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Updated: Jun 27, 2026

Differentiation of Human Pluripotent Stem Cells into Insulin-Producing Islet Clusters
Published on: June 23, 2023
Islet-derived progenitors as a source of in vitro islet regeneration
Stephen Hanley1, Lawrence Rosenberg
1Department of Surgery, and Centre for Pancreatic Diseases, McGill University Health Centre, Montreal, Quebec, Canada.
Abstract:
Current therapies do not prevent the complications of diabetes. Furthermore, these therapies do not address the underlying pathology; the lack of functional beta-cell mass that occurs in both types 1 and 2 diabetes. While pancreas and islet transplantation do serve to increase beta-cell mass, a lack of donor organs limits the therapeutic potential of these treatments. As such, expansion of beta-cell mass from endogenous sources, either in vivo or in vitro, represents an area of increasing interest. One potential source of islet progenitors is the islet proper, via the dedifferentiation, proliferation, and redifferentiation of facultative progenitors residing within the islet. We have developed a tissue culture platform whereby isolated adult human pancreatic islets form proliferative duct-like structures expressing ductal and progenitor markers. Short-term treatment with a peptide fragment of islet neogenesis-associated protein (INGAP) induces these structures to reform islet-like structures that resemble freshly isolated islets with respect to the frequency and distribution of the four endocrine cell types, islet gene expression and hormone production, insulin content, and glucose-responsive insulin secretion. As such, the plasticity of adult human islets has significant implications for islet regeneration.
Insights
Scientists discovered that adult human islets can regenerate. A peptide treatment prompted islet cells to proliferate and reform into functional islet-like structures, offering hope for diabetes treatment.
Area of Science:
- Endocrinology
- Cell Biology
- Regenerative Medicine
Background:
- Current diabetes therapies fail to prevent complications or address the root cause: insufficient functional beta-cell mass.
- Pancreas and islet transplantation are limited by donor organ scarcity.
- Regenerating beta-cell mass from endogenous sources is a key research area.
Purpose of the Study:
- To investigate the potential for beta-cell regeneration from adult human islets.
- To explore the use of islet neogenesis-associated protein (INGAP) in promoting islet regeneration.
Main Methods:
- Developed a tissue culture platform for isolated adult human pancreatic islets.
- Induced formation of proliferative duct-like structures.
- Treated these structures with a peptide fragment of INGAP.
Main Results:
- INGAP treatment induced duct-like structures to reform into islet-like structures.
- These regenerated islets closely resembled native islets in cell type distribution, gene expression, and hormone production.
- Regenerated islets demonstrated glucose-responsive insulin secretion and insulin content.
Conclusions:
- Adult human islets possess significant plasticity, enabling regeneration.
- INGAP peptide shows promise in stimulating endogenous islet regeneration.
- This approach has major implications for developing new diabetes therapies.
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