Cell type-specific deletion in mice reveals roles for PAS kinase in insulin and glucagon production

Francesca Semplici1, Angeles Mondragon1, Benedict Macintyre1

  • 1Section of Cell Biology and Functional Genomics, Division of Diabetes, Endocrinology and Metabolism, Department of Medicine, Imperial College London, Imperial Centre for Translational and Experimental Medicine, Hammersmith Hospital, du Cane Road, London, W12 0NN, UK.

Diabetologia
|June 25, 2016
PubMed
Abstract

Insights

Per-Arnt-Sim kinase (PASK) controls pancreatic hormone release. Deleting PASK in beta cells reduced mass and impaired glucose tolerance, while deletion in alpha cells affected glucagon secretion and glucose regulation.

Area of Science:

  • Endocrinology
  • Molecular Biology
  • Metabolism

Background:

  • Per-Arnt-Sim kinase (PASK) is a nutrient-regulated kinase involved in insulin gene expression and glucagon secretion.
  • Understanding PASK's role in pancreatic islet hormone release is crucial for metabolic research.

Purpose of the Study:

  • To investigate the specific roles of PASK in pancreatic beta and alpha cell function.
  • To generate and analyze genetically modified mice with selective Pask gene deletion in these cells.

Main Methods:

  • Generation of Pask-floxed mice and breeding with beta (Ins1-Cre) or alpha (Ppg-Cre) cell-specific Cre recombinase lines.
  • Assessment of glucose homeostasis, hormone secretion (in vivo and in vitro), gene expression, and islet cell mass.

Main Results:

  • Beta cell-specific Pask deletion (PaskBKO) reduced beta cell mass and impaired glucose tolerance, particularly after high-fat diet.
  • Alpha cell-specific Pask deletion (PaskAKO) increased alpha cell mass but impaired glucagon release and altered glucose infusion rates.
  • Global Pask-null mice showed similar beta cell mass reduction as PaskBKO mice.

Conclusions:

  • PASK plays cell-autonomous roles in regulating pancreatic endocrine hormone secretion.
  • Tissue interactions involving PASK are important for overall glycemic control, as suggested by differences between global and cell-specific knockout models.

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