Literature DB >> 21951347

Islets transplanted in immunoisolation devices: a review of the progress and the challenges that remain.

Esther S O'Sullivan1, Arturo Vegas, Daniel G Anderson, Gordon C Weir.   

Abstract

The concept of using an immunoisolation device to facilitate the transplantation of islets without the need for immunosuppression has been around for more than 50 yr. Significant progress has been made in developing suitable materials that satisfy the need for biocompatibility, durability, and permselectivity. However, the search is ongoing for a device that allows sufficient oxygen transfer while maintaining a barrier to immune cells and preventing rejection of the transplanted tissue. Separating the islets from the rich blood supply in the native pancreas takes its toll. The immunoisolated islets commonly suffer from hypoxia and necrosis, which in turn triggers a host immune response. Efforts have been made to improve the supply of nutrients by using proangiogenic factors to augment the development of a vascular supply in the transplant site, by using small islet cell aggregates to reduce the barrier to diffusion of oxygen, or by creating scaffolds that are in close proximity to a vascular network such as the omental blood supply. Even if these efforts are successful, the shortage of donor islet tissue available for transplantation remains a major problem. To this end, a search for a renewable source of insulin-producing cells is ongoing; whether these will come from adult or embryonic stem cells or xenogeneic sources remains to be seen. Herein we will review the above issues and chart the progress made with various immunoisolation devices in small and large animal models and the small number of clinical trials carried out to date.
Copyright © 2011 by The Endocrine Society

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Year:  2011        PMID: 21951347      PMCID: PMC3591674          DOI: 10.1210/er.2010-0026

Source DB:  PubMed          Journal:  Endocr Rev        ISSN: 0163-769X            Impact factor:   19.871


  148 in total

1.  Development of cellulose sulfate-based polyelectrolyte complex microcapsules for medical applications.

Authors:  H Dautzenberg; U Schuldt; G Grasnick; P Karle; P Müller; M Löhr; M Pelegrin; M Piechaczyk; K V Rombs; W H Günzburg; B Salmons; R M Saller
Journal:  Ann N Y Acad Sci       Date:  1999-06-18       Impact factor: 5.691

2.  Prolonged insulin independence after islet allotransplants in recipients with type 1 diabetes.

Authors:  M D Bellin; R Kandaswamy; J Parkey; H-J Zhang; B Liu; S H Ihm; J D Ansite; J Witson; P Bansal-Pakala; A N Balamurugan; K K Papas; K Papas; D E R Sutherland; A Moran; B J Hering
Journal:  Am J Transplant       Date:  2008-09-19       Impact factor: 8.086

3.  Microencapsulated cell-mediated treatment of inoperable pancreatic carcinoma.

Authors:  M Löhr; A Hoffmeyer; J Kröger; M Freund; J Hain; A Holle; P Karle; W T Knöfel; S Liebe; P Müller; H Nizze; M Renner; R M Saller; T Wagner; K Hauenstein; W H Günzburg; B Salmons
Journal:  Lancet       Date:  2001-05-19       Impact factor: 79.321

4.  Islet cell hormonal responses to hypoglycemia after human islet transplantation for type 1 diabetes.

Authors:  Michael R Rickels; Mark H Schutta; Rebecca Mueller; James F Markmann; Clyde F Barker; Ali Naji; Karen L Teff
Journal:  Diabetes       Date:  2005-11       Impact factor: 9.461

5.  Morphological and functional characterization of a pancreatic beta-cell line microencapsulated in sodium cellulose sulfate/poly(diallyldimethylammonium chloride).

Authors:  V Stadlbauer; P B Stiegler; S Schaffellner; O Hauser; G Halwachs; F Iberer; K H Tscheliessnigg; C Lackner
Journal:  Xenotransplantation       Date:  2006-07       Impact factor: 3.907

6.  Six-month survival of microencapsulated pig islets and alginate biocompatibility in primates: proof of concept.

Authors:  Denis Dufrane; Rose-Marie Goebbels; Alain Saliez; Yves Guiot; Pierre Gianello
Journal:  Transplantation       Date:  2006-05-15       Impact factor: 4.939

Review 7.  Transplantation of pancreatic islets contained in minimal volume microcapsules in diabetic high mammalians.

