The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced Diabetes
Regulated/activated protein kinase (PRAK) plays a crucial role in modulating biological function. However, the role of PRAK in mediating cardiac dysfunction and metabolic disorders remains unclear. We examined the effects of deletion of PRAK on modulating cardiac function and insulin resistance in m...
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doaj-5786d82437e64a5d9dddccb23b467c2b2021-08-06T15:25:00ZengMDPI AGInternational Journal of Molecular Sciences1661-65961422-00672021-07-01227995799510.3390/ijms22157995The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced DiabetesJianfeng Du0Yu Tina Zhao1Hao Wang2Ling X. Zhang3Gangjian Qin4Shougang Zhuang5Marshall Kadin6Y. Eugene Chin7Paul Y. Liu8Ting C. Zhao9Department of Surgery, Roger Williams Medical Center, Boston University School of Medicine, Providence, RI 02908, USAUniversity of Rochester School of Medicine and Dentistry, Rochester, NY 14642, USADepartment of Surgery, Roger Williams Medical Center, Boston University School of Medicine, Providence, RI 02908, USADepartment of Surgery, Roger Williams Medical Center, Boston University School of Medicine, Providence, RI 02908, USADepartment of Biomedical Engineering, University of Alabama at Birmingham, Birmingham, AL 35294, USADepartment of Medicine, Rhode Island Hospital, Alpert Brown Medical School, Brown University, Providence, RI 02903, USADepartment of Plastic Surgery, Rhode Island Hospital, Brown University, Providence, RI 02903, USAInstitute of Health Sciences, Chinese Academy of Sciences-Jiaotong University School of Medicine, Shanghai 200031, ChinaDepartment of Plastic Surgery, Rhode Island Hospital, Brown University, Providence, RI 02903, USADepartment of Surgery, Roger Williams Medical Center, Boston University School of Medicine, Providence, RI 02908, USARegulated/activated protein kinase (PRAK) plays a crucial role in modulating biological function. However, the role of PRAK in mediating cardiac dysfunction and metabolic disorders remains unclear. We examined the effects of deletion of PRAK on modulating cardiac function and insulin resistance in mice exposed to a high-fat diet (HFD). Wild-type and PRAK<sup>−/−</sup> mice at 8 weeks old were exposed to either chow food or HFD for a consecutive 16 weeks. Glucose tolerance tests and insulin tolerance tests were employed to assess insulin resistance. Echocardiography was employed to assess myocardial function. Western blot was used to determine the molecular signaling involved in phosphorylation of IRS-1, AMPKα, ERK-44/42, and irisin. Real time-PCR was used to assess the hypertrophic genes of the myocardium. Histological analysis was employed to assess the hypertrophic response, interstitial myocardial fibrosis, and apoptosis in the heart. Western blot was employed to determine cellular signaling pathway. HFD-induced metabolic stress is indicated by glucose intolerance and insulin intolerance. PRAK knockout aggravated insulin resistance, as indicated by glucose intolerance and insulin intolerance testing as compared with wild-type littermates. As compared with wild-type mice, hyperglycemia and hypercholesterolemia were manifested in PRAK-knockout mice following high-fat diet intervention. High-fat diet intervention displayed a decline in fractional shortening and ejection fraction. However, deletion of PRAK exacerbated the decline in cardiac function as compared with wild-type mice following HFD treatment. In addition, PRAK knockout mice enhanced the expression of myocardial hypertrophic genes including ANP, BNP, and βMHC in HFD treatment, which was also associated with an increase in cardiomyocyte size and interstitial fibrosis. Western blot indicated that deletion of PRAK induces decreases in phosphorylation of IRS-1, AMPKα, and ERK44/42 as compared with wild-type controls. Our finding indicates that deletion of PRAK promoted myocardial dysfunction, cardiac remodeling, and metabolic disorders in response to HFD.https://www.mdpi.com/1422-0067/22/15/7995PRAKinsulin resistancemyocardiumhigh-fat dietmetabolic stress |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jianfeng Du Yu Tina Zhao Hao Wang Ling X. Zhang Gangjian Qin Shougang Zhuang Marshall Kadin Y. Eugene Chin Paul Y. Liu Ting C. Zhao |
spellingShingle |
Jianfeng Du Yu Tina Zhao Hao Wang Ling X. Zhang Gangjian Qin Shougang Zhuang Marshall Kadin Y. Eugene Chin Paul Y. Liu Ting C. Zhao The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced Diabetes International Journal of Molecular Sciences PRAK insulin resistance myocardium high-fat diet metabolic stress |
author_facet |
Jianfeng Du Yu Tina Zhao Hao Wang Ling X. Zhang Gangjian Qin Shougang Zhuang Marshall Kadin Y. Eugene Chin Paul Y. Liu Ting C. Zhao |
author_sort |
Jianfeng Du |
title |
The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced Diabetes |
title_short |
The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced Diabetes |
title_full |
The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced Diabetes |
title_fullStr |
The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced Diabetes |
title_full_unstemmed |
The Essential Role of PRAK in Preserving Cardiac Function and Insulin Resistance in High-Fat Diet-Induced Diabetes |
title_sort |
essential role of prak in preserving cardiac function and insulin resistance in high-fat diet-induced diabetes |
publisher |
MDPI AG |
series |
International Journal of Molecular Sciences |
issn |
1661-6596 1422-0067 |
publishDate |
2021-07-01 |
description |
Regulated/activated protein kinase (PRAK) plays a crucial role in modulating biological function. However, the role of PRAK in mediating cardiac dysfunction and metabolic disorders remains unclear. We examined the effects of deletion of PRAK on modulating cardiac function and insulin resistance in mice exposed to a high-fat diet (HFD). Wild-type and PRAK<sup>−/−</sup> mice at 8 weeks old were exposed to either chow food or HFD for a consecutive 16 weeks. Glucose tolerance tests and insulin tolerance tests were employed to assess insulin resistance. Echocardiography was employed to assess myocardial function. Western blot was used to determine the molecular signaling involved in phosphorylation of IRS-1, AMPKα, ERK-44/42, and irisin. Real time-PCR was used to assess the hypertrophic genes of the myocardium. Histological analysis was employed to assess the hypertrophic response, interstitial myocardial fibrosis, and apoptosis in the heart. Western blot was employed to determine cellular signaling pathway. HFD-induced metabolic stress is indicated by glucose intolerance and insulin intolerance. PRAK knockout aggravated insulin resistance, as indicated by glucose intolerance and insulin intolerance testing as compared with wild-type littermates. As compared with wild-type mice, hyperglycemia and hypercholesterolemia were manifested in PRAK-knockout mice following high-fat diet intervention. High-fat diet intervention displayed a decline in fractional shortening and ejection fraction. However, deletion of PRAK exacerbated the decline in cardiac function as compared with wild-type mice following HFD treatment. In addition, PRAK knockout mice enhanced the expression of myocardial hypertrophic genes including ANP, BNP, and βMHC in HFD treatment, which was also associated with an increase in cardiomyocyte size and interstitial fibrosis. Western blot indicated that deletion of PRAK induces decreases in phosphorylation of IRS-1, AMPKα, and ERK44/42 as compared with wild-type controls. Our finding indicates that deletion of PRAK promoted myocardial dysfunction, cardiac remodeling, and metabolic disorders in response to HFD. |
topic |
PRAK insulin resistance myocardium high-fat diet metabolic stress |
url |
https://www.mdpi.com/1422-0067/22/15/7995 |
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