Metallothionein Preserves Akt2 Activity and Cardiac Function via Inhibiting TRB3 in Diabetic Hearts

Author:

Gu Junlian12,Yan Xiaoqing12,Dai Xiaozhen123,Wang Yuehui4,Lin Qian25,Xiao Jian1,Zhou Shanshan24,Zhang Jian24,Wang Kai12,Zeng Jun12,Xin Ying26,Barati Michelle T.7,Zhang Chi1,Bai Yang24,Li Yan8,Epstein Paul N.259,Wintergerst Kupper A.2910,Li Xiaokun1,Tan Yi259ORCID,Cai Lu259ORCID

Affiliation:

1. Chinese-American Research Institute for Diabetic Complications, School of Pharmaceutical Sciences and the First Affiliated Hospital at the Wenzhou Medical University, Wenzhou, China

2. Children’s Hospital Research Institute, Department of Pediatrics, University of Louisville, Louisville, KY

3. School of Biomedicine, Chengdu Medical College, Chengdu, Sichuan, China

4. Departments of Geriatrics, Cardiovascular Disorders and Cardiac Surgery, The First Hospital of Jilin University, Changchun, China

5. Department of Pharmacology and Toxicology, University of Louisville, Louisville, KY

6. Key Laboratory of Pathobiology, Ministry of Education, Jilin University, Changchun, China

7. Department of Medicine, University of Louisville, Louisville, KY

8. Department of Surgery, University of Louisville, Louisville, KY

9. Wendy L. Novak Diabetes Care Center, Louisville, KY

10. Division of Endocrinology, Department of Pediatrics, University of Louisville, Louisville, KY

Abstract

Cardiac insulin resistance is a key pathogenic factor for diabetic cardiomyopathy (DCM), but the mechanism remains largely unclear. We found that diabetic hearts exhibited decreased phosphorylation of total Akt and isoform Akt2 but not Akt1 in wild-type (WT) male FVB mice, which was accompanied by attenuation of Akt downstream glucose metabolic signal. All of these signal changes were not observed in metallothionein cardiac-specific transgenic (MT-TG) hearts. Furthermore, insulin-induced glucose metabolic signals were attenuated only in WT diabetic hearts. In addition, diabetic hearts exhibited increased Akt-negative regulator tribbles pseudokinase 3 (TRB3) expression only in WT mice, suggesting that MT may preserve Akt2 function via inhibiting TRB3. Moreover, MT prevented tert-butyl hydroperoxide (tBHP)–reduced insulin-stimulated Akt2 phosphorylation in MT-TG cardiomyocytes, which was abolished by specific silencing of Akt2. Specific silencing of TRB3 blocked tBHP inhibition of insulin-stimulated Akt2 phosphorylation in WT cardiomyocytes, whereas overexpression of TRB3 in MT-TG cardiomyocytes and hearts abolished MT preservation of insulin-stimulated Akt2 signals and MT prevention of DCM. Most importantly, supplementation of Zn to induce MT preserved cardiac Akt2 signals and prevented DCM. These results suggest that diabetes-inhibited cardiac Akt2 function via TRB3 upregulation leads to aberrant cardiac glucose metabolism. MT preservation of cardiac Akt2 function by inhibition of TRB3 prevents DCM.

Funder

National Key R&D Program of China

Wenzhou Medical University

National Natural Science Foundation of China

American Diabetes Association

Foundation for the National Institutes of Health

National Institutes of Health

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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