Interruption of glucagon signaling augments islet non-alpha cell proliferation in SLC7A2- and mTOR-dependent manners

Author:

Coate Katie C.ORCID,Dai ChunhuaORCID,Singh Ajay,Stanley JadeORCID,Covington Brittney A.ORCID,Bradley AmberORCID,Oladipupo FavourORCID,Gong Yulong,Wisniewski Scott,Spears ErickORCID,Poffenberger GregORCID,Bustabad Alexandria,Rodgers Tyler,Dey Nandita,Shultz Leonard D.,Greiner Dale L.,Yan HaiORCID,Powers Alvin C.ORCID,Chen WenbiaoORCID,Dean E. DanielleORCID

Abstract

ABSTRACTObjectiveDysregulated glucagon secretion and inadequate functional beta cell mass are hallmark features of diabetes. While glucagon receptor (GCGR) antagonism ameliorates hyperglycemia and elicits beta cell regeneration in pre-clinical models of diabetes, it also promotes alpha and delta cell hyperplasia. We sought to investigate the mechanism by which loss of glucagon action impacts pancreatic islet non-alpha cells, and the relevance of these observations in a human islet context.MethodsWe used zebrafish, rodents, and transplanted human islets comprising six different models of interrupted glucagon signaling to examine their impact on delta and beta cell proliferation and mass. We also used models with global deficiency of the cationic amino acid transporter, SLC7A2, and mTORC1 inhibition via rapamycin, to determine whether amino acid-dependent nutrient sensing was required for islet non-alpha cell growth.ResultsInhibition of glucagon signaling stimulated delta cell proliferation in mouse and transplanted human islets, and in mouse islets. This was rapamycin-sensitive and required SLC7A2. Likewise,gcgrdeficiency augmented beta cell proliferation via SLC7A2- and mTORC1-dependent mechanisms in zebrafish and promoted cell cycle engagement in rodent beta cells but was insufficient to drive a significant increase in beta cell mass in mice.ConclusionOur findings demonstrate that interruption of glucagon signaling augments islet non-alpha cell proliferation in zebrafish, rodents, and transplanted human islets in a manner requiring SLC7A2 and mTORC1 activation. An increase in delta cell mass may be leveraged for future beta cell regeneration therapies relying upon delta cell reprogramming.

Publisher

Cold Spring Harbor Laboratory

Reference43 articles.

1. Abnormal Alpha-Cell Function in Diabetes

2. THE ESSENTIAL ROLE OF GLUCAGON IN THE PATHOGENESIS OF DIABETES MELLITUS;The Lancet,1975

3. The Importance of β-Cell Failure in the Development and Progression of Type 2 Diabetes;The Journal of Clinical Endocrinology & Metabolism,2001

4. The Role of α-Cell Dysregulation in Fasting and Postprandial Hyperglycemia in Type 2 Diabetes and Therapeutic Implications

5. β Cell dysfunction during progression of metabolic syndrome to type 2 diabetes;The Journal of Clinical Investigation,2019

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