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Updated: May 3, 2026

Refined CLARITY-Based Tissue Clearing for Three-Dimensional Fibroblast Organization in Healthy and Injured Mouse Hearts
Published on: May 16, 2021
Cardiac fibroblasts protect cardiomyocytes against lethal ischemia-reperfusion injury
Maryline Abrial1, Claire Crola Da Silva1, Bruno Pillot1
1INSERM U1060, CarMeN Laboratory, Université Lyon 1, F-69373 Lyon, France.
Insights
Cardiac fibroblasts (CFs) protect heart cells from injury. Their secreted TIMP-1 mediates this cardioprotection via paracrine signaling during ischemia-reperfusion, reducing heart attack damage.
Area of Science:
- Cardiology
- Cell Biology
- Biochemistry
Background:
- Cardiac fibroblasts (CFs) are known for roles in chronic heart disease.
- Their role in acute ischemia-reperfusion injury is not well understood.
- CFs may protect cardiomyocytes (CMs) during acute injury.
Purpose of the Study:
- To investigate the role of CFs in protecting CMs against ischemia-reperfusion injury.
- To identify the mechanisms behind CF-mediated cardioprotection.
Main Methods:
- Co-culture of neonatal rat CFs and CMs.
- Hypoxia-reoxygenation injury model.
- Analysis of CF secretome.
- In vivo mouse myocardial infarction model.
- Pharmacological inhibition of PI3K/Akt and ERK1/2 pathways.
- TIMP-1 depletion experiments.
Main Results:
- CF co-culture significantly increased CM viability against hypoxia-reoxygenation.
- CF secretome alone improved CM viability.
- In vivo, CF secretome reduced infarct size by 25%.
- Tissue inhibitor of metalloproteinases-1 (TIMP-1) in CF secretome decreased CM cell death and infarct size.
- Cardioprotection was partly mediated by PI3K/Akt and ERK1/2 pathways.
- TIMP-1 depletion abolished CF secretome-mediated cardioprotection.
Conclusions:
- CFs exert cardioprotection during acute ischemia-reperfusion injury.
- This protection occurs via a paracrine pathway.
- TIMP-1 is a key mediator of this CF-derived cardioprotection.
- PI3K/Akt and ERK1/2 signaling pathways are involved in the protective mechanism.
Abstract:
Roles of cardiac fibroblasts (CFs) in the regulation of myocardial structure and function have been emphasized in the last decade. Their implications in pathophysiological aspects of chronic heart diseases such as myocardial remodeling and fibrosis are now well established; however their contribution to the acute phase of ischemia-reperfusion injury still remains elusive. We hypothesized that CF may contribute to cardiomyocyte (CM) protection against ischemia-reperfusion injuries. Experiments performed on isolated neonatal rat CF and CM demonstrated that the presence of CF in co-cultures increases CM viability (58 ± 2% versus 30 ± 2% in control) against hypoxia-reoxygenation injury, in a paracrine manner. It was confirmed by a similar effect of hypoxic CF secretome alone on CM viability (51 ± 9% versus 31 ± 4% in untreated cells). These findings were corroborated by in vivo experiments in a mice model of myocardial infarction in which a 25% infarct size reduction was observed in CF secretome treated mice compared to control. Tissue inhibitor of metalloproteinases-1 (TIMPs-1) alone, abundantly detected in CF secretome, was able to decrease CM cell death (35%) and experiments with pharmacological inhibitors of PI3K/Akt and ERK1/2 pathways provided more evidence that this paracrine protection is partly mediated by these signaling pathways. In vivo experiments strengthened that TIMP-1 alone was able to decrease infarct size (37%) and were validated by depletion experiments demonstrating that CF secretome cardioprotection was abolished by TIMP-1 depletion. Our data demonstrated for the first time that CFs participate in cardioprotection during the acute phase of ischemia-reperfusion via a paracrine pathway involving TIMP-1.

