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Published on: May 26, 2023
CREG1 ameliorates myocardial fibrosis associated with autophagy activation and Rab7 expression
Abstract:
In cardiomyocytes subjected to stress, autophagy activation is a critical survival mechanism that preserves cellular energy status while degrading damaged proteins and organelles. However, little is known about the mechanisms that govern this autophagic response. Cellular repressor of E1A genes (CREG1) is an evolutionarily conserved lysosomal protein, and an important new factor in regulating tissues homeostasis that has been shown to antagonize injury of tissues or cells. In the present study, we aimed to investigate the regulatory role of CREG1 in cardiac autophagy, and to clarify autophagy activation mechanisms. First, we generated a CREG1 haploinsufficiency (Creg1(+/-)) mouse model, and identified that CREG1 deficiency aggravates myocardial fibrosis in response to aging or angiotensin II (Ang II). Conversely, exogenous infusion of recombinant CREG1 protein complete reversed cardiac damage. CERG1 deficiency in Creg1(+/-) mouse heart showed a market accumulation of autophagosome that acquired LC3II and beclin-1, and a decrease in autophagic flux clearance as indicated by upregulating the level of p62. Inversely, restoration of CREG1 activates cardiac autophagy, Furthermore, chloroquine, an inhibitor of lysosomal acidification, was used to confirm that CREG1 protected the heart tissue against Ang II-induced fibrosis by activating autophagy. Using adenoviral infection of primary cardiomyocytes, overexpression of CREG1 with concurrent resveratrol treatment significantly increased autophagy, while silencing CREG1 blocked the resveratrol-induced autophagy. These results suggest that CREG1-induced autophagy is required to maintain heart function in the face of stress-induced myocardiac damage. Both in vitro and in vivo studies identified that CREG1 deficiency influenced the maturation of lysosomes and reduced the espression of Rab7, which might be involved in CREG1-induced cardiomyocyte autophagy. These findings suggest that autophagy activation via CREG1 may be a viable therapeutic strategy autophagy for improving cardiac performance under pathologic conditions. This article is part of a Special Issue entitled: autophagy and protein quality control in cardiometabolic diseases.
Insights
Cellular repressor of E1A genes (CREG1) protects heart cells by activating autophagy, a cellular cleanup process. CREG1 deficiency worsens heart damage, while its restoration improves function, offering a potential therapeutic target for heart conditions.
Area of Science:
- Cardiovascular Biology
- Cellular Biology
- Molecular Medicine
Background:
- Autophagy is crucial for cardiomyocyte survival under stress, but its regulatory mechanisms are unclear.
- Cellular repressor of E1A genes (CREG1) is a lysosomal protein involved in tissue homeostasis and protection against injury.
- Understanding CREG1's role in cardiac autophagy is essential for developing new therapeutic strategies.
Purpose of the Study:
- To investigate the regulatory role of CREG1 in cardiac autophagy.
- To elucidate the mechanisms by which CREG1 activates autophagy in cardiomyocytes.
- To assess the therapeutic potential of CREG1 in mitigating cardiac damage.
Main Methods:
- Generated CREG1 haploinsufficiency (Creg1(+/-)) mouse models.
- Utilized angiotensin II (Ang II) challenge and recombinant CREG1 protein infusion.
- Employed primary cardiomyocyte culture with adenoviral CREG1 overexpression and silencing, alongside resveratrol treatment.
- Analyzed autophagosome markers (LC3II, beclin-1), autophagic flux (p62), lysosomal maturation, and Rab7 expression.
Main Results:
- CREG1 deficiency aggravated myocardial fibrosis and cardiac damage in response to aging or Ang II.
- Exogenous CREG1 protein administration reversed cardiac damage.
- CREG1 deficiency impaired autophagic flux, while CREG1 restoration activated autophagy.
- CREG1 influenced lysosomal maturation and Rab7 expression, suggesting a role in autophagosome clearance.
- CREG1 activation of autophagy protected heart tissue against Ang II-induced fibrosis.
Conclusions:
- CREG1 plays a critical role in activating cardiac autophagy, essential for maintaining heart function under stress.
- CREG1-mediated autophagy protects against myocardial fibrosis and damage.
- CREG1's influence on lysosomal pathways suggests a mechanism for its autophagic regulation.
- Targeting CREG1-induced autophagy presents a promising therapeutic avenue for treating cardiac pathologies.
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