Engineering transferrable microvascular meshes for subcutaneous islet transplantation

Author:

Song Wei,Chiu Alan,Wang Long-Hai,Schwartz Robert E.,Li Bin,Bouklas NikolaosORCID,Bowers Daniel T.ORCID,An DuoORCID,Cheong Soon HonORCID,Flanders James A.,Pardo Yehudah,Liu Qingsheng,Wang Xi,Lee Vivian K.,Dai GuohaoORCID,Ma Minglin

Abstract

Abstract The success of engineered cell or tissue implants is dependent on vascular regeneration to meet adequate metabolic requirements. However, development of a broadly applicable strategy for stable and functional vascularization has remained challenging. We report here highly organized and resilient microvascular meshes fabricated through a controllable anchored self-assembly method. The microvascular meshes are scalable to centimeters, almost free of defects and transferrable to diverse substrates, ready for transplantation. They promote formation of functional blood vessels, with a density as high as ~220 vessels mm-2, in the poorly vascularized subcutaneous space of SCID-Beige mice. We further demonstrate the feasibility of fabricating microvascular meshes from human induced pluripotent stem cell-derived endothelial cells, opening a way to engineer patient-specific microvasculature. As a proof-of-concept for type 1 diabetes treatment, we combine microvascular meshes and subcutaneously transplanted rat islets and achieve correction of chemically induced diabetes in SCID-Beige mice for 3 months.

Funder

American Diabetes Association

Juvenile Diabetes Research Foundation

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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