A transcriptional map of the impact of endurance exercise training on skeletal muscle phenotype

被引:192
作者
Keller, Pernille [2 ,3 ]
Vollaard, Niels B. J. [2 ]
Gustafsson, Thomas [4 ]
Gallagher, Iain J. [2 ]
Sundberg, Carl Johan [5 ]
Rankinen, Tuomo [6 ]
Britton, Steven L. [7 ]
Bouchard, Claude [6 ]
Koch, Lauren G. [7 ]
Timmons, James A. [1 ,8 ]
机构
[1] Univ London, Royal Vet Coll, Lifestyle Res Grp, Camden NW1 0TU, England
[2] Heriot Watt Univ, Edinburgh, Midlothian, Scotland
[3] Univ Michigan, Sch Med, Dept Mol & Integrat Physiol, Ann Arbor, MI USA
[4] Karolinska Univ Hosp, Div Clin Physiol, Dept Lab Med, Stockholm, Sweden
[5] Karolinska Inst, Dept Physiol & Pharmacol, Stockholm, Sweden
[6] Pennington Biomed Res Ctr, Human Genom Lab, Baton Rouge, LA USA
[7] Univ Michigan, Sch Med, Dept Anesthesiol, Ann Arbor, MI USA
[8] Univ Copenhagen, Dept Biomed Sci, Ctr Healthy Ageing, Copenhagen, Denmark
基金
美国国家卫生研究院;
关键词
training responsive transcriptome; aerobic capacity; low responder; DOMAIN-CONTAINING PROTEIN-2; GENE-EXPRESSION; TUMOR-SUPPRESSOR; AEROBIC CAPACITY; ENDOPLASMIC-RETICULUM; ARTIFICIAL SELECTION; MICRORNA TARGETS; HERITAGE FAMILY; GROWTH-FACTOR; CANCER CELLS;
D O I
10.1152/japplphysiol.00634.2010
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Keller P, Vollaard NB, Gustafsson T, Gallagher IJ, Sundberg CJ, Rankinen T, Britton SL, Bouchard C, Koch LG, Timmons JA. A transcriptional map of the impact of endurance exercise training on skeletal muscle phenotype. J Appl Physiol 110: 46-59, 2011. First published October 7, 2010; doi:10.1152/japplphysiol.00634.2010.-The molecular pathways that are activated and contribute to physiological remodeling of skeletal muscle in response to endurance exercise have not been fully characterized. We previously reported that similar to 800 gene transcripts are regulated following 6 wk of supervised endurance training in young sedentary males, referred to as the training-responsive transcriptome (TRT) (Timmons JA et al. J Appl Physiol 108: 1487-1496, 2010). Here we utilized this database together with data on biological variation in muscle adaptation to aerobic endurance training in both humans and a novel out-bred rodent model to study the potential regulatory molecules that coordinate this complex network of genes. We identified three DNA sequences representing RUNX1, SOX9, and PAX3 transcription factor binding sites as overrepresented in the TRT. In turn, miRNA profiling indicated that several miRNAs targeting RUNX1, SOX9, and PAX3 were downregulated by endurance training. The TRT was then examined by contrasting subjects who demonstrated the least vs. the greatest improvement in aerobic capacity (low vs. high responders), and at least 100 of the 800 TRT genes were differentially regulated, thus suggesting regulation of these genes may be important for improving aerobic capacity. In high responders, proangiogenic and tissue developmental networks emerged as key candidates for coordinating tissue aerobic adaptation. Beyond RNA-level validation there were several DNA variants that associated with maximal aerobic capacity (VO2max) trainability in the HERITAGE Family Study but these did not pass conservative Bonferroni adjustment. In addition, in a rat model selected across 10 generations for high aerobic training responsiveness, we found that both the TRT and a homologous subset of the human high responder genes were regulated to a greater degree in high responder rodent skeletal muscle. This analysis provides a comprehensive map of the transcriptomic features important for aerobic exercise-induced improvements in maximal oxygen consumption.
引用
收藏
页码:46 / 59
页数:14
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