Metabolic control of adaptive β-cell proliferation by the protein deacetylase SIRT2
Selective and controlled expansion of endogenous {beta}-cells has been pursued as a potential therapy for diabetes. Ideally, such therapies would preserve feedback control of {beta}-cell proliferation to avoid excessive {beta}-cell expansion and an increased risk of hypoglycemia. Here, we identified a regulator of {beta}-cell proliferation whose inactivation results in controlled {beta}-cell expansion: the protein deacetylase Sirtuin 2 (SIRT2). Sirt2 deletion in {beta}-cells of mice increased {beta}-cell proliferation during hyperglycemia with little effect in homeostatic conditions, indicating preservation of feedback control of {beta}-cell mass. SIRT2 restrains proliferation of human islet {beta}-cells cultured in glucose concentrations above the glycemic set point, demonstrating conserved SIRT2 function. Analysis of acetylated proteins in islets treated with a SIRT2 inhibitor revealed that SIRT2 deacetylates enzymes involved in oxidative phosphorylation, dampening the adaptive increase in oxygen consumption during hyperglycemia. At the transcriptomic level, Sirt2 inactivation has context-dependent effects on {beta}-cells, with Sirt2 controlling how {beta}-cells interpret hyperglycemia as a stress. Finally, we provide proof-of-principle that systemic administration of a GLP1-coupled Sirt2-targeting antisense oligonucleotide achieves {beta}-cell selective Sirt2 inactivation and stimulates {beta}-cell proliferation under hyperglycemic conditions. Overall, these studies identify a therapeutic strategy for increasing {beta}-cell mass in diabetes without circumventing feedback control of {beta}-cell proliferation.