Enhancing the Functionality of Immunoisolated Human SC‐βeta Cell Clusters through Prior Resizing

Author:

Bochenek Matthew A.123,Walters Ben123,Zhang Jingping4,Fenton Owen S.12,Facklam Amanda15,Kroneková Zuzana6,Pelach Michal6,Engquist Elise N.4,Leite Nayara C.4,Morgart Alex123,Lacík Igor6,Langer Robert12378,Anderson Daniel G.12378ORCID

Affiliation:

1. David H Koch Institute for Integrative Cancer Research Massachusetts Institute of Technology 500 Main Street Cambridge MA 02139 USA

2. Department of Chemical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

3. Department of Anesthesiology Boston Children's Hospital 300 Longwood Ave Boston MA 02115 USA

4. Harvard University 7 Divinity Avenue Cambridge MA 02138 USA

5. Department of Biological Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

6. Department for Biomaterials Research Polymer Institute of the Slovak Academy of Sciences Dubravska cesta 9 Bratislava 845 41 Slovakia

7. Division of Health Science Technology Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

8. Institute for Medical Engineering and Science Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

Abstract

AbstractThe transplantation of immunoisolated stem cell derived beta cell clusters (SC‐β) has the potential to restore physiological glycemic control in patients with type I diabetes. This strategy is attractive as it uses a renewable β‐cell source without the need for systemic immune suppression. SC‐β cells have been shown to reverse diabetes in immune compromised mice when transplanted as ≈300 µm diameter clusters into sites where they can become revascularized. However, immunoisolated SC‐β clusters are not directly revascularized and rely on slower diffusion of nutrients through a membrane. It is hypothesized that smaller SC‐β cell clusters (≈150 µm diameter), more similar to islets, will perform better within immunoisolation devices due to enhanced mass transport. To test this, SC‐β cells are resized into small clusters, encapsulated in alginate spheres, and coated with a biocompatible A10 polycation coating that resists fibrosis. After transplantation into diabetic immune competent C57BL/6 mice, the “resized” SC‐β cells plus the A10 biocompatible polycation coating induced long‐term euglycemia in the mice (6 months). After retrieval, the resized A10 SC‐β cells exhibited the least amount of fibrosis and enhanced markers of β‐cell maturation. The utilization of small SC‐β cell clusters within immunoprotection devices may improve clinical translation in the future.

Funder

National Institutes of Health

Agentúra na Podporu Výskumu a Vývoja

National Cancer Institute

Juvenile Diabetes Research Foundation International

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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