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High-mobility group AT-hook 1 promotes cardiac dysfunction in diabetic cardiomyopathy via autophagy inhibition
Qing-Qing Wu1,2,3, Chen Liu1,2,3, Zhulan Cai1,2,3
1Department of Cardiology, Renmin Hospital of Wuhan University, Wuhan, 430060, P. R. China.
Insights
High-mobility group AT-hook1 (HMGA1) worsens diabetic cardiomyopathy by disrupting autophagy via the miR-222/P27/mTOR pathway. Reducing HMGA1 protects against cardiac remodeling in diabetes.
Area of Science:
- Molecular Biology
- Cardiology
- Endocrinology
Background:
- Diabetic cardiomyopathy involves cardiac remodeling, inflammation, apoptosis, and dysfunction.
- The role of High-mobility group AT-hook1 (HMGA1) in diabetic cardiomyopathy is not well understood.
Purpose of the Study:
- To investigate the role of HMGA1 in diabetic cardiomyopathy.
- To elucidate the underlying molecular mechanisms involving autophagy and related signaling pathways.
Main Methods:
- Studied HMGA1 expression in diabetic mouse hearts and high-glucose-stimulated cardiomyocytes.
- Utilized adeno-associated virus 9 (AAV9) for in vivo overexpression and knockdown of HMGA1.
- Investigated the HMGA1 regulation of autophagy via the P27/CDK2/mTOR signaling pathway.
- Confirmed HMGA1's regulatory effect on P27 mediated by miR-222 using luciferase reporter assays.
Main Results:
- HMGA1 was upregulated in diabetic conditions and exacerbated high-glucose-induced cardiomyocyte inflammation and apoptosis.
- HMGA1 overexpression in mice worsened cardiac remodeling and dysfunction in a diabetic model.
- HMGA1 inhibited autophagy formation by regulating P27/CDK2/mTOR signaling.
- HMGA1 directly regulated miR-222 promoter activity, inhibiting P27/mTOR-induced autophagy.
Conclusions:
- HMGA1 aggravates diabetic cardiomyopathy by inhibiting autophagy through the miR-222/P27/mTOR pathway.
- Targeting HMGA1 may offer a therapeutic strategy for diabetic cardiomyopathy.
Abstract:
High-mobility group AT-hook1 (HMGA1, formerly HMG-I/Y), an architectural transcription factor, participates in a number of biological processes. However, its effect on cardiac remodeling (refer to cardiac inflammation, apoptosis and dysfunction) in diabetic cardiomyopathy remains largely indistinct. In this study, we found that HMGA1 was upregulated in diabetic mouse hearts and high-glucose-stimulated cardiomyocytes. Overexpression of HMGA1 accelerated high-glucose-induced cardiomyocyte inflammation and apoptosis, while HMGA1 knockdown relieved inflammation and apoptosis in cardiomyocytes in response to high glucose. Overexpression of HMGA1 in mice heart by adeno-associated virus 9 (AAV9) delivery system deteriorated the inflammatory response, increased apoptosis and accelerated cardiac dysfunction in streptozotocin-induced diabetic mouse model. Knockdown of HMGA1 by AAV9-shHMGA1 in vivo ameliorated cardiac remodeling in diabetic mice. Mechanistically, we found that HMGA1 inhibited the formation rather than the degradation of autophagy by regulating P27/CDK2/mTOR signaling. CDK2 knockdown or P27 overexpression blurred HMGA1 overexpression-induced deteriorating effects in vitro. P27 overexpression in mice heart counteracted HMGA1 overexpression-induced increased cardiac remodeling in diabetic mice. The luciferase reporter experiment confirmed that the regulatory effect of HMGA1 on P27 was mediated by miR-222. In addition, a miR-222 antagomir counteracted HMGA1 overexpression-induced deteriorating effects in vitro. Taken together, our data indicate that HMGA1 aggravates diabetic cardiomyopathy by directly regulating miR-222 promoter activity, which inhibits P27/mTOR-induced autophagy.
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