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Galipeau, M.

Publications and source records attributed to Galipeau, M..

2 recordsLinked to original sources

β-cell NCK1 is reduced in type 2 diabetes, leading to inefficient β-cell UPR and insulin secretion and revealing sex-specific adaptation during metabolic stress

Type 2 diabetes is characterized by failure of pancreatic {beta} cells to adapt insulin secretion to metabolic demand, due to impaired {beta}-cell function and/or reduced {beta}-cell mass. The unfolded protein response (UPR) is central to this adaptation by maintaining endoplasmic reticulum homeostasis and supporting insulin biosynthesis, secretion, proliferation, and survival. NCK1, is an adaptor protein that regulates diverse cellular processes, including insulin biosynthesis and UPR activation, positioning it at the crossroads of several processes essential for {beta}-cell function. Moreover its silencing is reported to enhance adaptive PERK signaling and {beta}-cell survival in vitro, suggesting that it could represent an important regulator of {beta}-cell adaptation. Here, we explored this potential role for NCK1 using {beta}-cell-specific knockout mice (NCK1{beta}KO) and human islets of both sexes. NCK1 expression was positively regulated by glucose yet reduced in islets from individuals living with type 2 diabetes. Loss of {beta}-cell NCK1 impaired insulin gene expression, insulin content, and glucose-stimulated insulin secretion in vitro, and disrupted UPR activation. In vivo, {beta}-cell NCK1 deletion led to sex-dependent adaptation to maintain glucose homeostasis. Under high-fat/high-sucrose diet, both NCK1{beta}KO male and female mice increased pancreatic insulin content, but only males showed improved insulin secretion associated with islet expansion and {beta}-cell proliferation. Females, in contrast, exhibited impaired insulin secretion despite preserved insulin stores, associated with increased numbers of small islets and altered PERK pathway activation. These findings identify NCK1 as a regulator of {beta}-cell insulin synthesis, secretion, and UPR signaling, and reveal sex-specific adaptive mechanisms to {beta}-cell stress. Reduced NCK1 in islets from people living type 2 diabetes may disrupt {beta}-cell adaptation to metabolic stress and contribute to diabetes.

physiology↗

14-3-3ζ constrains insulin secretion in pancreatic β-cells by regulating mitochondrial function

While critical for neurotransmitter synthesis in the brain, members of the 14-3-3 protein family are often assumed to have redundant, over-lapping roles due to their high sequence homology and ubiquitous expression. Despite this assumption, various mammalian 14-3-3 isoforms have now been implicated in regulating cellular and organismal metabolism; however, these functions were primarily observed in cell lines or from systemic knockout mouse models. To date, we have begun to define the contributions of 14-3-3{zeta} in adipocytes, but whether 14-3-3{zeta} has additional metabolic roles in other cell types, such as the pancreatic {beta}-cell, is unclear. We previously documented a pro-survival role of 14-3-3{zeta} in MIN6 insulinoma cells, as depletion of 14-3-3{zeta} induced cell death, but paradoxically, whole-body deletion of 14-3-3{zeta} in mice resulted in significantly enlarged {beta}-cell area with no effects on insulin secretion. To better understand the role of 14-3-3{zeta} in {beta}-cells, we generated {beta}-cell-specific 14-3-3{zeta} knockout ({beta}14-3-3{zeta}KO) mice, and while no differences in {beta}-cell mass were observed, {beta}14-3-3{zeta}KO mice displayed potentiated insulin secretion due to enhanced mitochondrial function and ATP synthesis. Deletion of 14-3-3{zeta} led to profound changes to the {beta}-cell transcriptome, where pathways associated with mitochondrial respiration and oxidative phosphorylation were upregulated. Acute treatment of mouse islets and human islets with pan-14-3-3 inhibitors recapitulated the potentiation in glucose-stimulated insulin secretion (GSIS) and mitochondrial function, suggesting that 14-3-3{zeta} is a critical isoform in {beta}-cells that regulates GSIS. In dysfunctional db/db islets and islets from type 2 diabetic donors, expression of Ywhaz/YWHAZ, the gene encoding 14-3-3{zeta}, was inversely associated with insulin secretory capacity, and pan-14-3-3 protein inhibition was capable of enhancing GSIS and mitochondrial function. Taken together, this study demonstrates important regulatory functions of 14-3-3{zeta} and its related isoforms in insulin secretion and mitochondrial function in {beta}-cells. A deeper understanding of how 14-3-3{zeta} influences {beta}-cell function will further advance our knowledge of how insulin secretion from {beta}-cells is regulated.

physiology↗