopen.com/series_topics/covers/27.jpg",keywords:"Collaborative Intelligence, Learning, Distributed Control System, Swarm Robotics, Decision Science, Software Engineering"}],annualVolumeBook:{},thematicCollection:[],selectedSeries:{title:"Artificial Intelligence",id:"14"},selectedSubseries:null},seriesLanding:{item:{id:"7",title:"Biomedical Engineering",doi:"10.5772/intechopen.71985",issn:"2631-5343",scope:"Biomedical Engineering is one of the fastest-growing interdisciplinary branches of science and industry. The combination of electronics and computer science with biology and medicine has improved patient diagnosis, reduced rehabilitation time, and helped to facilitate a better quality of life. Nowadays, all medical imaging devices, medical instruments, or new laboratory techniques result from the cooperation of specialists in various fields. The series of Biomedical Engineering books covers such areas of knowledge as chemistry, physics, electronics, medicine, and biology. This series is intended for doctors, engineers, and scientists involved in biomedical engineering or those wanting to start working in this field.",coverUrl:"https://cdn.intechopen.com/series/covers/7.jpg",latestPublicationDate:"May 7th, 2022",hasOnlineFirst:!0,numberOfOpenTopics:3,numberOfPublishedChapters:96,numberOfPublishedBooks:12,editor:{id:"50150",title:"Prof.",name:"Robert",middleName:null,surname:"Koprowski",fullName:"Robert Koprowski",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002aYTYNQA4/Profile_Picture_1630478535317",biography:"Robert Koprowski, MD (1997), PhD (2003), Habilitation (2015), is an employee of the University of Silesia, Poland, Institute of Computer Science, Department of Biomedical Computer Systems. For 20 years, he has studied the analysis and processing of biomedical images, emphasizing the full automation of measurement for a large inter-individual variability of patients. Dr. Koprowski has authored more than a hundred research papers with dozens in impact factor (IF) journals and has authored or co-authored six books. Additionally, he is the author of several national and international patents in the field of biomedical devices and imaging. Since 2011, he has been a reviewer of grants and projects (including EU projects) in biomedical engineering.",institutionString:null,institution:{name:"University of Silesia",institutionURL:null,country:{name:"Poland"}}},subseries:[{id:"7",title:"Bioinformatics and Medical Informatics",keywords:"Biomedical Data, Drug Discovery, Clinical Diagnostics, Decoding Human Genome, AI in Personalized Medicine, Disease-prevention Strategies, Big Data Analysis in Medicine",scope:"Bioinformatics aims to help understand the functioning of the mechanisms of living organisms through the construction and use of quantitative tools. The applications of this research cover many related fields, such as biotechnology and medicine, where, for example, Bioinformatics contributes to faster drug design, DNA analysis in forensics, and DNA sequence analysis in the field of personalized medicine. Personalized medicine is a type of medical care in which treatment is customized individually for each patient. Personalized medicine enables more effective therapy, reduces the costs of therapy and clinical trials, and also minimizes the risk of side effects. Nevertheless, advances in personalized medicine would not have been possible without bioinformatics, which can analyze the human genome and other vast amounts of biomedical data, especially in genetics. The rapid growth of information technology enabled the development of new tools to decode human genomes, large-scale studies of genetic variations and medical informatics. The considerable development of technology, including the computing power of computers, is also conducive to the development of bioinformatics, including personalized medicine. In an era of rapidly growing data volumes and ever lower costs of generating, storing and computing data, personalized medicine holds great promises. Modern computational methods used as bioinformatics tools can integrate multi-scale, multi-modal and longitudinal patient data to create even more effective and safer therapy and disease prevention methods. Main aspects of the topic are: Applying bioinformatics in drug discovery and development; Bioinformatics in clinical diagnostics (genetic variants