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Cardiomyocyte Senescence and Cellular Communications Within Myocardial Microenvironments

期刊

FRONTIERS IN ENDOCRINOLOGY
卷 11, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fendo.2020.00280

关键词

metabolism; cardiomyocytes; senescence; inflammation; microenvironment

资金

  1. National Natural Science Foundation of China [81800273, 81970426]
  2. National Key Research and Development Project of China [2019YFA0801500]
  3. Chinese Academy of Medical Sciences Innovation Fund for Medical Sciences [CIFMS2017-I2M-1-008, 2019-RC-HL-006]
  4. Young Elite Scientists Sponsorship Program of China Association for Science and Technology [2018QNRC001]
  5. Scientific and Technological Innovation Talents Program of Sichuan Province [2020JDRC0017]
  6. Postdoctoral Innovative Talents Support Program [BX20180206]
  7. China Postdoctoral Science Foundation [2018M631084]
  8. Bud Fund of West China Second University Hospital of Sichuan University
  9. Full-time Postdoctoral Research and Development Fund of Sichuan University [2018SCU12010]

向作者/读者索取更多资源

Cardiovascular diseases have become the leading cause of human death. Aging is an independent risk factor for cardiovascular diseases. Cardiac aging is associated with maladaptation of cellular metabolism, dysfunction (or senescence) of cardiomyocytes, a decrease in angiogenesis, and an increase in tissue scarring (fibrosis). These events eventually lead to cardiac remodeling and failure. Senescent cardiomyocytes show the hallmarks of DNA damage, endoplasmic reticulum stress, mitochondria dysfunction, contractile dysfunction, hypertrophic growth, and senescence-associated secreting phenotype (SASP). Metabolism within cardiomyocytes is essential not only to fuel the pump function of the heart but also to maintain the functional homeostasis and participate in the senescence of cardiomyocytes. The senescence of cardiomyocyte is also regulated by the non-myocytes (endothelial cells, fibroblasts, and immune cells) in the local microenvironment. On the other hand, the senescent cardiomyocytes alter their phenotypes and subsequently affect the non-myocytes in the local microenvironment and contribute to cardiac aging and pathological remodeling. In this review, we first summarized the hallmarks of the senescence of cardiomyocytes. Then, we discussed the metabolic switch within senescent cardiomyocytes and provided a discussion of the cellular communications between dysfunctional cardiomyocytes and non-myocytes in the local microenvironment. We also addressed the functions of metabolic regulators within non-myocytes in modulating myocardial microenvironment. Finally, we pointed out some interesting and important questions that are needed to be addressed by further studies.

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