Obesity-dependent increase in RalA activity disrupts mitochondrial dynamics in white adipocytes

Author:

xia Wenmin1ORCID,Veeragandham Preethi1,Cao Yu1,Xu Yayun1,Rhyne Torrey1,Qian Jiaxin1,Hung Chao-Wei2,Zhao Peng3ORCID,Jones Ying1,Gao Hui4ORCID,Liddle Christopher5,Yu Ruth6ORCID,Downes Michael6,Evans Ronald5ORCID,Ryden Mikael7ORCID,Wabitsch Martin8ORCID,Reilly Shannon9,Huang Jianfeng5,Saltiel Alan10ORCID

Affiliation:

1. University of California San Diego

2. University of North Carolina

3. University of Texas Health Science Center at San Antonio

4. Karolinska Institutet

5. Salk Institute for Biological Studies

6. Salk Institute

7. Karolinska Institute

8. Ulm University Medical Center

9. Weill Medical College of Cornell University

10. UCSD

Abstract

Abstract Mitochondrial dysfunction is a characteristic trait of human and rodent obesity, insulin resistance, and fatty liver disease. Here we report that mitochondria undergo fragmentation and reduced oxidative capacity specifically in inguinal white adipose tissue after feeding mice high fat diet (HFD) by a process dependent on the small GTPase RalA. RalA expression and activity are increased in white adipocytes from mice fed HFD. Targeted deletion of Rala in white adipocytes prevents the obesity-induced fragmentation of mitochondria and produces mice resistant to HFD-induced weight gain via increased fatty acid oxidation. As a result, these mice also exhibit improved glucose tolerance and liver function. In vitro mechanistic studies revealed that RalA suppresses mitochondrial oxidative function in adipocytes by increasing fission through reversing the protein kinase A-catalyzed inhibitory Ser637phosphorylation of the mitochondrial fission protein Drp1. Active RalA recruits protein phosphatase 2A (PP2Aa) to specifically dephosphorylate this inhibitory site on Drp1, activating the protein, thus increasing mitochondrial fission. Adipose tissue expression of the human homolog of Drp1, DNML1, is positively correlated with obesity and insulin resistance in patients. Thus, chronic activation of RalA plays a key role in repressing energy expenditure in obese adipose tissue by shifting the balance of mitochondrial dynamics towards excessive fission, contributing to weight gain and related metabolic dysfunction.

Publisher

Research Square Platform LLC

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