Oxidative stress is required for mechanical ventilation-induced protease activation in the diaphragm
- 1 May 2010
- journal article
- research article
- Published by American Physiological Society in Journal of Applied Physiology
- Vol. 108 (5) , 1376-1382
- https://doi.org/10.1152/japplphysiol.00098.2010
Abstract
Prolonged mechanical ventilation (MV) results in diaphragmatic weakness due to fiber atrophy and contractile dysfunction. Recent work reveals that activation of the proteases calpain and caspase-3 is required for MV-induced diaphragmatic atrophy and contractile dysfunction. However, the mechanism(s) responsible for activation of these proteases remains unknown. To address this issue, we tested the hypothesis that oxidative stress is essential for the activation of calpain and caspase-3 in the diaphragm during MV. Cause-and-effect was established by prevention of MV-induced diaphragmatic oxidative stress using the antioxidant Trolox. Treatment of animals with Trolox prevented MV-induced protein oxidation and lipid peroxidation in the diaphragm. Importantly, the Trolox-mediated protection from MV-induced oxidative stress prevented the activation of calpain and caspase-3 in the diaphragm during MV. Furthermore, the avoidance of MV-induced oxidative stress not only averted the activation of these proteases but also rescued the diaphragm from MV-induced diaphragmatic myofiber atrophy and contractile dysfunction. Collectively, these findings support the prediction that oxidative stress is required for MV-induced activation of calpain and caspase-3 in the diaphragm and are consistent with the concept that antioxidant therapy can retard MV-induced diaphragmatic weakness.Keywords
This publication has 38 references indexed in Scilit:
- Redox regulation of diaphragm proteolysis during mechanical ventilationAmerican Journal of Physiology-Regulatory, Integrative and Comparative Physiology, 2008
- Free radicals and muscle fatigue: Of ROS, canaries, and the IOCFree Radical Biology & Medicine, 2008
- Antioxidant administration attenuates mechanical ventilation‐induced rat diaphragm muscle atrophy independent of protein kinase B (PKB–Akt) signallingThe Journal of Physiology, 2007
- Oxidative stress and disuse muscle atrophyJournal of Applied Physiology, 2007
- Weaning from mechanical ventilationEuropean Respiratory Journal, 2007
- Caspase-3 Regulation of Diaphragm Myonuclear Domain during Mechanical Ventilation–induced AtrophyAmerican Journal of Respiratory and Critical Care Medicine, 2007
- Mechanical ventilation induces alterations of the ubiquitin-proteasome pathway in the diaphragmJournal of Applied Physiology, 2005
- Mechanisms of disuse muscle atrophy: role of oxidative stressAmerican Journal of Physiology-Regulatory, Integrative and Comparative Physiology, 2005
- Expression of a calpastatin transgene slows muscle wasting and obviates changes in myosin isoform expression during murine muscle disuseThe Journal of Physiology, 2002
- Difficult weaningIntensive Care Medicine, 1993