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Updated: May 16, 2025

Transverse Aortic Constriction in Mice
Published on: April 21, 2010
QRICH1 regulates ATF6 transcription to affect pathological cardiac hypertrophy progression
Lihui Zhang1,2, Hongping Chen3, Guangmei Zou4
1Medical College, Qingdao University, Qingdao, Shandong, China.
Insights
Glutamine-rich protein 1 (QRICH1) exacerbates pathological cardiac hypertrophy by regulating ATF6. Reducing QRICH1 alleviates hypertrophy, suggesting QRICH1 as a therapeutic target for heart disease.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Pathological cardiac hypertrophy is linked to endoplasmic reticulum (ER) stress.
- QRICH1, a transcriptional regulator, influences ER stress by modulating proteostasis genes.
Purpose of the Study:
- To investigate the role of QRICH1 in pathological cardiac hypertrophy.
Main Methods:
- Observed QRICH1 expression in human and mouse hearts with left ventricular hypertrophy (LVH).
- Utilized adeno-associated virus 9 (AAV9) for cardiac-specific QRICH1 knockdown or overexpression in transverse aortic constriction (TAC) or isoproterenol (ISO) models.
Main Results:
- QRICH1 knockdown ameliorated cardiac hypertrophy induced by TAC or ISO.
- QRICH1 overexpression worsened cardiac hypertrophy, remodeling, dysfunction, apoptosis, and inflammation.
- QRICH1 directly targets ATF6 in cardiomyocytes, regulating mTORC1 activation and cellular growth.
Conclusions:
- QRICH1 is a key regulator in cardiac hypertrophy via ATF6.
- QRICH1 presents a potential therapeutic target for pathological cardiac hypertrophy.
Background:
Many studies have shown that pathological cardiac hypertrophy is associated with active endoplasmic reticulum (ER) stress. Glutamine-rich protein 1 (QRICH1), as a transcriptional regulator, belongs to the caspase recruitment domain (CARD)-containing gene family. QRICH1 has been shown to influence the outcomes of endoplasmic reticulum stress by regulating the transcription of proteostasis-related genes. In this study, we explored the role of QRICH1 in pathological cardiac hypertrophy.
Methods:
We observed an increased expression of QRICH1 in the hearts of humans and mice with left ventricular hypertrophy (LVH). To assess the functional impact in this context, we employed gain- and loss-of-function approaches, using AAV9 injections to establish cardiac-specific QRICH1 knockdown or overexpression models in transverse aortic constriction (TAC) or isoproterenol (ISO)-induced cardiac hypertrophy.
Results:
Our data indicated that cardiomyocyte-specific knockdown of QRICH1 alleviated the hypertrophic phenotype in response to TAC or ISO injection. However, overexpression of QRICH1 exacerbated cardiac hypertrophy, remodeling, dysfunction, cell apoptosis, and inflammatory responses. Mechanistically, we demonstrated that ATF6 was significantly enriched by QRICH1 in cardiomyocytes treated with ISO using RNA-seq combined with CUT&TAG analysis. ChIP-qPCR and luciferase assays further confirmed that ATF6 is a target gene of QRICH1 in cardiomyocytes under growth stimulation. Knockdown of QRICH1 in cardiomyocytes blocked ISO-mediated induction of ATF6, activation of mTORC1, and cellular growth. And all of the above was restored by the overexpression of ATF6.
Conclusions:
QRICH1 plays a pivotal role in cardiac hypertrophy by regulating ATF6, and QRICH1 may be a potential new therapeutic target for pathological cardiac hypertrophy.
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