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SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function

OBJECTIVE: Inhibition of the Na(+)-glucose cotransporter type 2 (SGLT2) is currently being pursued as an insulin-independent treatment for diabetes; however, the behavioral and metabolic consequences of SGLT2 deletion are unknown. Here, we used a SGLT2 knockout mouse to investigate the effect of inc...

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Autores principales: Jurczak, Michael J., Lee, Hui-Young, Birkenfeld, Andreas L., Jornayvaz, Francois R., Frederick, David W., Pongratz, Rebecca L., Zhao, Xiaoxian, Moeckel, Gilbert W., Samuel, Varman T., Whaley, Jean M., Shulman, Gerald I., Kibbey, Richard G.
Formato: Texto
Lenguaje:English
Publicado: American Diabetes Association 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3046850/
https://www.ncbi.nlm.nih.gov/pubmed/21357472
http://dx.doi.org/10.2337/db10-1328
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author Jurczak, Michael J.
Lee, Hui-Young
Birkenfeld, Andreas L.
Jornayvaz, Francois R.
Frederick, David W.
Pongratz, Rebecca L.
Zhao, Xiaoxian
Moeckel, Gilbert W.
Samuel, Varman T.
Whaley, Jean M.
Shulman, Gerald I.
Kibbey, Richard G.
author_facet Jurczak, Michael J.
Lee, Hui-Young
Birkenfeld, Andreas L.
Jornayvaz, Francois R.
Frederick, David W.
Pongratz, Rebecca L.
Zhao, Xiaoxian
Moeckel, Gilbert W.
Samuel, Varman T.
Whaley, Jean M.
Shulman, Gerald I.
Kibbey, Richard G.
author_sort Jurczak, Michael J.
collection PubMed
description OBJECTIVE: Inhibition of the Na(+)-glucose cotransporter type 2 (SGLT2) is currently being pursued as an insulin-independent treatment for diabetes; however, the behavioral and metabolic consequences of SGLT2 deletion are unknown. Here, we used a SGLT2 knockout mouse to investigate the effect of increased renal glucose excretion on glucose homeostasis, insulin sensitivity, and pancreatic β-cell function. RESEARCH DESIGN AND METHODS: SGLT2 knockout mice were fed regular chow or a high-fat diet (HFD) for 4 weeks, or backcrossed onto the db/db background. The analysis used metabolic cages, glucose tolerance tests, euglycemic and hyperglycemic clamps, as well as isolated islet and perifusion studies. RESULTS: SGLT2 deletion resulted in a threefold increase in urine output and a 500-fold increase in glucosuria, as well as compensatory increases in feeding, drinking, and activity. SGLT2 knockout mice were protected from HFD-induced hyperglycemia and glucose intolerance and had reduced plasma insulin concentrations compared with controls. On the db/db background, SGLT2 deletion prevented fasting hyperglycemia, and plasma insulin levels were also dramatically improved. Strikingly, prevention of hyperglycemia by SGLT2 knockout in db/db mice preserved pancreatic β-cell function in vivo, which was associated with a 60% increase in β-cell mass and reduced incidence of β-cell death. CONCLUSIONS: Prevention of renal glucose reabsorption by SGLT2 deletion reduced HFD- and obesity-associated hyperglycemia, improved glucose intolerance, and increased glucose-stimulated insulin secretion in vivo. Taken together, these data support SGLT2 inhibition as a viable insulin-independent treatment of type 2 diabetes.
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spelling pubmed-30468502012-03-01 SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function Jurczak, Michael J. Lee, Hui-Young Birkenfeld, Andreas L. Jornayvaz, Francois R. Frederick, David W. Pongratz, Rebecca L. Zhao, Xiaoxian Moeckel, Gilbert W. Samuel, Varman T. Whaley, Jean M. Shulman, Gerald I. Kibbey, Richard G. Diabetes Pathophysiology OBJECTIVE: Inhibition of the Na(+)-glucose cotransporter type 2 (SGLT2) is currently being pursued as an insulin-independent treatment for diabetes; however, the behavioral and metabolic consequences of SGLT2 deletion are unknown. Here, we used a SGLT2 knockout mouse to investigate the effect of increased renal glucose excretion on glucose homeostasis, insulin sensitivity, and pancreatic β-cell function. RESEARCH DESIGN AND METHODS: SGLT2 knockout mice were fed regular chow or a high-fat diet (HFD) for 4 weeks, or backcrossed onto the db/db background. The analysis used metabolic cages, glucose tolerance tests, euglycemic and hyperglycemic clamps, as well as isolated islet and perifusion studies. RESULTS: SGLT2 deletion resulted in a threefold increase in urine output and a 500-fold increase in glucosuria, as well as compensatory increases in feeding, drinking, and activity. SGLT2 knockout mice were protected from HFD-induced hyperglycemia and glucose intolerance and had reduced plasma insulin concentrations compared with controls. On the db/db background, SGLT2 deletion prevented fasting hyperglycemia, and plasma insulin levels were also dramatically improved. Strikingly, prevention of hyperglycemia by SGLT2 knockout in db/db mice preserved pancreatic β-cell function in vivo, which was associated with a 60% increase in β-cell mass and reduced incidence of β-cell death. CONCLUSIONS: Prevention of renal glucose reabsorption by SGLT2 deletion reduced HFD- and obesity-associated hyperglycemia, improved glucose intolerance, and increased glucose-stimulated insulin secretion in vivo. Taken together, these data support SGLT2 inhibition as a viable insulin-independent treatment of type 2 diabetes. American Diabetes Association 2011-03 2011-02-21 /pmc/articles/PMC3046850/ /pubmed/21357472 http://dx.doi.org/10.2337/db10-1328 Text en © 2011 by the American Diabetes Association. Readers 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. See http://creativecommons.org/licenses/by-nc-nd/3.0/ for details.
spellingShingle Pathophysiology
Jurczak, Michael J.
Lee, Hui-Young
Birkenfeld, Andreas L.
Jornayvaz, Francois R.
Frederick, David W.
Pongratz, Rebecca L.
Zhao, Xiaoxian
Moeckel, Gilbert W.
Samuel, Varman T.
Whaley, Jean M.
Shulman, Gerald I.
Kibbey, Richard G.
SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function
title SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function
title_full SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function
title_fullStr SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function
title_full_unstemmed SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function
title_short SGLT2 Deletion Improves Glucose Homeostasis and Preserves Pancreatic β-Cell Function
title_sort sglt2 deletion improves glucose homeostasis and preserves pancreatic β-cell function
topic Pathophysiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3046850/
https://www.ncbi.nlm.nih.gov/pubmed/21357472
http://dx.doi.org/10.2337/db10-1328
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