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The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice

Controllable genetic manipulation is an indispensable tool in research, greatly advancing our understanding of cell biology and physiology. However in β-cells, transgene silencing, low inducibility, ectopic expression, and off-targets effects are persistent challenges. In this study, we investigated...

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Autores principales: Jouvet, Nathalie, Bouyakdan, Khalil, Campbell, Scott A., Baldwin, Cindy, Townsend, Shannon E., Gannon, Maureen A., Poitout, Vincent, Alquier, Thierry, Estall, Jennifer L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8660978/
https://www.ncbi.nlm.nih.gov/pubmed/34610983
http://dx.doi.org/10.2337/db21-0147
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author Jouvet, Nathalie
Bouyakdan, Khalil
Campbell, Scott A.
Baldwin, Cindy
Townsend, Shannon E.
Gannon, Maureen A.
Poitout, Vincent
Alquier, Thierry
Estall, Jennifer L.
author_facet Jouvet, Nathalie
Bouyakdan, Khalil
Campbell, Scott A.
Baldwin, Cindy
Townsend, Shannon E.
Gannon, Maureen A.
Poitout, Vincent
Alquier, Thierry
Estall, Jennifer L.
author_sort Jouvet, Nathalie
collection PubMed
description Controllable genetic manipulation is an indispensable tool in research, greatly advancing our understanding of cell biology and physiology. However in β-cells, transgene silencing, low inducibility, ectopic expression, and off-targets effects are persistent challenges. In this study, we investigated whether an inducible Tetracycline (Tet)-Off system with β-cell–specific mouse insulin promoter (MIP)-itTA–driven expression of tetracycline operon (TetO)-Cre(Jaw/J) could circumvent previous issues of specificity and efficacy. Following assessment of tissue-specific gene recombination, β-cell architecture, in vitro and in vivo glucose-stimulated insulin secretion, and whole-body glucose homeostasis, we discovered that expression of any tetracycline-controlled transactivator (e.g., improved itTA, reverse rtTA, or tTA) in β-cells significantly reduced Insulin gene expression and decreased insulin content. This translated into lower pancreatic insulin levels and reduced insulin secretion in mice carrying any tTA transgene, independent of Cre recombinase expression or doxycycline exposure. Our study echoes ongoing challenges faced by fundamental researchers working with β-cells and highlights the need for consistent and comprehensive controls when using the tetracycline-controlled transactivator systems (Tet-On or Tet-Off) for genome editing.
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spelling pubmed-86609782021-12-27 The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice Jouvet, Nathalie Bouyakdan, Khalil Campbell, Scott A. Baldwin, Cindy Townsend, Shannon E. Gannon, Maureen A. Poitout, Vincent Alquier, Thierry Estall, Jennifer L. Diabetes Islet Studies Controllable genetic manipulation is an indispensable tool in research, greatly advancing our understanding of cell biology and physiology. However in β-cells, transgene silencing, low inducibility, ectopic expression, and off-targets effects are persistent challenges. In this study, we investigated whether an inducible Tetracycline (Tet)-Off system with β-cell–specific mouse insulin promoter (MIP)-itTA–driven expression of tetracycline operon (TetO)-Cre(Jaw/J) could circumvent previous issues of specificity and efficacy. Following assessment of tissue-specific gene recombination, β-cell architecture, in vitro and in vivo glucose-stimulated insulin secretion, and whole-body glucose homeostasis, we discovered that expression of any tetracycline-controlled transactivator (e.g., improved itTA, reverse rtTA, or tTA) in β-cells significantly reduced Insulin gene expression and decreased insulin content. This translated into lower pancreatic insulin levels and reduced insulin secretion in mice carrying any tTA transgene, independent of Cre recombinase expression or doxycycline exposure. Our study echoes ongoing challenges faced by fundamental researchers working with β-cells and highlights the need for consistent and comprehensive controls when using the tetracycline-controlled transactivator systems (Tet-On or Tet-Off) for genome editing. American Diabetes Association 2021-12 2021-10-05 /pmc/articles/PMC8660978/ /pubmed/34610983 http://dx.doi.org/10.2337/db21-0147 Text en © 2021 by the American Diabetes Association https://www.diabetesjournals.org/content/licenseReaders may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. More information is available at https://www.diabetesjournals.org/content/license.
spellingShingle Islet Studies
Jouvet, Nathalie
Bouyakdan, Khalil
Campbell, Scott A.
Baldwin, Cindy
Townsend, Shannon E.
Gannon, Maureen A.
Poitout, Vincent
Alquier, Thierry
Estall, Jennifer L.
The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice
title The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice
title_full The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice
title_fullStr The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice
title_full_unstemmed The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice
title_short The Tetracycline-Controlled Transactivator (Tet-On/Off) System in β-Cells Reduces Insulin Expression and Secretion in Mice
title_sort tetracycline-controlled transactivator (tet-on/off) system in β-cells reduces insulin expression and secretion in mice
topic Islet Studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8660978/
https://www.ncbi.nlm.nih.gov/pubmed/34610983
http://dx.doi.org/10.2337/db21-0147
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