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Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5)

Reducing the expression of the Indy (I'm Not Dead Yet) gene in lower organisms extends life span by mechanisms resembling caloric restriction. Similarly, deletion of the mammalian homolog, mIndy (Slc13a5), encoding for a plasma membrane tricarboxylate transporter, protects from aging- and diet-...

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Autores principales: Pesta, Dominik H., Perry, Rachel J., Guebre-Egziabher, Fitsum, Zhang, Dongyan, Jurczak, Michael, Fischer-Rosinsky, Antje, Daniels, Martin A., Willmes, Diana M., Bhanot, Sanjay, Bornstein, Stefan R., Knauf, Felix, Samuel, Varman T., Shulman, Gerald I., Birkenfeld, Andreas L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4712334/
https://www.ncbi.nlm.nih.gov/pubmed/26647160
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author Pesta, Dominik H.
Perry, Rachel J.
Guebre-Egziabher, Fitsum
Zhang, Dongyan
Jurczak, Michael
Fischer-Rosinsky, Antje
Daniels, Martin A.
Willmes, Diana M.
Bhanot, Sanjay
Bornstein, Stefan R.
Knauf, Felix
Samuel, Varman T.
Shulman, Gerald I.
Birkenfeld, Andreas L.
author_facet Pesta, Dominik H.
Perry, Rachel J.
Guebre-Egziabher, Fitsum
Zhang, Dongyan
Jurczak, Michael
Fischer-Rosinsky, Antje
Daniels, Martin A.
Willmes, Diana M.
Bhanot, Sanjay
Bornstein, Stefan R.
Knauf, Felix
Samuel, Varman T.
Shulman, Gerald I.
Birkenfeld, Andreas L.
author_sort Pesta, Dominik H.
collection PubMed
description Reducing the expression of the Indy (I'm Not Dead Yet) gene in lower organisms extends life span by mechanisms resembling caloric restriction. Similarly, deletion of the mammalian homolog, mIndy (Slc13a5), encoding for a plasma membrane tricarboxylate transporter, protects from aging- and diet-induced adiposity and insulin resistance in mice. The organ specific contribution to this phenotype is unknown. We examined the impact of selective inducible hepatic knockdown of mIndy on whole body lipid and glucose metabolism using 2′-O-methoxyethyl chimeric anti-sense oligonucleotides (ASOs) in high-fat fed rats. 4-week treatment with 2′-O-methoxyethyl chimeric ASO reduced mIndy mRNA expression by 91% (P<0.001) compared to control ASO. Besides similar body weights between both groups, mIndy-ASO treatment lead to a 74% reduction in fasting plasma insulin concentrations as well as a 35% reduction in plasma triglycerides. Moreover, hepatic triglyceride content was significantly reduced by the knockdown of mIndy, likely mediating a trend to decreased basal rates of endogenous glucose production as well as an increased suppression of hepatic glucose production by 25% during a hyperinsulinemic-euglycemic clamp. Together, these data suggest that inducible liver-selective reduction of mIndy in rats is able to ameliorate hepatic steatosis and insulin resistance, conditions occurring with high calorie diets and during aging.
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spelling pubmed-47123342016-01-25 Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5) Pesta, Dominik H. Perry, Rachel J. Guebre-Egziabher, Fitsum Zhang, Dongyan Jurczak, Michael Fischer-Rosinsky, Antje Daniels, Martin A. Willmes, Diana M. Bhanot, Sanjay Bornstein, Stefan R. Knauf, Felix Samuel, Varman T. Shulman, Gerald I. Birkenfeld, Andreas L. Aging (Albany NY) Research Paper Reducing the expression of the Indy (I'm Not Dead Yet) gene in lower organisms extends life span by mechanisms resembling caloric restriction. Similarly, deletion of the mammalian homolog, mIndy (Slc13a5), encoding for a plasma membrane tricarboxylate transporter, protects from aging- and diet-induced adiposity and insulin resistance in mice. The organ specific contribution to this phenotype is unknown. We examined the impact of selective inducible hepatic knockdown of mIndy on whole body lipid and glucose metabolism using 2′-O-methoxyethyl chimeric anti-sense oligonucleotides (ASOs) in high-fat fed rats. 4-week treatment with 2′-O-methoxyethyl chimeric ASO reduced mIndy mRNA expression by 91% (P<0.001) compared to control ASO. Besides similar body weights between both groups, mIndy-ASO treatment lead to a 74% reduction in fasting plasma insulin concentrations as well as a 35% reduction in plasma triglycerides. Moreover, hepatic triglyceride content was significantly reduced by the knockdown of mIndy, likely mediating a trend to decreased basal rates of endogenous glucose production as well as an increased suppression of hepatic glucose production by 25% during a hyperinsulinemic-euglycemic clamp. Together, these data suggest that inducible liver-selective reduction of mIndy in rats is able to ameliorate hepatic steatosis and insulin resistance, conditions occurring with high calorie diets and during aging. Impact Journals LLC 2015-12-05 /pmc/articles/PMC4712334/ /pubmed/26647160 Text en Copyright: © 2015 Pesta et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Pesta, Dominik H.
Perry, Rachel J.
Guebre-Egziabher, Fitsum
Zhang, Dongyan
Jurczak, Michael
Fischer-Rosinsky, Antje
Daniels, Martin A.
Willmes, Diana M.
Bhanot, Sanjay
Bornstein, Stefan R.
Knauf, Felix
Samuel, Varman T.
Shulman, Gerald I.
Birkenfeld, Andreas L.
Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5)
title Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5)
title_full Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5)
title_fullStr Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5)
title_full_unstemmed Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5)
title_short Prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mIndy (Slc13a5)
title_sort prevention of diet-induced hepatic steatosis and hepatic insulin resistance by second generation antisense oligonucleotides targeted to the longevity gene mindy (slc13a5)
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4712334/
https://www.ncbi.nlm.nih.gov/pubmed/26647160
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