Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac Aging
Globally, cardiovascular diseases are the leading cause of death in the aging population. While the clinical pathology of the aging heart is thoroughly characterized, underlying molecular mechanisms are still insufficiently clarified. The aim of the present study was to establish an in vitro model s...
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Series: | Oxidative Medicine and Cellular Longevity |
Online Access: | http://dx.doi.org/10.1155/2020/8141307 |
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doaj-c025edc1977d4170b7fcf74a45596f3e2020-11-25T02:41:30ZengHindawi LimitedOxidative Medicine and Cellular Longevity1942-09001942-09942020-01-01202010.1155/2020/81413078141307Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac AgingSteffen Häseli0Stefanie Deubel1Tobias Jung2Tilman Grune3Christiane Ott4Department of Molecular Toxicology, German Institute of Human Nutrition Potsdam-Rehbrücke (DIfE), Nuthetal 14558, GermanyDepartment of Molecular Toxicology, German Institute of Human Nutrition Potsdam-Rehbrücke (DIfE), Nuthetal 14558, GermanyDepartment of Molecular Toxicology, German Institute of Human Nutrition Potsdam-Rehbrücke (DIfE), Nuthetal 14558, GermanyDepartment of Molecular Toxicology, German Institute of Human Nutrition Potsdam-Rehbrücke (DIfE), Nuthetal 14558, GermanyDepartment of Molecular Toxicology, German Institute of Human Nutrition Potsdam-Rehbrücke (DIfE), Nuthetal 14558, GermanyGlobally, cardiovascular diseases are the leading cause of death in the aging population. While the clinical pathology of the aging heart is thoroughly characterized, underlying molecular mechanisms are still insufficiently clarified. The aim of the present study was to establish an in vitro model system of cardiomyocyte premature senescence, culturing heart muscle cells derived from neonatal C57Bl/6J mice for 21 days. Premature senescence of neonatal cardiac myocytes was induced by prolonged culture time in an oxygen-rich postnatal environment. Age-related changes in cellular function were determined by senescence-associated β-galactosidase activity, increasing presence of cell cycle regulators, such as p16, p53, and p21, accumulation of protein aggregates, and restricted proteolysis in terms of decreasing (macro-)autophagy. Furthermore, the culture system was functionally characterized for alterations in cell morphology and contractility. An increase in cellular size associated with induced expression of atrial natriuretic peptides demonstrated a stress-induced hypertrophic phenotype in neonatal cardiomyocytes. Using the recently developed analytical software tool Myocyter, we were able to show a spatiotemporal constraint in spontaneous contraction behavior during cultivation. Within the present study, the 21-day culture of neonatal cardiomyocytes was defined as a functional model system of premature cardiac senescence to study age-related changes in cardiomyocyte contractility and autophagy.http://dx.doi.org/10.1155/2020/8141307 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Steffen Häseli Stefanie Deubel Tobias Jung Tilman Grune Christiane Ott |
spellingShingle |
Steffen Häseli Stefanie Deubel Tobias Jung Tilman Grune Christiane Ott Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac Aging Oxidative Medicine and Cellular Longevity |
author_facet |
Steffen Häseli Stefanie Deubel Tobias Jung Tilman Grune Christiane Ott |
author_sort |
Steffen Häseli |
title |
Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac Aging |
title_short |
Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac Aging |
title_full |
Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac Aging |
title_fullStr |
Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac Aging |
title_full_unstemmed |
Cardiomyocyte Contractility and Autophagy in a Premature Senescence Model of Cardiac Aging |
title_sort |
cardiomyocyte contractility and autophagy in a premature senescence model of cardiac aging |
publisher |
Hindawi Limited |
series |
Oxidative Medicine and Cellular Longevity |
issn |
1942-0900 1942-0994 |
publishDate |
2020-01-01 |
description |
Globally, cardiovascular diseases are the leading cause of death in the aging population. While the clinical pathology of the aging heart is thoroughly characterized, underlying molecular mechanisms are still insufficiently clarified. The aim of the present study was to establish an in vitro model system of cardiomyocyte premature senescence, culturing heart muscle cells derived from neonatal C57Bl/6J mice for 21 days. Premature senescence of neonatal cardiac myocytes was induced by prolonged culture time in an oxygen-rich postnatal environment. Age-related changes in cellular function were determined by senescence-associated β-galactosidase activity, increasing presence of cell cycle regulators, such as p16, p53, and p21, accumulation of protein aggregates, and restricted proteolysis in terms of decreasing (macro-)autophagy. Furthermore, the culture system was functionally characterized for alterations in cell morphology and contractility. An increase in cellular size associated with induced expression of atrial natriuretic peptides demonstrated a stress-induced hypertrophic phenotype in neonatal cardiomyocytes. Using the recently developed analytical software tool Myocyter, we were able to show a spatiotemporal constraint in spontaneous contraction behavior during cultivation. Within the present study, the 21-day culture of neonatal cardiomyocytes was defined as a functional model system of premature cardiac senescence to study age-related changes in cardiomyocyte contractility and autophagy. |
url |
http://dx.doi.org/10.1155/2020/8141307 |
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