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Updated: Jul 2, 2026

Transverse Aortic Constriction in Mice
Published on: April 21, 2010
Low-density lipoprotein receptor-related protein 6 ameliorates cardiac hypertrophy by regulating CTSD/HSP90α
Le Pan1, Chao Yin1, Ke-Jia Jin1
1Shanghai Institute of Cardiovascular Diseases, Zhongshan Hospital, State Key Laboratory of Cardiovascular Diseases, NHC Key Laboratory of Ischemic Heart Diseases, and Institutes of Biomedical Sciences, Fudan University, Shanghai, 200032, China.
Insights
Low-density lipoprotein receptor-related protein 6 (LRP6) overexpression protects the heart from pressure overload. LRP6 inhibits cardiac hypertrophy by degrading HSP90α, offering a potential therapeutic target for heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Pathophysiology
Background:
- Pressure overload causes pathological cardiac remodeling, leading to heart failure.
- Low-density lipoprotein receptor-related protein 6 (LRP6) has shown promise in mitigating cardiac fibrosis.
- The role of LRP6 in pressure overload-induced cardiac hypertrophy requires further investigation.
Purpose of the Study:
- To investigate the role of LRP6 in modulating pressure overload-induced cardiac hypertrophy.
- To elucidate the molecular mechanisms underlying LRP6's effects on cardiac remodeling.
- To explore the potential of the LRP6-mediated pathway as a therapeutic target.
Main Methods:
- Transverse aortic constriction (TAC) in cardiomyocyte-specific LRP6-overexpressing mice and controls.
- Echocardiography to assess cardiac function and hypertrophy.
- In vitro mechanical stretch model using neonatal rat cardiomyocytes.
- Mass spectrometry and biochemical assays to identify interacting proteins and pathways.
Main Results:
- LRP6 overexpression improved cardiac function and reduced hypertrophy following TAC.
- LRP6 interacts with HSP90α and cathepsin D (CTSD) in cardiomyocytes under mechanical stress.
- LRP6 facilitates CTSD-mediated degradation of HSP90α, inhibiting β-catenin activation and reducing hypertrophy.
- Inhibition of CTSD or administration of HSP90α protein partially reversed the protective effects of LRP6.
Conclusions:
- LRP6 plays a protective role against pressure overload-induced cardiac remodeling.
- The CTSD/HSP90α/β-catenin signaling axis is a key mechanism mediating LRP6's cardioprotective effects.
- Targeting this axis presents a potential therapeutic strategy for heart failure.
Abstract:
Pressure overload induces pathological cardiac remodeling, including cardiac hypertrophy and fibrosis, resulting in cardiac dysfunction or heart failure. Recently, we observed that the low-density lipoprotein receptor-related protein 6 (LRP6), has shown potential in enhancing cardiac function by mitigating cardiac fibrosis in a mouse model subjected to pressure overload. In this study, we investigated the role of LRP6 as a potential modulator of pressure overload-induced cardiac hypertrophy and elucidated the underlying molecular mechanisms. We performed transverse aortic constriction (TAC) to induce pressure overload in cardiomyocyte-specific LRP6 overexpression mice (LRP6-over mice) and in control mice (α-myosin heavy chain (α-MHC) Mer-Cre-Mer Tg mice or named MCM mice). Cardiac function and hypertrophy were assessed using echocardiography. LRP6-over mice showed improved cardiac function and reduced hypertrophy after TAC, compared with MCM mice. We also applied mechanical stretch to cultured neonatal rat cardiomyocytes to model pressure overload in vitro. Mass spectrometry analysis showed that LRP6 interacts with HSP90α and cathepsin D (CTSD) in cardiomyocytes under mechanical stress. Further analysis demonstrated that LRP6 facilitates CTSD-mediated degradation of HSP90α, consequently inhibiting β-catenin activation and reducing cardiac hypertrophy post-TAC. Treatment with recombinant HSP90α protein or the CTSD inhibitor, pepstatin A, partly abolished the protective effect of LRP6 overexpression on myocardial hypertrophy and cardiac function after TAC in mice. Collectively, our data suggest that LRP6 protects against pressure overload-induced myocardial remodeling and that the CTSD/HSP90α/β-catenin axis may be a potential therapeutic target.
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