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Updated: Aug 16, 2026

Isolated Pancreatic Islet Treatment and Apoptosis Measurement
Published on: May 2, 2025
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.
Abstract:
PANDER (pancreatic derived factor, FAM3B) is a novel cytokine, present in insulin secretory granules, that induces apoptosis of alpha and beta cells of mouse, rat, and human islets in a dose- and time-dependent manner, and may be implicated in diabetes. PANDER has the predicted secondary structure of 4 alpha-helical bundles with an up-up-down-down topology, and two disulfide bonds. Eleven mutated PANDERs were constructed and expressed in beta-TC3 cells to identify the essential region of PANDER involved in beta-cell death. Beta-cell function was assessed by assays of cell viability and insulin secretion. Based on quantitative real-time RT-PCR all mutant PANDERs had similar mRNA expression levels in beta-TC3 cells. Immunoblotting showed that ten of eleven mutant PANDER proteins were synthesized and detected in beta-TC3 cells. A mutant PANDER with no signal peptide, however, was not expressed. Truncation of helix D alone caused a 40-50% decrease in PANDER's activity, while truncation of both helices C and D resulted in a 75% loss of activity. In contrast, truncation of the N-terminus of PANDER (helix A, the loop between helices A and B, and the first two cysteines) had no effect on PANDER-induced beta-cell death. The third and fourth cysteines of PANDER, C91 and C229, were shown to form one disulfide bond and be functionally important. Finally, the region between Cys91 and Phe152 constitutes the active part of PANDER, based on the demonstration that mutants with truncation of helix B or C caused decreased beta-cell death and did not inhibit insulin secretion, as compared to wild-type PANDER. Hence, helices B and C and the second disulfide bond of PANDER are essential for PANDER-induced beta-cell death.
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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