Literature DB >> 28572498

Exercise: Teaching myocytes new tricks.

Scott K Powers1.   

Abstract

Endurance exercise training promotes numerous cellular adaptations in both cardiac myocytes and skeletal muscle fibers. For example, exercise training fosters changes in mitochondrial function due to increased mitochondrial protein expression and accelerated mitochondrial turnover. Additionally, endurance exercise training alters the abundance of numerous cytosolic and mitochondrial proteins in both cardiac and skeletal muscle myocytes, resulting in a protective phenotype in the active fibers; this exercise-induced protection of cardiac and skeletal muscle fibers is often referred to as "exercise preconditioning." As few as 3-5 consecutive days of endurance exercise training result in a preconditioned cardiac phenotype that is sheltered against ischemia-reperfusion-induced injury. Similarly, endurance exercise training results in preconditioned skeletal muscle fibers that are resistant to a variety of stresses (e.g., heat stress, exercise-induced oxidative stress, and inactivity-induced atrophy). Many studies have probed the mechanisms responsible for exercise-induced preconditioning of cardiac and skeletal muscle fibers; these studies are important, because they provide an improved understanding of the biochemical mechanisms responsible for exercise-induced preconditioning, which has the potential to lead to innovative pharmacological therapies aimed at minimizing stress-induced injury to cardiac and skeletal muscle. This review summarizes the development of exercise-induced protection of cardiac myocytes and skeletal muscle fibers and highlights the putative mechanisms responsible for exercise-induced protection in the heart and skeletal muscles.
Copyright © 2017 the American Physiological Society.

Entities:  

Keywords:  cardioprotection; diaphragm; endurance exercise; mechanical ventilation; skeletal muscle

Mesh:

Substances:

Year:  2017        PMID: 28572498      PMCID: PMC5583614          DOI: 10.1152/japplphysiol.00418.2017

Source DB:  PubMed          Journal:  J Appl Physiol (1985)        ISSN: 0161-7567


  155 in total

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4.  Bortezomib partially protects the rat diaphragm from ventilator-induced diaphragm dysfunction.

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Journal:  Crit Care Med       Date:  2012-08       Impact factor: 7.598

5.  Cervical spinal cord injury exacerbates ventilator-induced diaphragm dysfunction.

Authors:  Ashley J Smuder; Elisa J Gonzalez-Rothi; Oh Sung Kwon; Aaron B Morton; Kurt J Sollanek; Scott K Powers; David D Fuller
Journal:  J Appl Physiol (1985)       Date:  2015-10-15

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Authors:  Lindsey E Miller; Peter A Hosick; Jenna Wrieden; Emily Hoyt; John C Quindry
Journal:  Med Sci Sports Exerc       Date:  2012-03       Impact factor: 5.411

7.  Evolution of Diaphragm Thickness during Mechanical Ventilation. Impact of Inspiratory Effort.

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Journal:  Am J Respir Crit Care Med       Date:  2015-11-01       Impact factor: 21.405

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Journal:  Respir Physiol       Date:  1994-02

9.  Mechanical ventilation induces diaphragmatic mitochondrial dysfunction and increased oxidant production.

Authors:  Andreas N Kavazis; Erin E Talbert; Ashley J Smuder; Matthew B Hudson; W Bradley Nelson; Scott K Powers
Journal:  Free Radic Biol Med       Date:  2009-01-13       Impact factor: 7.376

Review 10.  Mechanisms underlying acute protection from cardiac ischemia-reperfusion injury.

Authors:  Elizabeth Murphy; Charles Steenbergen
Journal:  Physiol Rev       Date:  2008-04       Impact factor: 37.312

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5.  ZAKβ is activated by cellular compression and mediates contraction-induced MAP kinase signaling in skeletal muscle.

Authors:  Cathrine Nordgaard; Anna Constance Vind; Amy Stonadge; Rasmus Kjøbsted; Goda Snieckute; Pedro Antas; Melanie Blasius; Marie Sofie Reinert; Ana Martinez Del Val; Dorte Breinholdt Bekker-Jensen; Peter Haahr; Yekaterina A Miroshnikova; Abdelghani Mazouzi; Sarah Falk; Emeline Perrier-Groult; Christopher Tiedje; Xiang Li; Jens Rithamer Jakobsen; Nicolas Oldenburg Jørgensen; Jørgen Fp Wojtaszewski; Frederic Mallein-Gerin; Jesper Løvind Andersen; Cristian Pablo Pennisi; Christoffer Clemmensen; Moustapha Kassem; Abbas Jafari; Thijn Brummelkamp; Vivian Sw Li; Sara A Wickström; Jesper Velgaard Olsen; Gonzalo Blanco; Simon Bekker-Jensen
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6.  JNK regulates muscle remodeling via myostatin/SMAD inhibition.

Authors:  Sarah J Lessard; Tara L MacDonald; Prerana Pathak; Myoung Sook Han; Vernon G Coffey; Johann Edge; Donato A Rivas; Michael F Hirshman; Roger J Davis; Laurie J Goodyear
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Review 7.  The systemic role of SIRT1 in exercise mediated adaptation.

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  7 in total

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