| Literature DB >> 32470399 |
Kévin Contrepois1, Si Wu2, Kegan J Moneghetti3, Daniel Hornburg2, Sara Ahadi2, Ming-Shian Tsai2, Ahmed A Metwally2, Eric Wei2, Brittany Lee-McMullen2, Jeniffer V Quijada2, Songjie Chen2, Jeffrey W Christle4, Mathew Ellenberger2, Brunilda Balliu5, Shalina Taylor6, Matthew G Durrant2, David A Knowles7, Hani Choudhry8, Melanie Ashland2, Amir Bahmani2, Brooke Enslen2, Myriam Amsallem9, Yukari Kobayashi9, Monika Avina2, Dalia Perelman2, Sophia Miryam Schüssler-Fiorenza Rose2, Wenyu Zhou2, Euan A Ashley10, Stephen B Montgomery11, Hassan Chaib2, Francois Haddad12, Michael P Snyder13.
Abstract
Acute physical activity leads to several changes in metabolic, cardiovascular, and immune pathways. Although studies have examined selected changes in these pathways, the system-wide molecular response to an acute bout of exercise has not been fully characterized. We performed longitudinal multi-omic profiling of plasma and peripheral blood mononuclear cells including metabolome, lipidome, immunome, proteome, and transcriptome from 36 well-characterized volunteers, before and after a controlled bout of symptom-limited exercise. Time-series analysis revealed thousands of molecular changes and an orchestrated choreography of biological processes involving energy metabolism, oxidative stress, inflammation, tissue repair, and growth factor response, as well as regulatory pathways. Most of these processes were dampened and some were reversed in insulin-resistant participants. Finally, we discovered biological pathways involved in cardiopulmonary exercise response and developed prediction models revealing potential resting blood-based biomarkers of peak oxygen consumption.Entities:
Keywords: cardiopulmonary exercise testing; fitness; insulin resistance; multi-omics; outlier analysis; peak VO(2); physical activity; predictive analytics; systems biology; time-series analysis
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Year: 2020 PMID: 32470399 PMCID: PMC7299174 DOI: 10.1016/j.cell.2020.04.043
Source DB: PubMed Journal: Cell ISSN: 0092-8674 Impact factor: 41.582