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The tumor suppressor liver kinase B1 (LKB1) is an important regulator of pancreatic β cell biology. LKB1-dependent phosphorylation of distinct AMPK (adenosine monophosphate-activated protein kinase) family members determines proper β cell polarity and restricts β cell size, total β cell mass, and glucose-stimulated insulin secretion (GSIS). However, the full spectrum of LKB1 effects and the mechanisms involved in the secretory phenotype remain incompletely understood. We report here that in the absence of LKB1 in β cells, GSIS is dramatically and persistently improved. The enhancement is seen both in vivo and in vitro and cannot be explained by altered cell polarity, increased β cell number, or increased insulin content. Increased secretion does require membrane depolarization and calcium influx but appears to rely mostly on a distal step in the secretion pathway. Surprisingly, enhanced GSIS is seen despite profound defects in mitochondrial structure and function in LKB1-deficient β cells, expected to greatly diminish insulin secretion via the classic triggering pathway. Thus LKB1 is essential for mitochondrial homeostasis in β cells and in parallel is a powerful negative regulator of insulin secretion. This study shows that β cells can be manipulated to enhance GSIS to supra-normal levels even in the face of defective mitochondria and without deterioration over months.

More information Original publication

DOI

10.1074/jbc.M115.639237

Type

Journal article

Publication Date

2015-08-21T00:00:00+00:00

Volume

290

Pages

20934 - 20946

Total pages

12

Keywords

KATP channel, calcium channel, insulin secretion, liver kinase B1 (LKB1), mitochondria, mitochondrial metabolism, pancreatic islet, AMP-Activated Protein Kinases, Animals, Gene Expression Regulation, Glucose, Glutamic Acid, Humans, Insulin, Insulin Secretion, Insulin-Secreting Cells, Mice, Mice, Transgenic, Mitochondria, Phosphorylation, Protein Serine-Threonine Kinases, Recombinant Proteins, Signal Transduction, Tamoxifen, Tissue Culture Techniques