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Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation

There is a need to develop three-dimensional structures that mimic the natural islet tissue microenvironment. Endocrine micro-pancreata (EMPs) made up of acellular organ-derived micro-scaffolds seeded with human islets have been shown to express high levels of key beta-cell specific genes and secret...

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Autores principales: Abualhassan, Nasser, Sapozhnikov, Lena, Pawlick, Rena L., Kahana, Meygal, Pepper, Andrew R., Bruni, Antonio, Gala-Lopez, Boris, Kin, Tatsuya, Mitrani, Eduardo, Shapiro, A. M. James
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4881949/
https://www.ncbi.nlm.nih.gov/pubmed/27227978
http://dx.doi.org/10.1371/journal.pone.0156053
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author Abualhassan, Nasser
Sapozhnikov, Lena
Pawlick, Rena L.
Kahana, Meygal
Pepper, Andrew R.
Bruni, Antonio
Gala-Lopez, Boris
Kin, Tatsuya
Mitrani, Eduardo
Shapiro, A. M. James
author_facet Abualhassan, Nasser
Sapozhnikov, Lena
Pawlick, Rena L.
Kahana, Meygal
Pepper, Andrew R.
Bruni, Antonio
Gala-Lopez, Boris
Kin, Tatsuya
Mitrani, Eduardo
Shapiro, A. M. James
author_sort Abualhassan, Nasser
collection PubMed
description There is a need to develop three-dimensional structures that mimic the natural islet tissue microenvironment. Endocrine micro-pancreata (EMPs) made up of acellular organ-derived micro-scaffolds seeded with human islets have been shown to express high levels of key beta-cell specific genes and secrete quantities of insulin per cell similar to freshly isolated human islets in a glucose-regulated manner for more than three months in vitro. The aim of this study was to investigate the capacity of EMPs to restore euglycemia in vivo after transplantation of mouse or human islets in chemically diabetic mice. We proposed that the organ-derived EMPs would restore the extracellular components of the islet microenvironment, generating favorable conditions for islet function and survival. EMPs seeded with 500 mouse islets were implanted intraperitoneally into streptozotocin-induced diabetic mice and reverted diabetes in 67% of mice compared to 13% of controls (p = 0.018, n = 9 per group). Histological analysis of the explanted grafts 60 days post-transplantation stained positive for insulin and exhibited increased vascular density in a collagen-rich background. EMPs were also seeded with human islets and transplanted into the peritoneal cavity of immune-deficient diabetic mice at 250 islet equivalents (IEQ), 500 IEQ and 1000 IEQ. Escalating islet dose increased rates of normoglycemia (50% of the 500 IEQ group and 75% of the 1000 IEQ group, n = 3 per group). Human c-peptide levels were detected 90 days post-transplantation in a dose-response relationship. Herein, we report reversal of diabetes in mice by intraperitoneal transplantation of human islet seeded on EMPs with a human islet dose as low as 500 IEQ.
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spelling pubmed-48819492016-06-10 Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation Abualhassan, Nasser Sapozhnikov, Lena Pawlick, Rena L. Kahana, Meygal Pepper, Andrew R. Bruni, Antonio Gala-Lopez, Boris Kin, Tatsuya Mitrani, Eduardo Shapiro, A. M. James PLoS One Research Article There is a need to develop three-dimensional structures that mimic the natural islet tissue microenvironment. Endocrine micro-pancreata (EMPs) made up of acellular organ-derived micro-scaffolds seeded with human islets have been shown to express high levels of key beta-cell specific genes and secrete quantities of insulin per cell similar to freshly isolated human islets in a glucose-regulated manner for more than three months in vitro. The aim of this study was to investigate the capacity of EMPs to restore euglycemia in vivo after transplantation of mouse or human islets in chemically diabetic mice. We proposed that the organ-derived EMPs would restore the extracellular components of the islet microenvironment, generating favorable conditions for islet function and survival. EMPs seeded with 500 mouse islets were implanted intraperitoneally into streptozotocin-induced diabetic mice and reverted diabetes in 67% of mice compared to 13% of controls (p = 0.018, n = 9 per group). Histological analysis of the explanted grafts 60 days post-transplantation stained positive for insulin and exhibited increased vascular density in a collagen-rich background. EMPs were also seeded with human islets and transplanted into the peritoneal cavity of immune-deficient diabetic mice at 250 islet equivalents (IEQ), 500 IEQ and 1000 IEQ. Escalating islet dose increased rates of normoglycemia (50% of the 500 IEQ group and 75% of the 1000 IEQ group, n = 3 per group). Human c-peptide levels were detected 90 days post-transplantation in a dose-response relationship. Herein, we report reversal of diabetes in mice by intraperitoneal transplantation of human islet seeded on EMPs with a human islet dose as low as 500 IEQ. Public Library of Science 2016-05-26 /pmc/articles/PMC4881949/ /pubmed/27227978 http://dx.doi.org/10.1371/journal.pone.0156053 Text en © 2016 Abualhassan et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Abualhassan, Nasser
Sapozhnikov, Lena
Pawlick, Rena L.
Kahana, Meygal
Pepper, Andrew R.
Bruni, Antonio
Gala-Lopez, Boris
Kin, Tatsuya
Mitrani, Eduardo
Shapiro, A. M. James
Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation
title Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation
title_full Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation
title_fullStr Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation
title_full_unstemmed Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation
title_short Lung-Derived Microscaffolds Facilitate Diabetes Reversal after Mouse and Human Intraperitoneal Islet Transplantation
title_sort lung-derived microscaffolds facilitate diabetes reversal after mouse and human intraperitoneal islet transplantation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4881949/
https://www.ncbi.nlm.nih.gov/pubmed/27227978
http://dx.doi.org/10.1371/journal.pone.0156053
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