4.2 Article

Collagen IV-Modified Scaffolds Improve Islet Survival and Function and Reduce Time to Euglycemia

期刊

TISSUE ENGINEERING PART A
卷 19, 期 21-22, 页码 2361-2372

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MARY ANN LIEBERT, INC
DOI: 10.1089/ten.tea.2013.0033

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资金

  1. National Institutes of Health [F31 EB007118, R01 EB003806, R01 EB009910]
  2. Ryan Fellowship
  3. Northwestern University International Institute for Nanotechnology
  4. Chicago Biomedical Consortium
  5. Searle Funds at the Chicago Community Trust

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Islet transplantation on extracellular matrix (ECM) protein-modified biodegradable microporous poly(lactide-co-glycolide) scaffolds is a potential curative treatment for type 1 diabetes mellitus (T1DM). Collagen IV-modified scaffolds, relative to control scaffolds, significantly decreased the time required to restore euglycemia from 17 to 3 days. We investigated the processes by which collagen IV-modified scaffolds enhanced islet function and mediated early restoration of euglycemia post-transplantation. We characterized the effect of collagen IV-modified scaffolds on islet survival, metabolism, and insulin secretion in vitro and early- and intermediate-term islet mass and vascular density post-transplantation and correlated these with early restoration of euglycemia in a syngeneic mouse model. Control scaffolds maintained native islet morphologies and architectures as well as collagen IV-modified scaffolds in vivo. The islet size and vascular density increased, while -cell proliferation decreased from day 16 to 113 post-transplantation. Collagen IV-modified scaffolds promoted islet cell viability and decreased early-stage apoptosis in islet cells in vitrophenomena that coincided with enhanced islet metabolic function and glucose-stimulated insulin secretion. These findings suggest that collagen IV-modified scaffolds promote the early restoration of euglycemia post-transplantation by enhancing islet metabolism and glucose-stimulated insulin secretion. These studies of ECM proteins, in particular collagen IV, and islet function provide key insights for the engineering of a microenvironment that would serve as a platform for enhancing islet transplantation as a viable clinical therapy for T1DM.

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