Inter-individual variation in adaptations to endurance and resistance exercise training: genetic approaches towards understanding a complex phenotype

被引:0
作者
Heather L. Vellers
Steven R. Kleeberger
J. Timothy Lightfoot
机构
[1] National Institute of Environmental Health Sciences,Immunity, Inflammation and, Disease Laboratory
[2] Texas A&M University,Department of Health and Kinesiology
来源
Mammalian Genome | 2018年 / 29卷
关键词
Exercise Training Adaptations; Resistance Training; Mitochondrial Genome; Endurance Training; Health, Risk Factors, Exercise Training, And Genetics (HERITAGE);
D O I
暂无
中图分类号
学科分类号
摘要
Exercise training which meets the recommendations set by the National Physical Activity Guidelines ensues a multitude of health benefits towards the prevention and treatment of various chronic diseases. However, not all individuals respond well to exercise training. That is, some individuals have no response, while others respond poorly. Genetic background is known to contribute to the inter-individual (human) and -strain (e.g., mice, rats) variation with acute exercise and exercise training, though to date, no specific genetic factors have been identified that explain the differential responses to exercise. In this review, we provide an overview of studies in human and animal models that have shown a significant contribution of genetics in acute exercise and exercise training-induced adaptations with standardized endurance and resistance training regimens, and further describe the genetic approaches which have been used to demonstrate such responses. Finally, our current understanding of the role of genetics and exercise is limited primarily to the nuclear genome, while only a limited focus has been given to a potential role of the mitochondrial genome and its interactions with the nuclear genome to predict the exercise training-induced phenotype(s) responses. We therefore discuss the mitochondrial genome and literature that suggests it may play a significant role, particularly through interactions with the nuclear genome, in the inherent ability to respond to exercise.
引用
收藏
页码:48 / 62
页数:14
相关论文
共 513 条
[1]  
Acosta W(2017)Preference for Western diet coadapts in High Runner mice and affects voluntary exercise and spontaneous physical activity in a genotype-dependent manner Behav Process 135 56-65
[2]  
Meek TH(2005)Physical activity and stroke risk Int J Clin Pract 59 922-930
[3]  
Schutz H(2003)On the origin of mitochondria: a genomics perspective Philos Trans R Soc Lond B 358 165-179
[4]  
Dlugosz EM(2013)Genome sequencing reveals loci under artificial selection that underlie disease phenotypes in the laboratory rat Cell 154 691-703
[5]  
Garland T(2011)Genetic analysis of complex traits in the emerging Collaborative Cross Genome Res 21 1213-1222
[6]  
Alevizos A(1971)Recombinant-inbred strains an aid to finding identity, linkage, and function of histocompatibility and other genes Transplantation 11 325-327
[7]  
Lentzas J(1998)Spectrum of aerobic endurance running performance in eleven inbred strains of rats J Appl Physiol 85 530-536
[8]  
Kokkoris S(1999)Randomized, controlled trial of long-term moderate exercise training in chronic heart failure Circulation 99 1173-1182
[9]  
Mariolis A(2012)Analysis of skeletal muscle hypertrophy in models of increased loading Myogenesis 2012 213-229
[10]  
Korantzopoulos P(2016)Inter-individual variability in the adaptive responses to endurance and sprint interval training: a randomized crossover study PLoS ONE 11 e0167790-221