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Renewable Human Cell Model for Type 1 Diabetes Research: EndoC-βH5/HUVEC Coculture Spheroids
James M Porter1, Michael Yitayew1, Maryam Tabrizian1,2
1Department of Biological and Biomedical Engineering, Faculty of Medicine and Health Sciences, McGill University, Montreal, QC, Canada H3A 0G4.
Abstract:
In vitro drug screening for type 1 diabetes therapies has largely been conducted on human organ donor islets for proof of efficacy. While native islets are the ultimate target of these drugs (either in situ or for transplantation), significant benefit can be difficult to ascertain due to the highly heterogeneous nature of individual donors and the overall scarcity of human islets for research. We present an in vitro coculture model based on immortalized insulin-producing beta-cell lines with human endothelial cells in 3D spheroids that aims to recapitulate the islet morphology in an effort towards developing a standardized cell model for in vitro diabetes research. Human insulin-producing immortalized EndoC-βH5 cells are cocultured with human endothelial cells in varying ratios to evaluate 3D cell culture models for type 1 diabetes research. Insulin secretion, metabolic activity, live cell fluorescence staining, and gene expression assays were used to compare the viability and functionality of spheroids composed of 100% beta-cells, 1 : 1 beta-cell/endothelial, and 1 : 3 beta-cell/endothelial. Monoculture and βH5/HUVEC cocultures formed compact spheroids within 7 days, with average diameter ~140 μm. This pilot study indicated that stimulated insulin release from 0 to 20 mM glucose increased from ~8-fold for monoculture and 1 : 1 coculture spheroids to over 20-fold for 1 : 3 EndoC-βH5/HUVEC spheroids. Metabolic activity was also ~12% higher in the 1 : 3 EndoC-βH5/HUVEC group compared to other groups. Stimulating monoculture beta-cell spheroids with 20 mM glucose +1 μg/mL glycine-modified INGAP-P increased the insulin stimulation index ~2-fold compared to glucose alone. Considering their availability and consistent phenotype, EndoC-βH5-based spheroids present a useful 3D cell model for in vitro testing and drug screening applications.
Insights
A new 3D spheroid model using immortalized beta-cells and endothelial cells offers a standardized approach for type 1 diabetes drug screening. This in vitro model improves insulin secretion and metabolic activity, addressing limitations of human islets.
Area of Science:
- Biomedical Engineering
- Endocrinology
- Cell Biology
Background:
- In vitro drug screening for type 1 diabetes (T1D) relies heavily on human organ donor islets, which are scarce and heterogeneous.
- Limitations in human islet availability and donor variability hinder the development of standardized T1D therapies.
- There is a need for reproducible and scalable in vitro models to facilitate T1D drug discovery.
Purpose of the Study:
- To develop and evaluate a standardized 3D spheroid coculture model for in vitro type 1 diabetes research.
- To recapitulate islet morphology using immortalized beta-cells and human endothelial cells.
- To assess the functionality and viability of the 3D spheroid model for drug screening applications.
Main Methods:
- Coculture of immortalized human insulin-producing EndoC-βH5 cells with human umbilical vein endothelial cells (HUVECs) in 3D spheroids.
- Evaluation of different beta-cell/endothelial cell ratios (1:0, 1:1, 1:3) in spheroid formation.
- Assessment of insulin secretion, metabolic activity, cell viability, and gene expression.
Main Results:
- Compact spheroids (~140 μm diameter) formed within 7 days for monocultures and cocultures.
- The 1:3 EndoC-βH5/HUVEC spheroid ratio demonstrated significantly enhanced glucose-stimulated insulin secretion (over 20-fold increase) and ~12% higher metabolic activity compared to other groups.
- Treatment with glycine-modified INGAP-P further increased insulin stimulation in monoculture spheroids.
Conclusions:
- EndoC-βH5-based 3D spheroids provide a standardized and reproducible in vitro model for type 1 diabetes research.
- The 1:3 beta-cell/endothelial cell ratio enhances spheroid functionality, mimicking islet-like structures.
- This model shows promise for efficient in vitro drug screening and testing of T1D therapies.

