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Published on: May 26, 2023
CTRP3 alleviates mitochondrial dysfunction and oxidative stress injury in pathological cardiac hypertrophy by
Lei Shi1, Yanzhen Tan1, Wenying Zheng1
1Department of Cardiovascular Surgery, Xijing Hospital, Fourth Military Medical University, Xi'an, 710032, Shaanxi, China.
Insights
Cardiomyopathy involves mitochondrial dysfunction. C1q-tumor necrosis factor-related protein-3 (CTRP3) protects the heart by activating mitochondrial unfolded protein response (UPRmt) via SIRT1/ATF5, mitigating cardiac hypertrophy and oxidative stress.
Area of Science:
- Cardiology
- Mitochondrial Biology
- Molecular Medicine
Background:
- Pathological cardiac hypertrophy is a major risk factor for heart failure.
- Mitochondrial protein homeostasis disruption is critical in cardiac hypertrophy, but its regulation is unclear.
- Understanding these mechanisms is vital for developing new therapies.
Purpose of the Study:
- To investigate the role of C1q-tumor necrosis factor-related protein-3 (CTRP3) in maintaining mitochondrial protein homeostasis during pathological cardiac hypertrophy.
- To elucidate the molecular pathways through which CTRP3 exerts its cardioprotective effects.
Main Methods:
- Utilized mouse models (wildtype, CTRP3 knockout, CTRP3 overexpression) subjected to transverse aortic constriction (TAC) or sham surgery.
- Assessed cardiac function, mitochondrial function, and oxidative stress.
- Employed neonatal rat cardiomyocytes for in vitro mechanistic studies using gene knockdown and overexpression.
Main Results:
- CTRP3 overexpression attenuated TAC-induced cardiac hypertrophy, mitochondrial dysfunction, and oxidative stress.
- CTRP3 activated the mitochondrial unfolded protein response (UPRmt) via the SIRT1/ATF5 signaling pathway.
- Knockout or knockdown of CTRP3, SIRT1, or ATF5 impaired the protective effects.
Conclusions:
- CTRP3 plays a crucial role in protecting against pathological cardiac hypertrophy by enhancing mitochondrial protein homeostasis.
- The SIRT1/ATF5 axis is a key mediator of CTRP3's beneficial effects on the mitochondria.
- Targeting the CTRP3/SIRT1/ATF5 pathway may offer a novel therapeutic strategy for heart failure.
Abstract:
Pathological cardiac hypertrophy is an independent risk factor for heart failure. Disruption of mitochondrial protein homeostasis plays a key role in pathological cardiac hypertrophy; however, the mechanism of maintaining mitochondrial homeostasis in pathological cardiac hypertrophy remains unclear. In this study, we investigated the regulatory mechanisms of mitochondrial protein homeostasis in pathological cardiac hypertrophy. Wildtype (WT) mice, knockout mice, and mice transfected with lentivirus overexpressing mouse C1q-tumor necrosis factor-related protein-3 (CTRP3) underwent transverse aortic constriction or sham surgery. After 4 weeks, cardiac function, mitochondrial function, and oxidative stress injury were examined. For mechanistic studies, neonatal rat cardiomyocytes were treated with small interfering RNA or overexpression plasmids for the relevant genes. CTRP3 overexpression attenuated transverse aortic constriction (TAC) induced pathological cardiac hypertrophy, mitochondrial dysfunction, and oxidative stress injury compared to that in WT mice. TAC or Ang II resulted in compensatory activation of UPRmt, but this was not sufficient to counteract pathologic cardiac hypertrophy. CTRP3 overexpression further induced activation of UPRmt during pathologic cardiac hypertrophy and thereby alleviated pathologic cardiac hypertrophy, whereas CTRP3 knockout or knockdown inhibited UPRmt. ATF5 was a key regulatory molecule of UPRmt, as ATF5 knockout prevented the cardioprotective effect of CTRP3 in TAC mice. In vitro, SIRT1 was identified as a possible downstream CTRP3 effector molecule, and SIRT1 knockout blocked the cardioprotective effects of CTRP3. Our results also suggest that ATF5 may be regulated by SIRT1. Our study demonstrates that CTRP3 activates UPRmt via the SIRT1/ATF5 axis under pathological myocardial hypertrophy, thus attenuating mitochondrial dysfunction and oxidative stress injury.
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