Cargando…

Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice

We employed a random mutagenesis approach to identify novel monogenic determinants of type 2 diabetes. Here we show that haplo-insufficiency of the histone methyltransferase myeloid-lineage leukemia (Mll2/Wbp7) gene causes type 2 diabetes in the mouse. We have shown that mice heterozygous for two se...

Descripción completa

Detalles Bibliográficos
Autores principales: Goldsworthy, Michelle, Absalom, Nathan L., Schröter, David, Matthews, Helen C., Bogani, Debora, Moir, Lee, Long, Anna, Church, Christopher, Hugill, Alison, Anstee, Quentin M., Goldin, Rob, Thursz, Mark, Hollfelder, Florian, Cox, Roger D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3691224/
https://www.ncbi.nlm.nih.gov/pubmed/23826075
http://dx.doi.org/10.1371/journal.pone.0061870
_version_ 1782274441482338304
author Goldsworthy, Michelle
Absalom, Nathan L.
Schröter, David
Matthews, Helen C.
Bogani, Debora
Moir, Lee
Long, Anna
Church, Christopher
Hugill, Alison
Anstee, Quentin M.
Goldin, Rob
Thursz, Mark
Hollfelder, Florian
Cox, Roger D.
author_facet Goldsworthy, Michelle
Absalom, Nathan L.
Schröter, David
Matthews, Helen C.
Bogani, Debora
Moir, Lee
Long, Anna
Church, Christopher
Hugill, Alison
Anstee, Quentin M.
Goldin, Rob
Thursz, Mark
Hollfelder, Florian
Cox, Roger D.
author_sort Goldsworthy, Michelle
collection PubMed
description We employed a random mutagenesis approach to identify novel monogenic determinants of type 2 diabetes. Here we show that haplo-insufficiency of the histone methyltransferase myeloid-lineage leukemia (Mll2/Wbp7) gene causes type 2 diabetes in the mouse. We have shown that mice heterozygous for two separate mutations in the SET domain of Mll2 or heterozygous Mll2 knockout mice were hyperglycaemic, hyperinsulinaemic and developed non-alcoholic fatty liver disease. Consistent with previous Mll2 knockout studies, mice homozygous for either ENU mutation (or compound heterozygotes) died during embryonic development at 9.5–14.5 days post coitum. Heterozygous deletion of Mll2 induced in the adult mouse results in a normal phenotype suggesting that changes in chromatin methylation during development result in the adult phenotype. Mll2 has been shown to regulate a small subset of genes, a number of which Neurod1, Enpp1, Slc27a2, and Plcxd1 are downregulated in adult mutant mice. Our results demonstrate that histone H3K4 methyltransferase Mll2 is a component of the genetic regulation necessary for glucose homeostasis, resulting in a specific disease pattern linking chromatin modification with causes and progression of type 2 diabetes, providing a basis for its further understanding at the molecular level.
format Online
Article
Text
id pubmed-3691224
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-36912242013-07-03 Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice Goldsworthy, Michelle Absalom, Nathan L. Schröter, David Matthews, Helen C. Bogani, Debora Moir, Lee Long, Anna Church, Christopher Hugill, Alison Anstee, Quentin M. Goldin, Rob Thursz, Mark Hollfelder, Florian Cox, Roger D. PLoS One Research Article We employed a random mutagenesis approach to identify novel monogenic determinants of type 2 diabetes. Here we show that haplo-insufficiency of the histone methyltransferase myeloid-lineage leukemia (Mll2/Wbp7) gene causes type 2 diabetes in the mouse. We have shown that mice heterozygous for two separate mutations in the SET domain of Mll2 or heterozygous Mll2 knockout mice were hyperglycaemic, hyperinsulinaemic and developed non-alcoholic fatty liver disease. Consistent with previous Mll2 knockout studies, mice homozygous for either ENU mutation (or compound heterozygotes) died during embryonic development at 9.5–14.5 days post coitum. Heterozygous deletion of Mll2 induced in the adult mouse results in a normal phenotype suggesting that changes in chromatin methylation during development result in the adult phenotype. Mll2 has been shown to regulate a small subset of genes, a number of which Neurod1, Enpp1, Slc27a2, and Plcxd1 are downregulated in adult mutant mice. Our results demonstrate that histone H3K4 methyltransferase Mll2 is a component of the genetic regulation necessary for glucose homeostasis, resulting in a specific disease pattern linking chromatin modification with causes and progression of type 2 diabetes, providing a basis for its further understanding at the molecular level. Public Library of Science 2013-06-24 /pmc/articles/PMC3691224/ /pubmed/23826075 http://dx.doi.org/10.1371/journal.pone.0061870 Text en © 2013 Goldsworthy et al http://creativecommons.org/licenses/by/4.0/ 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 properly credited.
spellingShingle Research Article
Goldsworthy, Michelle
Absalom, Nathan L.
Schröter, David
Matthews, Helen C.
Bogani, Debora
Moir, Lee
Long, Anna
Church, Christopher
Hugill, Alison
Anstee, Quentin M.
Goldin, Rob
Thursz, Mark
Hollfelder, Florian
Cox, Roger D.
Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice
title Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice
title_full Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice
title_fullStr Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice
title_full_unstemmed Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice
title_short Mutations in Mll2, an H3K4 Methyltransferase, Result in Insulin Resistance and Impaired Glucose Tolerance in Mice
title_sort mutations in mll2, an h3k4 methyltransferase, result in insulin resistance and impaired glucose tolerance in mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3691224/
https://www.ncbi.nlm.nih.gov/pubmed/23826075
http://dx.doi.org/10.1371/journal.pone.0061870
work_keys_str_mv AT goldsworthymichelle mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT absalomnathanl mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT schroterdavid mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT matthewshelenc mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT boganidebora mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT moirlee mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT longanna mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT churchchristopher mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT hugillalison mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT ansteequentinm mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT goldinrob mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT thurszmark mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT hollfelderflorian mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice
AT coxrogerd mutationsinmll2anh3k4methyltransferaseresultininsulinresistanceandimpairedglucosetoleranceinmice