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Proteasome functional insufficiency in cardiac pathogenesis

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/ajpheart.00714.2011

关键词

proteasome activator; proteinopathy; ischemia-reperfusion injury; ubiquitin ligase; congestive heart failure

资金

  1. National Heart, Lung, and Blood Institute [HL-072166, HL-085629, HL-0668936]
  2. American Heart Association [0740025N, 0620032Z, 11SDG6960011]

向作者/读者索取更多资源

Wang X, Li J, Zheng H, Su H, Powell SR. Proteasome functional insufficiency in cardiac pathogenesis. Am J Physiol Heart Circ Physiol 301: H2207-H2219, 2011. First published September 23, 2011; doi:10.1152/ajpheart.00714.2011.-The ubiquitin-proteasome system (UPS) is responsible for the degradation of most cellular proteins. Alterations in cardiac UPS, including changes in the degradation of regulatory proteins and proteasome functional insufficiency, are observed in many forms of heart disease and have been shown to play an important role in cardiac pathogenesis. In the past several years, remarkable progress in understanding the mechanisms that regulate UPS-mediated protein degradation has been achieved. A transgenic mouse model of benign enhancement of cardiac proteasome proteolytic function has been created. This has led to the first demonstration of the necessity of proteasome functional insufficiency in the genesis of important pathological processes. Cardiomyocyte-restricted enhancement of proteasome proteolytic function by overexpression of proteasome activator 28 alpha protects against cardiac proteinopathy and myocardial ischemia-reperfusion injury. Additionally, exciting advances have recently been achieved in the search for a pharmacological agent to activate the proteasome. These breakthroughs are expected to serve as an impetus to further investigation into the involvement of UPS dysfunction in molecular pathogenesis and to the development of new therapeutic strategies for combating heart disease. An interplay between the UPS and macroautophagy is increasingly suggested in noncardiac systems but is not well understood in the cardiac system. Further investigations into the interplay are expected to provide a more comprehensive picture of cardiac protein quality control and degradation.

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