that act as markers for a condition or a disease); Blockchain and Artificial Intelligence/Machine Learning in personalized medicine; Customize disease-prevention strategies in personalized medicine; Big data analysis in personalized medicine; Translating stratification algorithms into clinical practice of personalized medicine.",annualVolume:11403,isOpenForSubmission:!0,coverUrl:"https://cdn.intechopen.com/series_topics/covers/7.jpg",editor:{id:"351533",title:"Dr.",name:"Slawomir",middleName:null,surname:"Wilczynski",fullName:"Slawomir Wilczynski",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y000035U1loQAC/Profile_Picture_1630074514792",institutionString:null,institution:{name:"Medical University of Silesia",institutionURL:null,country:{name:"Poland"}}},editorTwo:null,editorThree:null,editorialBoard:[{id:"5886",title:"Dr.",name:"Alexandros",middleName:"T.",surname:"Tzallas",fullName:"Alexandros Tzallas",profilePictureURL:"https://mts.intechopen.com/storage/users/5886/images/system/5886.png",institutionString:"University of Ioannina, Greece & Imperial College London",institution:{name:"University of Ioannina",institutionURL:null,country:{name:"Greece"}}},{id:"257388",title:"Distinguished Prof.",name:"Lulu",middleName:null,surname:"Wang",fullName:"Lulu Wang",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRX6kQAG/Profile_Picture_1630329584194",institutionString:null,institution:{name:"Shenzhen Technology University",institutionURL:null,country:{name:"China"}}},{id:"225387",title:"Prof.",name:"Reda",middleName:"R.",surname:"Gharieb",fullName:"Reda Gharieb",profilePictureURL:"https://mts.intechopen.com/storage/users/225387/images/system/225387.jpg",institutionString:"Assiut University",institution:{name:"Assiut University",institutionURL:null,country:{name:"Egypt"}}}]},{id:"8",title:"Bioinspired Technology and Biomechanics",keywords:"Bioinspired Systems, Biomechanics, Assistive Technology, Rehabilitation",scope:'Bioinspired technologies take advantage of understanding the actual biological system to provide solutions to problems in several areas. Recently, bioinspired systems have been successfully employing biomechanics to develop and improve assistive technology and rehabilitation devices. The research topic "Bioinspired Technology and Biomechanics" welcomes studies reporting recent advances in bioinspired technologies that contribute to individuals\' health, inclusion, and rehabilitation. Possible contributions can address (but are not limited to) the following research topics: Bioinspired design and control of exoskeletons, orthoses, and prostheses; Experimental evaluation of the effect of assistive devices (e.g., influence on gait, balance, and neuromuscular system); Bioinspired technologies for rehabilitation, including clinical studies reporting evaluations; Application of neuromuscular and biomechanical models to the development of bioinspired technology.',annualVolume:11404,isOpenForSubmission:!0,coverUrl:"https://cdn.intechopen.com/series_topics/covers/8.jpg",editor:{id:"144937",title:"Prof.",name:"Adriano",middleName:"De Oliveira",surname:"Andrade",fullName:"Adriano Andrade",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRC8QQAW/Profile_Picture_1625219101815",institutionString:null,institution:{name:"Federal University of Uberlândia",institutionURL:null,country:{name:"Brazil"}}},editorTwo:null,editorThree:null,editorialBoard:[{id:"49517",title:"Prof.",name:"Hitoshi",middleName:null,surname:"Tsunashima",fullName:"Hitoshi Tsunashima",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002aYTP4QAO/Profile_Picture_1625819726528",institutionString:null,institution:{name:"Nihon University",institutionURL:null,country:{name:"Japan"}}},{id:"425354",title:"Dr.",name:"Marcus",middleName:"Fraga",surname:"Vieira",fullName:"Marcus Vieira",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y00003BJSgIQAX/Profile_Picture_1627904687309",institutionString:null,institution:{name:"Universidade Federal de Goiás",institutionURL:null,country:{name:"Brazil"}}},{id:"196746",title:"Dr.",name:"Ramana",middleName:null,surname:"Vinjamuri",fullName:"Ramana Vinjamuri",profilePictureURL:"https://mts.intechopen.com/storage/users/196746/images/system/196746.jpeg",institutionString:"University of Maryland, Baltimore County",institution:{name:"University of Maryland, Baltimore County",institutionURL:null,country:{name:"United