Authors:  R Calafiore; G Basta; G Luca; C Boselli; A Bufalari; A Bufalari; M P Cassarani; G M Giustozzi; P Brunetti
Journal:  Ann N Y Acad Sci       Date:  1999-06-18       Impact factor: 5.691

8.  Recovery from diabetes in mice by beta cell regeneration.

Authors:  Tomer Nir; Douglas A Melton; Yuval Dor
Journal:  J Clin Invest       Date:  2007-09       Impact factor: 14.808

Review 9.  The clinical impact of islet transplantation.

Authors:  P Fiorina; A M J Shapiro; C Ricordi; A Secchi
Journal:  Am J Transplant       Date:  2008-10       Impact factor: 8.086

10.  In vivo reprogramming of adult pancreatic exocrine cells to beta-cells.

Authors:  Qiao Zhou; Juliana Brown; Andrew Kanarek; Jayaraj Rajagopal; Douglas A Melton
Journal:  Nature       Date:  2008-08-27       Impact factor: 49.962

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  64 in total

1.  Long-term function of islets encapsulated in a redesigned alginate microcapsule construct in omentum pouches of immune-competent diabetic rats.

Authors:  Rajesh Pareta; John P McQuilling; Sivanandane Sittadjody; Randy Jenkins; Stephen Bowden; Giuseppe Orlando; Alan C Farney; Eric M Brey; Emmanuel C Opara
Journal:  Pancreas       Date:  2014-05       Impact factor: 3.327

Review 2.  Macroscale delivery systems for molecular and cellular payloads.

Authors:  Cathal J Kearney; David J Mooney
Journal:  Nat Mater       Date:  2013-11       Impact factor: 43.841

3.  PLG scaffold delivered antigen-specific regulatory T cells induce systemic tolerance in autoimmune diabetes.

Authors:  John G Graham; Xiaomin Zhang; Ashley Goodman; Kathryn Pothoven; Josetta Houlihan; Shusen Wang; R Michael Gower; Xunrong Luo; Lonnie D Shea
Journal:  Tissue Eng Part A       Date:  2013-04-03       Impact factor: 3.845

4.  Simultaneous spatiotemporal tracking and oxygen sensing of transient implants in vivo using hot-spot MRI and machine learning.

Authors:  Virginia Spanoudaki; Joshua C Doloff; Wei Huang; Samuel R Norcross; Shady Farah; Robert Langer; Daniel G Anderson
Journal:  Proc Natl Acad Sci U S A       Date:  2019-02-26       Impact factor: 11.205

5.  Glucose-stimulated insulin release: Parallel perifusion studies of free and hydrogel encapsulated human pancreatic islets.

Authors:  Peter Buchwald; Alejandro Tamayo-Garcia; Vita Manzoli; Alice A Tomei; Cherie L Stabler
Journal:  Biotechnol Bioeng       Date:  2017-09-19       Impact factor: 4.530

Review 6.  Mesenchymal stem cells in the treatment of type 1 diabetes mellitus.

Authors:  Jana Katuchova; Denisa Harvanova; Timea Spakova; Rastislav Kalanin; Daniel Farkas; Peter Durny; Jan Rosocha; Jozef Radonak; Daniel Petrovic; Dario Siniscalco; Meirigeng Qi; Miroslav Novak; Peter Kruzliak
Journal:  Endocr Pathol       Date:  2015-05       Impact factor: 3.943

Review 7.  Cell Therapy for Type 1 Diabetes: Current and Future Strategies.

Authors:  Yasaman Aghazadeh; Maria Cristina Nostro
Journal:  Curr Diab Rep       Date:  2017-06       Impact factor: 4.810

8.  Engineering Synthetically Modified Insulin for Glucose-Responsive Diabetes Therapy.

Authors:  Matthew J Webber; Daniel G Anderson; Robert Langer
Journal:  Expert Rev Endocrinol Metab       Date:  2015-07-18

9.  Nanomedicines for Endothelial Disorders.

Authors:  Bomy Lee Chung; Michael J Toth; Nazila Kamaly; Yoshitaka J Sei; Jacob Becraft; Willem J M Mulder; Zahi A Fayad; Omid C Farokhzad; YongTae Kim; Robert Langer
Journal:  Nano Today       Date:  2015-12-01       Impact factor: 20.722

Review 10.  Progress and challenges in macroencapsulation approaches for type 1 diabetes (T1D) treatment: Cells, biomaterials, and devices.

Authors:  Shang Song; Shuvo Roy
Journal:  Biotechnol Bioeng       Date:  2016-01-04       Impact factor: 4.530

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