Structure-function studies of PANDER, an islet specific cytokine inducing cell death of insulin-secreting beta cells

Jichun Yang1, Zhiyong Gao, Claudia E Robert

  • 1Department of Pathology and Laboratory Medicine, The Children's Hospital of Philadelphia and University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104-4399, USA.

Biochemistry
|August 24, 2005
PubMed

Insights

PANDER (pancreatic derived factor, FAM3B) is a novel cytokine implicated in diabetes. Its B and C helices and a specific disulfide bond are essential for inducing beta-cell death.

Area of Science:

  • Endocrinology
  • Molecular Biology
  • Cell Biology

Background:

  • PANDER (pancreatic derived factor, FAM3B) is a novel cytokine found in insulin secretory granules.
  • PANDER induces apoptosis in pancreatic alpha and beta cells, suggesting a role in diabetes.
  • The protein exhibits a predicted secondary structure of 4 alpha-helical bundles with two disulfide bonds.

Purpose of the Study:

  • To identify the essential regions of PANDER responsible for beta-cell death.
  • To investigate the role of specific structural elements, including helices and disulfide bonds, in PANDER's function.

Main Methods:

  • Construction and expression of eleven PANDER mutants in beta-TC3 cells.
  • Assessment of beta-cell function using cell viability and insulin secretion assays.
  • Analysis of PANDER mRNA expression and protein synthesis via RT-PCR and immunoblotting.

Main Results:

  • Truncation of helix D decreased PANDER activity by 40-50%; truncating helices C and D caused a 75% loss of activity.
  • The N-terminus of PANDER (helix A and associated regions) was not essential for beta-cell death induction.
  • Cysteines C91 and C229 form a functionally important disulfide bond, and helices B and C are critical for PANDER-induced beta-cell death.

Conclusions:

  • Helices B and C, along with the second disulfide bond, are essential for PANDER's ability to induce beta-cell death.
  • The region between Cys91 and Phe152 represents the active domain of PANDER.
  • Understanding PANDER's structure-function relationship may offer insights into diabetes pathogenesis.

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