SEL1L-HRD1 ER-associated degradation facilitates prohormone convertase 2 maturation and glucagon production in islet α cells
Abstract
Abstract Proteolytic cleavage of proglucagon by prohormone convertase 2 (PC2) is required for islet α cells to generate glucagon. However, the regulatory mechanisms underlying this process remain largely unclear. Here, we report that SEL1L-HRD1 endoplasmic reticulum (ER)-associated degradation (ERAD), a highly conserved protein quality control system responsible for clearing misfolded proteins from the ER, plays a key role in glucagon production by regulating turnover of the nascent proform of the PC2 enzyme (proPC2). Using a mouse model with SEL1L deletion in proglucagon-expressing cells, we observe a progressive decline in stimulated glucagon secretion and a reduction in pancreatic glucagon content. Mechanistically, we find that endogenous proPC2 is a substrate of SEL1L-HRD1 ERAD, and that degradation of misfolded proPC2 ensures the maturation of activation-competent proPC2 protein in the ER. Here, we identify ERAD as a regulator of PC2 biology and an essential mechanism for maintaining α cell function.
Article Details
Authors (19)
Wenzhen Zhu
Department of Radiology, Tongji Hospital, Tongji Medical College
Linxiu Pan
Department of Molecular Physiology and Biological Physics, University of Virginia School of Medicine
Xianwei Cui
Anna Chiara Russo
Rohit Ray
Brent Pederson
Xiaoqiong Wei
Department of Molecular Physiology and Biological Physics, University of Virginia School of Medicine
Liangguang Leo Lin
Mauricio Torres
Department of Molecular Physiology and Biological Physics, University of Virginia School of Medicine
Hannah Hafner
Brigid Gregg
Neha Shrestha
Chengyang Liu
Department of Surgery, Perelman School of Medicine, University of Pennsylvania, Philadelphia
Ali Naji
Department of Surgery, Perelman School of Medicine, University of Pennsylvania, Philadelphia
Peter Arvan
Division of Metabolism, Endocrinology and Diabetes, University of Michigan Medical Center
Darleen A. Sandoval
Iris Lindberg
Ling Qi
Rachel Byerley Reinert