Cargando…

Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells

Even though metformin is widely used to treat type2 diabetes, reducing glycaemia and body weight, the mechanisms of action are still elusive. Recent studies have identified the gastrointestinal tract as an important site of action. Here we used intestinal organoids to explore the effects of metformi...

Descripción completa

Detalles Bibliográficos
Autores principales: Yang, Ming, Darwish, Tamana, Larraufie, Pierre, Rimmington, Debra, Cimino, Irene, Goldspink, Deborah A., Jenkins, Benjamin, Koulman, Albert, Brighton, Cheryl A., Ma, Marcella, Lam, Brian Y. H., Coll, Anthony P., O’Rahilly, Stephen, Reimann, Frank, Gribble, Fiona M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7843649/
https://www.ncbi.nlm.nih.gov/pubmed/33510216
http://dx.doi.org/10.1038/s41598-021-81349-7
_version_ 1783644195258368000
author Yang, Ming
Darwish, Tamana
Larraufie, Pierre
Rimmington, Debra
Cimino, Irene
Goldspink, Deborah A.
Jenkins, Benjamin
Koulman, Albert
Brighton, Cheryl A.
Ma, Marcella
Lam, Brian Y. H.
Coll, Anthony P.
O’Rahilly, Stephen
Reimann, Frank
Gribble, Fiona M.
author_facet Yang, Ming
Darwish, Tamana
Larraufie, Pierre
Rimmington, Debra
Cimino, Irene
Goldspink, Deborah A.
Jenkins, Benjamin
Koulman, Albert
Brighton, Cheryl A.
Ma, Marcella
Lam, Brian Y. H.
Coll, Anthony P.
O’Rahilly, Stephen
Reimann, Frank
Gribble, Fiona M.
author_sort Yang, Ming
collection PubMed
description Even though metformin is widely used to treat type2 diabetes, reducing glycaemia and body weight, the mechanisms of action are still elusive. Recent studies have identified the gastrointestinal tract as an important site of action. Here we used intestinal organoids to explore the effects of metformin on intestinal cell physiology. Bulk RNA-sequencing analysis identified changes in hexose metabolism pathways, particularly glycolytic genes. Metformin increased expression of Slc2a1 (GLUT1), decreased expression of Slc2a2 (GLUT2) and Slc5a1 (SGLT1) whilst increasing GLUT-dependent glucose uptake and glycolytic rate as observed by live cell imaging of genetically encoded metabolite sensors and measurement of oxygen consumption and extracellular acidification rates. Metformin caused mitochondrial dysfunction and metformin’s effects on 2D-cultures were phenocopied by treatment with rotenone and antimycin-A, including upregulation of GDF15 expression, previously linked to metformin dependent weight loss. Gene expression changes elicited by metformin were replicated in 3D apical-out organoids and distal small intestines of metformin treated mice. We conclude that metformin affects glucose uptake, glycolysis and GDF-15 secretion, likely downstream of the observed mitochondrial dysfunction. This may explain the effects of metformin on intestinal glucose utilisation and food balance.
format Online
Article
Text
id pubmed-7843649
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-78436492021-01-29 Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells Yang, Ming Darwish, Tamana Larraufie, Pierre Rimmington, Debra Cimino, Irene Goldspink, Deborah A. Jenkins, Benjamin Koulman, Albert Brighton, Cheryl A. Ma, Marcella Lam, Brian Y. H. Coll, Anthony P. O’Rahilly, Stephen Reimann, Frank Gribble, Fiona M. Sci Rep Article Even though metformin is widely used to treat type2 diabetes, reducing glycaemia and body weight, the mechanisms of action are still elusive. Recent studies have identified the gastrointestinal tract as an important site of action. Here we used intestinal organoids to explore the effects of metformin on intestinal cell physiology. Bulk RNA-sequencing analysis identified changes in hexose metabolism pathways, particularly glycolytic genes. Metformin increased expression of Slc2a1 (GLUT1), decreased expression of Slc2a2 (GLUT2) and Slc5a1 (SGLT1) whilst increasing GLUT-dependent glucose uptake and glycolytic rate as observed by live cell imaging of genetically encoded metabolite sensors and measurement of oxygen consumption and extracellular acidification rates. Metformin caused mitochondrial dysfunction and metformin’s effects on 2D-cultures were phenocopied by treatment with rotenone and antimycin-A, including upregulation of GDF15 expression, previously linked to metformin dependent weight loss. Gene expression changes elicited by metformin were replicated in 3D apical-out organoids and distal small intestines of metformin treated mice. We conclude that metformin affects glucose uptake, glycolysis and GDF-15 secretion, likely downstream of the observed mitochondrial dysfunction. This may explain the effects of metformin on intestinal glucose utilisation and food balance. Nature Publishing Group UK 2021-01-28 /pmc/articles/PMC7843649/ /pubmed/33510216 http://dx.doi.org/10.1038/s41598-021-81349-7 Text en © The Author(s) 2021 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Yang, Ming
Darwish, Tamana
Larraufie, Pierre
Rimmington, Debra
Cimino, Irene
Goldspink, Deborah A.
Jenkins, Benjamin
Koulman, Albert
Brighton, Cheryl A.
Ma, Marcella
Lam, Brian Y. H.
Coll, Anthony P.
O’Rahilly, Stephen
Reimann, Frank
Gribble, Fiona M.
Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells
title Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells
title_full Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells
title_fullStr Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells
title_full_unstemmed Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells
title_short Inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and GDF-15 release from intestinal cells
title_sort inhibition of mitochondrial function by metformin increases glucose uptake, glycolysis and gdf-15 release from intestinal cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7843649/
https://www.ncbi.nlm.nih.gov/pubmed/33510216
http://dx.doi.org/10.1038/s41598-021-81349-7
work_keys_str_mv AT yangming inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT darwishtamana inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT larraufiepierre inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT rimmingtondebra inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT ciminoirene inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT goldspinkdeboraha inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT jenkinsbenjamin inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT koulmanalbert inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT brightoncheryla inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT mamarcella inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT lambrianyh inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT collanthonyp inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT orahillystephen inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT reimannfrank inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells
AT gribblefionam inhibitionofmitochondrialfunctionbymetforminincreasesglucoseuptakeglycolysisandgdf15releasefromintestinalcells