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Published on: June 3, 2018
ESCRT-III Component CHMP4C Attenuates Cardiac Hypertrophy by Targeting the Endo-Lysosomal Degradation of EGFR
Ao Liu1,2, Huilin Xie1,2, Fangyan Tian1,3
1Department of Echocardiography (A.L., H.X., F.T., H.W., Y.L., W.L., L.T., N.Z., X.S.), Zhongshan Hospital, Fudan University, Shanghai Institute of Cardiovascular Diseases, China.
Insights
Charged multivesicular body protein 4C (CHMP4C) represses cardiac hypertrophy by promoting lysosomal degradation of epidermal growth factor receptor (EGFR). This finding identifies CHMP4C as a potential therapeutic target for heart conditions.
Area of Science:
- Cardiovascular Biology
- Cellular Trafficking
- Molecular Mechanisms of Heart Disease
Background:
- Cardiac hypertrophy and heart failure are significant global health concerns.
- Impaired endo-lysosomal degradation is linked to cardiac hypertrophy progression.
- The role of CHMP4C in cardiac hypertrophy is largely unknown.
Purpose of the Study:
- To investigate the role of CHMP4C in cardiac hypertrophy.
- To elucidate the molecular mechanisms by which CHMP4C affects cardiac hypertrophy.
- To determine if CHMP4C is a potential therapeutic target for cardiac hypertrophy.
Main Methods:
- Utilized mouse models with CHMP4C knockout and cardiac-specific overexpression subjected to transverse aortic constriction.
- Assessed cardiac morphology and function via histology and echocardiography.
- Employed confocal imaging, coimmunoprecipitation, and EGFR inhibitor administration to identify CHMP4C targets and pathways.
Main Results:
- CHMP4C was upregulated in pressure-overloaded models.
- CHMP4C deficiency worsened cardiac hypertrophy, while overexpression attenuated it.
- CHMP4C directly interacts with EGFR, promoting its lysosomal degradation and inhibiting hypertrophy via the EGFR signaling pathway.
Conclusions:
- CHMP4C plays a protective role in cardiac hypertrophy.
- CHMP4C functions by modulating lysosomal degradation of EGFR.
- CHMP4C represents a potential therapeutic candidate for treating cardiac hypertrophy.
Background:
Cardiac hypertrophy and subsequent heart failure impose a considerable burden on public health worldwide. Impaired protein degradation, especially endo-lysosome-mediated degradation of membrane proteins, is associated with cardiac hypertrophy progression. CHMP4C (charged multivesicular body protein 4C), a critical constituent of multivesicular bodies, is involved in cellular trafficking and signaling. However, the specific role of CHMP4C in the progression of cardiac hypertrophy remains largely unknown.
Methods:
Mouse models with CHMP4C knockout or cardiadc-specific overexpression were subjected to transverse aortic constriction surgery for 4 weeks. Cardiac morphology and function were assessed through histological staining and echocardiography. Confocal imaging and coimmunoprecipitation assays were performed to identify the direct target of CHMP4C. An EGFR (epidermal growth factor receptor) inhibitor was administrated to determine whether effects of CHMP4C on cardiac hypertrophy were EGFR dependent.
Results:
CHMP4C was significantly upregulated in both pressure-overloaded mice and spontaneously hypertensive rats. Compared with wild-type mice, CHMP4C deficiency exacerbated transverse aortic constriction-induced cardiac hypertrophy, whereas CHMP4C overexpression in cardiomyocytes attenuated cardiac dysfunction. Mechanistically, the effect of CHMP4C on cardiac hypertrophy relied on the EGFR signaling pathway. Fluorescent staining and coimmunoprecipitation assays confirmed that CHMP4C interacts directly with EGFR and promotes lysosome-mediated degradation of activated EGFR, thus attenuating cardiac hypertrophy. Notably, an EGFR inhibitor canertinib counteracted the exacerbation of cardiac hypertrophy induced by CHMP4C knockdown in vitro and in vivo.
Conclusions:
CHMP4C represses cardiac hypertrophy by modulating lysosomal degradation of EGFR and is a potential therapeutic candidate for cardiac hypertrophy.
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