Literature DB >> 23465491

Maintaining functional islets through encapsulation in an injectable saccharide-peptide hydrogel.

Sophia W Liao1, Jeffrey Rawson1, Keiko Omori1, Kohei Ishiyama1, Davoud Mozhdehi2, Alina R Oancea1, Taihei Ito1, Zhibin Guan3, Yoko Mullen4.   

Abstract

Islet transplantation offers a promising treatment for type 1 diabetes (T1D). However, a major hurdle in this treatment is the rapid loss of functional islets during culture and after transplantation. The liver site, currently utilized for transplantation, is suboptimal for achieving long-term insulin independence due to a rapid islet loss followed by a chronic decline in islet function after transplantation. Herein, we report a synthetic saccharide-peptide (SP) hydrogel that allows suspending islets in liquid and injecting for in situ polymerization without forming islet clumps, indicating its potential in extrahepatic islet transplantation. In vitro, rat islets in SP hydrogel maintained a 3D structure and high glucose-stimulated insulin release similar to that observed in freshly isolated islets for 4 weeks, while control islets cultured in suspension lost their 3D structure and insulin release responses by 2 weeks. Biocompatibility of SP hydrogel was shown by the absence of cytokine mRNA activation in peripheral blood mononuclear cells (PBMCs) exposed to hydrogel in vitro and by the absence of cellular infiltrates in and around the hydrogel implanted subcutaneously. Syngeneic Lewis rat islets transplanted in SP hydrogel in various extrahepatic sites stained strongly for insulin, and more effectively reversed diabetes than unencapsulated islets when transplanted in an omental pocket. In conclusion, the SP hydrogel is non-cytotoxic and supports normal islet structure and function both in vitro and in vivo. Specifically, the ability of the hydrogel to separate individual islets after transplantation is important for maintaining their function in vivo. This important property, combined with the versatility and biocompatibility, makes our SP hydrogel a promising synthetic scaffold that can facilitate transplantation of organized heterogeneous cells to preserve their micro-structure and function.
Copyright © 2013 Elsevier Ltd. All rights reserved.

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Year:  2013        PMID: 23465491      PMCID: PMC3604994          DOI: 10.1016/j.biomaterials.2013.02.007

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  34 in total

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Review 3.  Matrix components and scaffolds for sustained islet function.

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8.  Biodegradable and biocompatible synthetic saccharide-Peptide hydrogels for three-dimensional stem cell culture.

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  11 in total

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3.  Local co-delivery of pancreatic islets and liposomal clodronate using injectable hydrogel to prevent acute immune reactions in a type 1 diabetes.

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Review 6.  Tissue engineering approaches to cell-based type 1 diabetes therapy.

Authors:  Luke D Amer; Melissa J Mahoney; Stephanie J Bryant
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7.  A Collagen Based Cryogel Bioscaffold that Generates Oxygen for Islet Transplantation.

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8.  Injectable Polyethylene Glycol Hydrogel for Islet Encapsulation: an in vitro and in vivo Characterization.

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Review 9.  Modular and orthogonal synthesis of hybrid polymers and networks.

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10.  Enhanced survival and insulin secretion of insulinoma cell aggregates by incorporating gelatin hydrogel microspheres.

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