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Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure

OBJECTIVE: Insulin signalling via phosphoinositide 3-kinase (PI3K) requires PIK3R1-encoded regulatory subunits. C-terminal PIK3R1 mutations cause SHORT syndrome, as well as lipodystrophy and insulin resistance (IR), surprisingly without fatty liver or metabolic dyslipidaemia. We sought to investigat...

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Autores principales: Kwok, Albert, Zvetkova, Ilona, Virtue, Sam, Luijten, Ineke, Huang-Doran, Isabel, Tomlinson, Patsy, Bulger, David A., West, James, Murfitt, Steven, Griffin, Julian, Alam, Rafeah, Hart, Daniel, Knox, Rachel, Voshol, Peter, Vidal-Puig, Antonio, Jensen, Jørgen, O'Rahilly, Stephen, Semple, Robert K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7385515/
https://www.ncbi.nlm.nih.gov/pubmed/32439336
http://dx.doi.org/10.1016/j.molmet.2020.101020
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author Kwok, Albert
Zvetkova, Ilona
Virtue, Sam
Luijten, Ineke
Huang-Doran, Isabel
Tomlinson, Patsy
Bulger, David A.
West, James
Murfitt, Steven
Griffin, Julian
Alam, Rafeah
Hart, Daniel
Knox, Rachel
Voshol, Peter
Vidal-Puig, Antonio
Jensen, Jørgen
O'Rahilly, Stephen
Semple, Robert K.
author_facet Kwok, Albert
Zvetkova, Ilona
Virtue, Sam
Luijten, Ineke
Huang-Doran, Isabel
Tomlinson, Patsy
Bulger, David A.
West, James
Murfitt, Steven
Griffin, Julian
Alam, Rafeah
Hart, Daniel
Knox, Rachel
Voshol, Peter
Vidal-Puig, Antonio
Jensen, Jørgen
O'Rahilly, Stephen
Semple, Robert K.
author_sort Kwok, Albert
collection PubMed
description OBJECTIVE: Insulin signalling via phosphoinositide 3-kinase (PI3K) requires PIK3R1-encoded regulatory subunits. C-terminal PIK3R1 mutations cause SHORT syndrome, as well as lipodystrophy and insulin resistance (IR), surprisingly without fatty liver or metabolic dyslipidaemia. We sought to investigate this discordance. METHODS: The human pathogenic Pik3r1 Y657(∗) mutation was knocked into mice by homologous recombination. Growth, body composition, bioenergetic and metabolic profiles were investigated on chow and high-fat diet (HFD). We examined adipose and liver histology, and assessed liver responses to fasting and refeeding transcriptomically. RESULTS: Like humans with SHORT syndrome, Pik3r1(WT/Y657∗) mice were small with severe IR, and adipose expansion on HFD was markedly reduced. Also as in humans, plasma lipid concentrations were low, and insulin-stimulated hepatic lipogenesis was not increased despite hyperinsulinemia. At odds with lipodystrophy, however, no adipocyte hypertrophy nor adipose inflammation was found. Liver lipogenic gene expression was not significantly altered, and unbiased transcriptomics showed only minor changes, including evidence of reduced endoplasmic reticulum stress in the fed state and diminished Rictor-dependent transcription on fasting. Increased energy expenditure, which was not explained by hyperglycaemia nor intestinal malabsorption, provided an alternative explanation for the uncoupling of IR from dyslipidaemia. CONCLUSIONS: Pik3r1 dysfunction in mice phenocopies the IR and reduced adiposity without lipotoxicity of human SHORT syndrome. Decreased adiposity may not reflect bona fide lipodystrophy, but rather, increased energy expenditure, and we suggest that further study of brown adipose tissue in both humans and mice is warranted.
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spelling pubmed-73855152020-07-30 Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure Kwok, Albert Zvetkova, Ilona Virtue, Sam Luijten, Ineke Huang-Doran, Isabel Tomlinson, Patsy Bulger, David A. West, James Murfitt, Steven Griffin, Julian Alam, Rafeah Hart, Daniel Knox, Rachel Voshol, Peter Vidal-Puig, Antonio Jensen, Jørgen O'Rahilly, Stephen Semple, Robert K. Mol Metab Article OBJECTIVE: Insulin signalling via phosphoinositide 3-kinase (PI3K) requires PIK3R1-encoded regulatory subunits. C-terminal PIK3R1 mutations cause SHORT syndrome, as well as lipodystrophy and insulin resistance (IR), surprisingly without fatty liver or metabolic dyslipidaemia. We sought to investigate this discordance. METHODS: The human pathogenic Pik3r1 Y657(∗) mutation was knocked into mice by homologous recombination. Growth, body composition, bioenergetic and metabolic profiles were investigated on chow and high-fat diet (HFD). We examined adipose and liver histology, and assessed liver responses to fasting and refeeding transcriptomically. RESULTS: Like humans with SHORT syndrome, Pik3r1(WT/Y657∗) mice were small with severe IR, and adipose expansion on HFD was markedly reduced. Also as in humans, plasma lipid concentrations were low, and insulin-stimulated hepatic lipogenesis was not increased despite hyperinsulinemia. At odds with lipodystrophy, however, no adipocyte hypertrophy nor adipose inflammation was found. Liver lipogenic gene expression was not significantly altered, and unbiased transcriptomics showed only minor changes, including evidence of reduced endoplasmic reticulum stress in the fed state and diminished Rictor-dependent transcription on fasting. Increased energy expenditure, which was not explained by hyperglycaemia nor intestinal malabsorption, provided an alternative explanation for the uncoupling of IR from dyslipidaemia. CONCLUSIONS: Pik3r1 dysfunction in mice phenocopies the IR and reduced adiposity without lipotoxicity of human SHORT syndrome. Decreased adiposity may not reflect bona fide lipodystrophy, but rather, increased energy expenditure, and we suggest that further study of brown adipose tissue in both humans and mice is warranted. Elsevier 2020-05-19 /pmc/articles/PMC7385515/ /pubmed/32439336 http://dx.doi.org/10.1016/j.molmet.2020.101020 Text en © 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kwok, Albert
Zvetkova, Ilona
Virtue, Sam
Luijten, Ineke
Huang-Doran, Isabel
Tomlinson, Patsy
Bulger, David A.
West, James
Murfitt, Steven
Griffin, Julian
Alam, Rafeah
Hart, Daniel
Knox, Rachel
Voshol, Peter
Vidal-Puig, Antonio
Jensen, Jørgen
O'Rahilly, Stephen
Semple, Robert K.
Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure
title Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure
title_full Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure
title_fullStr Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure
title_full_unstemmed Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure
title_short Truncation of Pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure
title_sort truncation of pik3r1 causes severe insulin resistance uncoupled from obesity and dyslipidaemia by increased energy expenditure
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7385515/
https://www.ncbi.nlm.nih.gov/pubmed/32439336
http://dx.doi.org/10.1016/j.molmet.2020.101020
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