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Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans
BACKGROUND: Encapsulation devices have the potential to enable cell-based insulin replacement therapies (such as human islet or stem cell–derived β cell transplantation) without immunosuppression. However, reasonably sized encapsulation devices promote ischemia due to high β cell densities creating...
Autores principales: | , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Lippincott Williams & Wilkins
2017
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6319561/ https://www.ncbi.nlm.nih.gov/pubmed/28263224 http://dx.doi.org/10.1097/TP.0000000000001714 |
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author | Smith, Kate E. Kelly, Amy C. Min, Catherine G. Weber, Craig S. McCarthy, Fiona M. Steyn, Leah V. Badarinarayana, Vasudeo Stanton, J. Brett Kitzmann, Jennifer P. Strop, Peter Gruessner, Angelika C. Lynch, Ronald M. Limesand, Sean W. Papas, Klearchos K. |
author_facet | Smith, Kate E. Kelly, Amy C. Min, Catherine G. Weber, Craig S. McCarthy, Fiona M. Steyn, Leah V. Badarinarayana, Vasudeo Stanton, J. Brett Kitzmann, Jennifer P. Strop, Peter Gruessner, Angelika C. Lynch, Ronald M. Limesand, Sean W. Papas, Klearchos K. |
author_sort | Smith, Kate E. |
collection | PubMed |
description | BACKGROUND: Encapsulation devices have the potential to enable cell-based insulin replacement therapies (such as human islet or stem cell–derived β cell transplantation) without immunosuppression. However, reasonably sized encapsulation devices promote ischemia due to high β cell densities creating prohibitively large diffusional distances for nutrients. It is hypothesized that even acute ischemic exposure will compromise the therapeutic potential of cell-based insulin replacement. In this study, the acute effects of high-density ischemia were investigated in human islets to develop a detailed profile of early ischemia induced changes and targets for intervention. METHODS: Human islets were exposed in a pairwise model simulating high-density encapsulation to normoxic or ischemic culture for 12 hours, after which viability and function were measured. RNA sequencing was conducted to assess transcriptome-wide changes in gene expression. RESULTS: Islet viability after acute ischemic exposure was reduced compared to normoxic culture conditions (P < 0.01). Insulin secretion was also diminished, with ischemic β cells losing their insulin secretory response to stimulatory glucose levels (P < 0.01). RNA sequencing revealed 657 differentially expressed genes following ischemia, with many that are associated with increased inflammatory and hypoxia-response signaling and decreased nutrient transport and metabolism. CONCLUSIONS: In order for cell-based insulin replacement to be applied as a treatment for type 1 diabetes, oxygen and nutrient delivery to β cells will need to be maintained. We demonstrate that even brief ischemic exposure such as would be experienced in encapsulation devices damages islet viability and β cell function and leads to increased inflammatory signaling. |
format | Online Article Text |
id | pubmed-6319561 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2017 |
publisher | Lippincott Williams & Wilkins |
record_format | MEDLINE/PubMed |
spelling | pubmed-63195612019-01-14 Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans Smith, Kate E. Kelly, Amy C. Min, Catherine G. Weber, Craig S. McCarthy, Fiona M. Steyn, Leah V. Badarinarayana, Vasudeo Stanton, J. Brett Kitzmann, Jennifer P. Strop, Peter Gruessner, Angelika C. Lynch, Ronald M. Limesand, Sean W. Papas, Klearchos K. Transplantation Original Basic Science—General BACKGROUND: Encapsulation devices have the potential to enable cell-based insulin replacement therapies (such as human islet or stem cell–derived β cell transplantation) without immunosuppression. However, reasonably sized encapsulation devices promote ischemia due to high β cell densities creating prohibitively large diffusional distances for nutrients. It is hypothesized that even acute ischemic exposure will compromise the therapeutic potential of cell-based insulin replacement. In this study, the acute effects of high-density ischemia were investigated in human islets to develop a detailed profile of early ischemia induced changes and targets for intervention. METHODS: Human islets were exposed in a pairwise model simulating high-density encapsulation to normoxic or ischemic culture for 12 hours, after which viability and function were measured. RNA sequencing was conducted to assess transcriptome-wide changes in gene expression. RESULTS: Islet viability after acute ischemic exposure was reduced compared to normoxic culture conditions (P < 0.01). Insulin secretion was also diminished, with ischemic β cells losing their insulin secretory response to stimulatory glucose levels (P < 0.01). RNA sequencing revealed 657 differentially expressed genes following ischemia, with many that are associated with increased inflammatory and hypoxia-response signaling and decreased nutrient transport and metabolism. CONCLUSIONS: In order for cell-based insulin replacement to be applied as a treatment for type 1 diabetes, oxygen and nutrient delivery to β cells will need to be maintained. We demonstrate that even brief ischemic exposure such as would be experienced in encapsulation devices damages islet viability and β cell function and leads to increased inflammatory signaling. Lippincott Williams & Wilkins 2017-11 2018-10-23 /pmc/articles/PMC6319561/ /pubmed/28263224 http://dx.doi.org/10.1097/TP.0000000000001714 Text en Copyright © 2017 The Author(s). Published by Wolters Kluwer Health, Inc. This is an open-access article distributed under the terms of the Creative Commons Attribution-Non Commercial-No Derivatives License 4.0 (CCBY-NC-ND) (http://creativecommons.org/licenses/by-nc-nd/4.0/) , where it is permissible to download and share the work provided it is properly cited. The work cannot be changed in any way or used commercially without permission from the journal. |
spellingShingle | Original Basic Science—General Smith, Kate E. Kelly, Amy C. Min, Catherine G. Weber, Craig S. McCarthy, Fiona M. Steyn, Leah V. Badarinarayana, Vasudeo Stanton, J. Brett Kitzmann, Jennifer P. Strop, Peter Gruessner, Angelika C. Lynch, Ronald M. Limesand, Sean W. Papas, Klearchos K. Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans |
title | Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans |
title_full | Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans |
title_fullStr | Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans |
title_full_unstemmed | Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans |
title_short | Acute Ischemia Induced by High-Density Culture Increases Cytokine Expression and Diminishes the Function and Viability of Highly Purified Human Islets of Langerhans |
title_sort | acute ischemia induced by high-density culture increases cytokine expression and diminishes the function and viability of highly purified human islets of langerhans |
topic | Original Basic Science—General |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6319561/ https://www.ncbi.nlm.nih.gov/pubmed/28263224 http://dx.doi.org/10.1097/TP.0000000000001714 |
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