Temporal dynamics of the multi-omic response to endurance exercise training across tissues

生物 耐力训练 代谢组 脂质体 转录组 疾病 蛋白质组 生物信息学 代谢组学 生理学 脂类学 医学 内分泌学 内科学 遗传学 基因表达 基因
作者
David Amar,Nicole R. Gay,Pierre M. Jean Beltran,Joshua Adkins,José Juan Almagro Armenteros,Euan A. Ashley,Julián Ávila-Pacheco,Dam Bae,Nasim Bararpour,Charles F. Burant,Clary B. Clish,Gary Cutter,Surendra Dasari,Courtney Dennis,Charles R. Evans,Facundo M. Fernández,David A. Gaul,Yongchao Ge,Yongchao Ge,Laurie J. Goodyear,Zhenxin Hou,Olga Ilkayeva,Anna A. Ivanova,David Jimenez‐Morales,Maureen Kachman,Hasmik Keshishian,William E. Kraus,Ian R. Lanza,Jun Z. Li,Maléne E. Lindholm,Ana C. Lira,Gina M. Many,Shruti Marwaha,Michael E. Miller,Michael J. Muehlbauer,K. Sreekumaran Nair,Venugopalan D. Nair,Archana N. Raja,Christopher B. Newgard,Eric A. Ortlund,Paul Piehowski,David M. Presby,Weijun Qian,Jessica L. Rooney,James A. Sanford,Evan Savage,Stuart C. Sealfon,Gregory R. Smith,Kevin S. Smith,Alec Steep,Cynthia L. Stowe,Yifei Sun,Russell P. Tracy,Nikolai G. Vetr,Martin J. Walsh,Si Wu,Tiantian Zhang,Bingqing Zhao,Jimmy Zhen,Brent G. Albertson,Mary Anne S. Amper,Ali Tuğrul Balcı,Marcas M. Bamman,Elisabeth R. Barton,Bryan C. Bergman,Daniel H. Bessesen,Frank W. Booth,Brian Bouverat,Thomas W. Buford,Tiziana Caputo,Toby L. Chambers,Clarisa Chavez,Maria Chikina,Roxanne Chiu,Michael Z. Cicha,Paul M. Coen,Dan M. Cooper,Elaine Cornell,Karen Dalton,Luis G O de Sousa,Roger P. Farrar,Kishore M. Gadde,Nicole Gagne,Bret H. Goodpaster,Marina Gritsenko,Kristy Guevara,Fadia Haddad,Joshua Hansen,Melissa Harris,Trevor Hastie,Krista M. Hennig,Steven G. Hershman,Andrea L. Hevener,Michael F. Hirshman,Fang‐Chi Hsu,Kim M. Huffman,Chia-Jui Hung,Chelsea Hutchinson,Bailey E. Jackson,Catherine M. Jankowski,Christopher Jin,Neil M. Johannsen,Benjamin G. Ke,Wendy M. Kohrt,Kyle S. Kramer,Christiaan Leeuwenburgh,Sarah J. Lessard,Bridget Lester,Xueyun Liu,Ching-ju Lu,Nathan S. Makarewicz,Kristal M. Maner‐Smith,DR Mani,Nada Marjanović,Andrea G. Marshall,Sandy May,Edward L. Melanson,Matthew Monroe,Ronald J. Moore,Ronald J. Moore,Kerrie L. Moreau,Charles C. Mundorff,Nicolas Musi,Daniel Nachun,Michael Nestor,Robert L. Newton,Barbara J. Nicklas,Pasquale Nigro,German Nudelman,Marco Pahor,Cadence Pearce,Vladislav Petyuk,Hanna Pinças,Scott K. Powers,Shlomit Radom‐Aizik,Krithika Ramachandran,Megan E Ramaker,Irene Ramos,Marie‐Claude Vohl,Alexander Raskind,Blake B. Rasmussen,Éric Ravussin,R. Scott Rector,W. Jack Rejeski,Collyn Z-T. Richards,Stas Rirak,Jeremy Robbins,Aliza B. Rubenstein,Frederique Ruf-Zamojski,Scott Rushing,Tyler J. Sagendorf,Mihir Samdarshi,Irene E. Schauer,Robert S. Schwartz,Nitish Seenarine,Tanu Soni,Lauren M. Sparks,Christopher Teng,Anna Thalacker‐Mercer,John P. Thyfault,Robert Tibshirani,Scott Trappe,Todd A. Trappe,Karan Uppal,Sindhu Vangeti,Mital Vasoya,Elena Volpi,Alexandria Vornholt,Michael P. Walkup,John P. Williams,Ashley Xia,Zhen Yan,Xuechen Yu,Chongzhi Zang,Elena Zaslavsky,Navid Zebarjadi,Sue C. Bodine,Steven A. Carr,Karyn A. Esser,Stephen B. Montgomery,Simon Schenk,M Snyder,Matthew T. Wheeler
出处
期刊: [Cold Spring Harbor Laboratory]
被引量:13
标识
DOI:10.1101/2022.09.21.508770
摘要

Abstract Regular exercise promotes whole-body health and prevents disease, yet the underlying molecular mechanisms throughout a whole organism are incompletely understood. Here, the Molecular Transducers of Physical Activity Consortium (MoTrPAC) profiled the temporal transcriptome, proteome, metabolome, lipidome, phosphoproteome, acetylproteome, ubiquitylproteome, epigenome, and immunome in whole blood, plasma, and 18 solid tissues in Rattus norvegicus over 8 weeks of endurance exercise training. The resulting data compendium encompasses 9466 assays across 19 tissues, 25 molecular platforms, and 4 training time points in young adult male and female rats. We identified thousands of shared and tissue- and sex-specific molecular alterations. Temporal multi-omic and multi-tissue analyses demonstrated distinct patterns of tissue remodeling, with widespread regulation of immune, metabolism, heat shock stress response, and mitochondrial pathways. These patterns provide biological insights into the adaptive responses to endurance training over time. For example, exercise training induced heart remodeling via altered activity of the Mef2 family of transcription factors and tyrosine kinases. Translational analyses revealed changes that are consistent with human endurance training data and negatively correlated with disease, including increased phospholipids and decreased triacylglycerols in the liver. Sex differences in training adaptation were widespread, including those in the brain, adrenal gland, lung, and adipose tissue. Integrative analyses generated novel hypotheses of disease relevance, including candidate mechanisms that link training adaptation to non-alcoholic fatty liver disease, inflammatory bowel disease, cardiovascular health, and tissue injury and recovery. The data and analysis results presented in this study will serve as valuable resources for the broader community and are provided in an easily accessible public repository ( https://motrpac-data.org/ ). Highlights Multi-tissue resource identifies 35,439 analytes regulated by endurance exercise training at 5% FDR across 211 combinations of tissues and molecular platforms. Interpretation of systemic and tissue-specific molecular adaptations produced hypotheses to help describe the health benefits induced by exercise. Robust sex-specific responses to endurance exercise training are observed across multiple organs at the molecular level. Deep multi-omic profiling of six tissues defines regulatory signals for tissue adaptation to endurance exercise training. All data are available in a public repository, and processed data, analysis results, and code to reproduce major analyses are additionally available in convenient R packages.

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