MAEL facilitates metabolic reprogramming and breast cancer progression by promoting the degradation of citrate synthase and fumarate hydratase via chaperone‐mediated autophagy

Author:

Zhou Lin12,Ou Shuobo1,Liang Ting1,Li Meiling1,Xiao Pei1,Cheng Jiaxin1,Zhou Jianlin1ORCID,Yuan Liqin3ORCID

Affiliation:

1. State Key Laboratory of Developmental Biology of Freshwater Fish & Key Laboratory of Protein Chemistry and Developmental Biology of the Ministry of Education, College of Life Science Hunan Normal University Changsha China

2. College of Clinical Laboratory Changsha Medical University China

3. Department of General Surgery, The Second Xiangya Hospital Central South University Changsha China

Abstract

Metabolic reprogramming is a hallmark of cancer. Several studies have shown that inactivation of Krebs cycle enzymes, such as citrate synthase (CS) and fumarate hydratase (FH), facilitates aerobic glycolysis and cancer progression. MAEL has been shown to play an oncogenic role in bladder, liver, colon, and gastric cancers, but its role in breast cancer and metabolism is still unknown. Here, we demonstrated that MAEL promoted malignant behaviours and aerobic glycolysis in breast cancer cells. Mechanistically, MAEL interacted with CS/FH and HSAP8 via its MAEL domain and HMG domain, respectively, and then enhanced the binding affinity of CS/FH with HSPA8, facilitating the transport of CS/FH to the lysosome for degradation. MAEL‐induced degradation of CS and FH could be suppressed by the lysosome inhibitors leupeptin and NH4Cl, but not by the macroautophagy inhibitor 3‐MA or the proteasome inhibitor MG132. These results suggested that MAEL promoted the degradation of CS and FH via chaperone‐mediated autophagy (CMA). Further studies showed that the expression of MAEL was significantly and negatively correlated with CS and FH in breast cancer. Moreover, overexpression of CS or/and FH could reverse the oncogenic effects of MAEL. Taken together, MAEL promotes a metabolic shift from oxidative phosphorylation to glycolysis by inducing CMA‐dependent degradation of CS and FH, thereby promoting breast cancer progression. These findings have elucidated a novel molecular mechanism of MAEL in cancer.

Funder

Hunan Provincial Innovation Foundation for Postgraduate

Natural Science Foundation of Hunan Province

Science and Technology Program of Hunan Province

Publisher

Wiley

Subject

Cell Biology,Molecular Biology,Biochemistry

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