Downregulation of extramitochondrial BCKDH and its uncoupling from AMP deaminase in type 2 diabetic OLETF rat hearts

Author:

Ogawa Toshifumi1,Kouzu Hidemichi1ORCID,Osanami Arata1,Tatekoshi Yuki1,Sato Tatsuya2ORCID,Kuno Atsushi3,Fujita Yugo1,Ino Shoya1,Shimizu Masaki1,Toda Yuki1,Ohwada Wataru1,Yano Toshiyuki1,Tanno Masaya1,Miki Takayuki1,Miura Tetsuji14ORCID

Affiliation:

1. Department of Cardiovascular, Renal and Metabolic Medicine Sapporo Medical University School of Medicine Sapporo Japan

2. Department of Cellular Physiology and Signal Transduction Sapporo Medical University School of Medicine Sapporo Japan

3. Department of Pharmacology Sapporo Medical University School of Medicine Sapporo Japan

4. Department of Clinical Pharmacology, Faculty of Pharmaceutical Sciences Hokkaido University of Science Sapporo Japan

Abstract

AbstractSystemic branched‐chain amino acid (BCAA) metabolism is dysregulated in cardiometabolic diseases. We previously demonstrated that upregulated AMP deaminase 3 (AMPD3) impairs cardiac energetics in a rat model of obese type 2 diabetes, Otsuka Long‐Evans‐Tokushima fatty (OLETF). Here, we hypothesized that the cardiac BCAA levels and the activity of branched‐chain α‐keto acid dehydrogenase (BCKDH), a rate‐limiting enzyme in BCAA metabolism, are altered by type 2 diabetes (T2DM), and that upregulated AMPD3 expression is involved in the alteration. Performing proteomic analysis combined with immunoblotting, we discovered that BCKDH localizes not only to mitochondria but also to the endoplasmic reticulum (ER), where it interacts with AMPD3. Knocking down AMPD3 in neonatal rat cardiomyocytes (NRCMs) increased BCKDH activity, suggesting that AMPD3 negatively regulates BCKDH. Compared with control rats (Long‐Evans Tokushima Otsuka [LETO] rats), OLETF rats exhibited 49% higher cardiac BCAA levels and 49% lower BCKDH activity. In the cardiac ER of the OLETF rats, BCKDH‐E1α subunit expression was downregulated, while AMPD3 expression was upregulated, resulting in an 80% lower AMPD3‐E1α interaction compared to LETO rats. Knocking down E1α expression in NRCMs upregulated AMPD3 expression and recapitulated the imbalanced AMPD3‐BCKDH expressions observed in OLETF rat hearts. E1α knockdown in NRCMs inhibited glucose oxidation in response to insulin, palmitate oxidation, and lipid droplet biogenesis under oleate loading. Collectively, these data revealed previously unrecognized extramitochondrial localization of BCKDH in the heart and its reciprocal regulation with AMPD3 and imbalanced AMPD3‐BCKDH interactions in OLETF. Downregulation of BCKDH in cardiomyocytes induced profound metabolic changes that are observed in OLETF hearts, providing insight into mechanisms contributing to the development of diabetic cardiomyopathy.

Funder

Japan Society for the Promotion of Science

MSD Life Science Foundation, Public Interest Incorporated Foundation

Publisher

Wiley

Subject

Physiology (medical),Physiology

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Amino acid metabolism in health and disease;Signal Transduction and Targeted Therapy;2023-09-13

2. Identification and analysis of hub genes of hypoxia-immunity in type 2 diabetes mellitus;Frontiers in Genetics;2023-04-21

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