Literature DB >> 22099771

New alginate microcapsule system for angiogenic protein delivery and immunoisolation of islets for transplantation in the rat omentum pouch.

J P McQuilling1, J Arenas-Herrera, C Childers, R A Pareta, O Khanna, B Jiang, E M Brey, A C Farney, E C Opara.   

Abstract

Severe hypoxia caused by a lack of vascular supply and an inability to retrieve encapsulated islets transplanted in the peritoneal cavity for biopsy and subsequent evaluation are obstacles to clinical application of encapsulation strategies for islet transplantation. We recently proposed an omentum pouch model as an alternative site of encapsulated islet transplantation and have also described a multi-layer microcapsule system suitable for coencapsulation of islets with angiogenic protein in which the latter could be encapsulated in an external layer to induce vascularization of the encapsulated islet graft. The purpose of the present study was to determine the angiogenic efficacy of fibroblast growth factor (FGF-1) released from the external layer of the new capsule system in the omentum pouch graft. We prepared 2 groups of alginate microspheres, each measuring ∼600 μm in diameter with a semipermeable poly-L-ornithine (PLO) membrane separating 2 alginate layers. While one group of microcapsules contained no protein (control), FGF-1 (1.794 μg/100 microcapsules) was encapsulated in the external layer of the other (test) group. From each of the 2 groups, 100 microcapsules were transplanted separately in an omentum pouch created in each normal Lewis rat and were retrieved after 14 days for analysis of vessel density using the technique of serial sample sections stained for CD31 with quantitative three-dimensional imaging. We found that FGF-1 released from the external layer of the test microcapsules induced a mean ± SD vessel density (mm(2)) of 198.8 ± 59.2 compared with a density of 128.9 ± 10.9 in pouches measured in control capsule implants (P = .03; n = 5 animals/group). We concluded that the external layer of our new alginate microcapsule system is an effective drug delivery device for enhancement of graft neovascularization in a retrievable omentum pouch.
Copyright © 2011 Elsevier Inc. All rights reserved.

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Year:  2011        PMID: 22099771      PMCID: PMC3241996          DOI: 10.1016/j.transproceed.2011.10.030

Source DB:  PubMed          Journal:  Transplant Proc        ISSN: 0041-1345            Impact factor:   1.066


  16 in total

1.  Microencapsulated pancreatic islet allografts into nonimmunosuppressed patients with type 1 diabetes: first two cases.

Authors:  Riccardo Calafiore; Giuseppe Basta; Giovanni Luca; Angelo Lemmi; M Pia Montanucci; Giuseppe Calabrese; Leda Racanicchi; Francesca Mancuso; Paolo Brunetti
Journal:  Diabetes Care       Date:  2006-01       Impact factor: 19.112

2.  Multilayered microcapsules for the sustained-release of angiogenic proteins from encapsulated cells.

Authors:  Omaditya Khanna; Monica L Moya; Howard P Greisler; Emmanuel C Opara; Eric M Brey
Journal:  Am J Surg       Date:  2010-11       Impact factor: 2.565

3.  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

4.  Live encapsulated porcine islets from a type 1 diabetic patient 9.5 yr after xenotransplantation.

Authors:  Robert B Elliott; Livia Escobar; Paul L J Tan; Maria Muzina; Sahar Zwain; Christina Buchanan
Journal:  Xenotransplantation       Date:  2007-03       Impact factor: 3.907

5.  Islet transplantation in seven patients with type 1 diabetes mellitus using a glucocorticoid-free immunosuppressive regimen.

Authors:  A M Shapiro; J R Lakey; E A Ryan; G S Korbutt; E Toth; G L Warnock; N M Kneteman; R V Rajotte
Journal:  N Engl J Med       Date:  2000-07-27       Impact factor: 91.245

6.  Normalization of diabetes in spontaneously diabetic cynomologus monkeys by xenografts of microencapsulated porcine islets without immunosuppression.

