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Updated: Jun 1, 2026

Differentiation of Human Pluripotent Stem Cells Into Pancreatic Beta-Cell Precursors in a 2D Culture System
Published on: December 16, 2021
Bone marrow-derived mesenchymal stem cells co-cultured with pancreatic islets display β cell plasticity
Erdal Karaoz1, Selda Ayhan, Alparslan Okçu
1Centre for Stem Cell and Gene Therapies Research and Practice, Kocaeli University, Kocaeli 41380, Turkey. ekaraoz@hotmail.com
Abstract:
The direct co-culturing effect of rat bone-marrow-derived mesenchymal stem cells (rBM-MSCs) on the pancreatic-islets (PIs) was studied to obtain functional islet cells. MSCs were isolated from rat bone marrow and cultivated under standard conditions. Following their characterization, the rBM-MSCs were directly (with cell-islet contact) co-cultured with recovered PIs together with the single cell cultures of those cell cultures as a control. The effect of direct co-cultures of rBM-MSCs with the PIs of normal rats was investigated using immunophenotypical and functional methods. The change in the amount of insulin secretion was evaluated as an indicator for differentiation of rBM-MSCs. One approache for in vitro differentiation to achieve reprogramming for differentiation into suitable cell types by changing the microenvironment of the cells to provide signals that might activate metabolic pathways is to use co-cultures with the microenvironment of the specific cells of the desired cell type, tissue/organ extracts, extracellular matrix compounds or biologically absorbable materials. Differentiated rBM-MSCs were found to be immunopositive for the specific insulin-producing cell marker, insulin, but not in undifferentiated rBM-MSCs. The functionality tests by ELISA confirmed that insulin secretion of co-cultured MSCs with islets was higher than that of islets. These evidences indicated that PIs could be regarded as critical components of the stem cell niche, such that MSCs can be differentiated into insulin-producing cells (IPCs). Moreover, direct cell-to-cell contact might provide additional and independent support. This approach would circumvent the need for PI-stem cell co-culture and could potentially facilitate the production of functional IPCs for future clinical applications.
Insights
Direct co-culturing rat bone-marrow-derived mesenchymal stem cells (rBM-MSCs) with pancreatic islets (PIs) induced MSC differentiation into insulin-producing cells (IPCs). This method shows promise for generating functional IPCs for clinical applications.
Area of Science:
- Stem Cell Biology
- Endocrinology
- Regenerative Medicine
Background:
- Mesenchymal stem cells (MSCs) offer potential for regenerative therapies.
- Pancreatic islets (PIs) are crucial for glucose homeostasis.
- Generating functional insulin-producing cells (IPCs) remains a challenge.
Purpose of the Study:
- To investigate the direct co-culturing effect of rat bone-marrow-derived mesenchymal stem cells (rBM-MSCs) on pancreatic islets (PIs).
- To determine if rBM-MSCs can differentiate into functional IPCs within the pancreatic islet microenvironment.
- To evaluate the potential of this co-culture system for future clinical applications in diabetes treatment.
Main Methods:
- Isolation and characterization of rBM-MSCs from rat bone marrow.
- Direct co-culture of rBM-MSCs with PIs, with single cell cultures as controls.
- Immunophenotypical analysis for insulin-producing cell markers.
- Functional assessment of insulin secretion using ELISA.
Main Results:
- Differentiated rBM-MSCs expressed the insulin marker, unlike undifferentiated cells.
- Co-cultured MSCs with PIs exhibited significantly higher insulin secretion compared to PIs alone.
- Direct cell-to-cell contact appeared to support MSC differentiation into IPCs.
Conclusions:
- Pancreatic islets serve as a critical niche component, promoting MSC differentiation into IPCs.
- Direct co-culture with PIs can induce functional differentiation of rBM-MSCs into insulin-producing cells.
- This approach may offer a viable strategy for producing functional IPCs for clinical use, circumventing complex co-culture needs.