States of America"}}}]},{id:"9",title:"Biotechnology - Biosensors, Biomaterials and Tissue Engineering",keywords:"Biotechnology, Biosensors, Biomaterials, Tissue Engineering",scope:"The Biotechnology - Biosensors, Biomaterials and Tissue Engineering topic within the Biomedical Engineering Series aims to rapidly publish contributions on all aspects of biotechnology, biosensors, biomaterial and tissue engineering. We encourage the submission of manuscripts that provide novel and mechanistic insights that report significant advances in the fields. Topics can include but are not limited to: Biotechnology such as biotechnological products and process engineering; Biotechnologically relevant enzymes and proteins; Bioenergy and biofuels; Applied genetics and molecular biotechnology; Genomics, transcriptomics, proteomics; Applied microbial and cell physiology; Environmental biotechnology; Methods and protocols. Moreover, topics in biosensor technology, like sensors that incorporate enzymes, antibodies, nucleic acids, whole cells, tissues and organelles, and other biological or biologically inspired components will be considered, and topics exploring transducers, including those based on electrochemical and optical piezoelectric, thermal, magnetic, and micromechanical elements. Chapters exploring biomaterial approaches such as polymer synthesis and characterization, drug and gene vector design, biocompatibility, immunology and toxicology, and self-assembly at the nanoscale, are welcome. Finally, the tissue engineering subcategory will support topics such as the fundamentals of stem cells and progenitor cells and their proliferation, differentiation, bioreactors for three-dimensional culture and studies of phenotypic changes, stem and progenitor cells, both short and long term, ex vivo and in vivo implantation both in preclinical models and also in clinical trials.",annualVolume:11405,isOpenForSubmission:!0,coverUrl:"https://cdn.intechopen.com/series_topics/covers/9.jpg",editor:{id:"126286",title:"Dr.",name:"Luis",middleName:"Jesús",surname:"Villarreal-Gómez",fullName:"Luis Villarreal-Gómez",profilePictureURL:"https://mts.intechopen.com/storage/users/126286/images/system/126286.jpg",institutionString:null,institution:{name:"Autonomous University of Baja California",institutionURL:null,country:{name:"Mexico"}}},editorTwo:null,editorThree:null,editorialBoard:[{id:"35539",title:"Dr.",name:"Cecilia",middleName:null,surname:"Cristea",fullName:"Cecilia Cristea",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002aYQ65QAG/Profile_Picture_1621007741527",institutionString:null,institution:{name:"Iuliu Hațieganu University of Medicine and Pharmacy",institutionURL:null,country:{name:"Romania"}}},{id:"40735",title:"Dr.",name:"Gil",middleName:"Alberto Batista",surname:"Gonçalves",fullName:"Gil Gonçalves",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002aYRLGQA4/Profile_Picture_1628492612759",institutionString:null,institution:{name:"University of Aveiro",institutionURL:null,country:{name:"Portugal"}}},{id:"211725",title:"Associate Prof.",name:"Johann F.",middleName:null,surname:"Osma",fullName:"Johann F. Osma",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bSDv7QAG/Profile_Picture_1626602531691",institutionString:null,institution:{name:"Universidad de Los Andes",institutionURL:null,country:{name:"Colombia"}}},{id:"69697",title:"Dr.",name:"Mani T.",middleName:null,surname:"Valarmathi",fullName:"Mani T. Valarmathi",profilePictureURL:"https://mts.intechopen.com/storage/users/69697/images/system/69697.jpg",institutionString:"Religen Inc. | A Life Science Company, United States of America",institution:null},{id:"205081",title:"Dr.",name:"Marco",middleName:"Vinícius",surname:"Chaud",fullName:"Marco Chaud",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bSDGeQAO/Profile_Picture_1622624307737",institutionString:null,institution:{name:"Universidade de Sorocaba",institutionURL:null,country:{name:"Brazil"}}}]}]}},libraryRecommendation:{success:null,errors:{},institutions:[]},route:{name:"profile.detail",path:"/profiles/435589",hash:"",query:{},params:{id:"435589"},fullPath:"/profiles/435589",meta:{},from:{name:null,path:"/",hash:"",query:{},params:{},fullPath:"/",meta:{}}}},function(){var e;(e=document.currentScript||document.scripts[document.scripts.length-1]).parentNode.removeChild(e)}()