Authors:  Y Sun; X Ma; D Zhou; I Vacek; A M Sun
Journal:  J Clin Invest       Date:  1996-09-15       Impact factor: 14.808

7.  Stimulation by glucose of the blood flow to the pancreatic islets of the rat.

Authors:  L Jansson; C Hellerström
Journal:  Diabetologia       Date:  1983-07       Impact factor: 10.122

8.  Successful reversal of spontaneous diabetes in dogs by intraperitoneal microencapsulated islets.

Authors:  P Soon-Shiong; E Feldman; R Nelson; J Komtebedde; O Smidsrod; G Skjak-Braek; T Espevik; R Heintz; M Lee
Journal:  Transplantation       Date:  1992-11       Impact factor: 4.939

9.  Insulin independence in a type 1 diabetic patient after encapsulated islet transplantation.

Authors:  P Soon-Shiong; R E Heintz; N Merideth; Q X Yao; Z Yao; T Zheng; M Murphy; M K Moloney; M Schmehl; M Harris
Journal:  Lancet       Date:  1994-04-16       Impact factor: 79.321

10.  Microencapsulated islets as bioartificial endocrine pancreas.

Authors:  F Lim; A M Sun
Journal:  Science       Date:  1980-11-21       Impact factor: 47.728

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  20 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.  Bioengineered sites for islet cell transplantation.

Authors:  Sophie Vériter; Pierre Gianello; Denis Dufrane
Journal:  Curr Diab Rep       Date:  2013-10       Impact factor: 4.810

Review 3.  Design of a bioartificial pancreas.

Authors:  Rajesh A Pareta; Alan C Farney; Emmanuel C Opara
Journal:  Pathobiology       Date:  2013-05-06       Impact factor: 4.342

4.  Controlled release of insulin-like growth factor 1 enhances urethral sphincter function and histological structure in the treatment of female stress urinary incontinence in a rat model.

Authors:  Hao Yan; Liren Zhong; Yaodong Jiang; Jian Yang; Junhong Deng; Shicheng Wei; Emmanuel Opara; Anthony Atala; Xiangming Mao; Margot S Damaser; Yuanyuan Zhang
Journal:  BJU Int       Date:  2017-10-03       Impact factor: 5.588

Review 5.  Encapsulated Islet Transplantation: Where Do We Stand?

Authors:  Vijayaganapathy Vaithilingam; Sumeet Bal; Bernard E Tuch
Journal:  Rev Diabet Stud       Date:  2017-06-12

6.  Retrieval of Microencapsulated Islet Grafts for Post-transplant Evaluation.

Authors:  John Patrick McQuilling; Sivanandane Sittadjody; Rajesh Pareta; Samuel Pendergraft; Clancy J Clark; Alan C Farney; Emmanuel C Opara
Journal:  Methods Mol Biol       Date:  2017

7.  Methods for Incorporating Oxygen-Generating Biomaterials into Cell Culture and Microcapsule Systems.

Authors:  John Patrick McQuilling; Emmanuel C Opara
Journal:  Methods Mol Biol       Date:  2017

8.  Macroporous three-dimensional PDMS scaffolds for extrahepatic islet transplantation.

Authors:  Eileen Pedraza; Ann-Christina Brady; Christopher A Fraker; R Damaris Molano; Steven Sukert; Dora M Berman; Norma S Kenyon; Antonello Pileggi; Camillo Ricordi; Cherie L Stabler
Journal:  Cell Transplant       Date:  2012-10-02       Impact factor: 4.064

Review 9.  Polysaccharide-Based Controlled Release Systems for Therapeutics Delivery and Tissue Engineering: From Bench to Bedside.

Authors:  Tianxin Miao; Junqing Wang; Yun Zeng; Gang Liu; Xiaoyuan Chen
Journal:  Adv Sci (Weinh)       Date:  2018-01-08       Impact factor: 16.806

Review 10.  Controlled protein delivery in the generation of microvascular networks.

Authors:  Jillian W Andrejecsk; William G Chang; Jordan S Pober; W Mark Saltzman
Journal:  Drug Deliv Transl Res       Date:  2015-04       Impact factor: 4.617

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