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Role of the BAHD1 Chromatin-Repressive Complex in Placental Development and Regulation of Steroid Metabolism

Authors :
Slimane Ait-Si-Ali
Marie Wattenhofer-Donzé
Marie-France Champy
Renaud Pourpre
Alice Lebreton
Goran Lakisic
Pascale Cossart
Morwenna Le Guillou
Hélène Bierne
Tania Sorg
Guillaume Soubigou
Emanuele Libertini
Anne C. Ferguson-Smith
Jean Feunteun
Jean-Yves Coppée
Elizabeth J. Radford
Olivia Wendling
MICrobiologie de l'ALImentation au Service de la Santé (MICALIS)
Institut National de la Recherche Agronomique (INRA)-AgroParisTech
Interactions Bactéries-Cellules (UIBC)
Institut National de la Recherche Agronomique (INRA)-Institut Pasteur [Paris] (IP)-Institut National de la Santé et de la Recherche Médicale (INSERM)
Institut Clinique de la Souris (ICS)
Université de Strasbourg (UNISTRA)-Institut National de la Santé et de la Recherche Médicale (INSERM)-Centre National de la Recherche Scientifique (CNRS)
Transcriptome et Epigénome (PF2)
Institut Pasteur [Paris] (IP)
Cambridge University Hospitals - NHS (CUH)
University of Cambridge [UK] (CAM)
Stabilité Génétique et Oncogenèse (UMR 8200)
Université Paris-Sud - Paris 11 (UP11)-Institut Gustave Roussy (IGR)-Centre National de la Recherche Scientifique (CNRS)
Centre épigénétique et destin cellulaire (EDC)
Université Paris Diderot - Paris 7 (UPD7)-Centre National de la Recherche Scientifique (CNRS)
Department of Genetics
French Ligue Nationale Contre le Cancer (comité régional d’Ile–de-France, LNCC RS10/75–76 and LNCC 131/12
INRA AO blanc MICA 2011
iXcore Fundation for Research
ANR-11-BSV3-0003,EPILIS,Reprogrammation épigénétique par la bactérie pathogène Listeria monocytogenes(2011)
European Project: 670823,H2020,ERC-2014-ADG,BacCellEpi(2015)
Institut National de la Recherche Agronomique (INRA)-Institut Pasteur [Paris]-Institut National de la Santé et de la Recherche Médicale (INSERM)
Institut Pasteur [Paris]
Centre épigénétique et destin cellulaire (EDC (UMR_7216))
Lebreton, Alice
BLANC - Reprogrammation épigénétique par la bactérie pathogène Listeria monocytogenes - - EPILIS2011 - ANR-11-BSV3-0003 - BLANC - VALID
Bacterial, cellular and epigenetic factors that control enteropathogenicity - BacCellEpi - - H20202015-10-01 - 2018-09-30 - 670823 - VALID
Bierne, Hélène
Institut National de la Santé et de la Recherche Médicale (INSERM)-Institut Pasteur [Paris]-Institut National de la Recherche Agronomique (INRA)
Institut National de la Santé et de la Recherche Médicale (INSERM)-Centre National de la Recherche Scientifique (CNRS)
Radford, Elizabeth [0000-0002-8336-6045]
Ferguson-Smith, Anne [0000-0003-4996-9990]
Apollo - University of Cambridge Repository
Source :
PLoS Genetics, Vol 12, Iss 3, p e1005898 (2016), PLoS Genetics, PLoS Genetics, 2016, 12 (3), pp.e1005898. ⟨10.1371/journal.pgen.1005898⟩, PLoS Genetics, Public Library of Science, 2016, 12 (3), pp.e1005898. ⟨10.1371/journal.pgen.1005898⟩, Plos Genetics 3 (12), 1-26. (2016), PLOS Genetics
Publication Year :
2020
Publisher :
Public Library of Science (PLoS), 2020.

Abstract

BAHD1 is a vertebrate protein that promotes heterochromatin formation and gene repression in association with several epigenetic regulators. However, its physiological roles remain unknown. Here, we demonstrate that ablation of the Bahd1 gene results in hypocholesterolemia, hypoglycemia and decreased body fat in mice. It also causes placental growth restriction with a drop of trophoblast glycogen cells, a reduction of fetal weight and a high neonatal mortality rate. By intersecting transcriptome data from murine Bahd1 knockout (KO) placentas at stages E16.5 and E18.5 of gestation, Bahd1-KO embryonic fibroblasts, and human cells stably expressing BAHD1, we also show that changes in BAHD1 levels alter expression of steroid/lipid metabolism genes. Biochemical analysis of the BAHD1-associated multiprotein complex identifies MIER proteins as novel partners of BAHD1 and suggests that BAHD1-MIER interaction forms a hub for histone deacetylases and methyltransferases, chromatin readers and transcription factors. We further show that overexpression of BAHD1 leads to an increase of MIER1 enrichment on the inactive X chromosome (Xi). In addition, BAHD1 and MIER1/3 repress expression of the steroid hormone receptor genes ESR1 and PGR, both playing important roles in placental development and energy metabolism. Moreover, modulation of BAHD1 expression in HEK293 cells triggers epigenetic changes at the ESR1 locus. Together, these results identify BAHD1 as a core component of a chromatin-repressive complex regulating placental morphogenesis and body fat storage and suggest that its dysfunction may contribute to several human diseases.<br />Author Summary The importance of epigenetics in regulation and dysfunction of metabolic pathways is increasingly recognized but the underlying mechanisms and molecular actors involved remain incompletely characterized. Here, we provide evidence that the heterochromatinization factor BAHD1 cooperates with MIER proteins to assemble chromatin-repressive complexes that control a network of metabolic genes involved in placental and fetal growth and in cholesterol homeostasis.

Subjects

Subjects :
0301 basic medicine
Embryology
Cancer Research
Chromosomal Proteins, Non-Histone
Placenta
dna methylation
[SDV.GEN] Life Sciences [q-bio]/Genetics
[SDV.BC.BC]Life Sciences [q-bio]/Cellular Biology/Subcellular Processes [q-bio.SC]
[SDV.BBM.BM] Life Sciences [q-bio]/Biochemistry, Molecular Biology/Molecular biology
Biochemistry
Mice
Pregnancy
Gene expression
Medicine and Health Sciences
Small interfering RNAs
Genetics (clinical)
estrogen-receptor-alpha
histone deacetylase
transcriptional repression
glycogen cells
breast-cancer
sant domain
Regulation of gene expression
Mice, Knockout
biology
Chromosome Biology
[SDV.BDD.EO] Life Sciences [q-bio]/Development Biology/Embryology and Organogenesis
Gene Expression Regulation, Developmental
Nuclear Proteins
Genomics
Chromatin
Precipitation Techniques
Cell biology
Nucleic acids
DNA-Binding Proteins
Histone
DNA methylation
[SDV.BBM.GTP] Life Sciences [q-bio]/Biochemistry, Molecular Biology/Genomics [q-bio.GN]
Epigenetics
Female
Steroids
Anatomy
DNA modification
Transcriptome Analysis
Chromatin modification
Research Article
lcsh:QH426-470
Steroid hormone receptor
Research and Analysis Methods
03 medical and health sciences
[SDV.BBM.GTP]Life Sciences [q-bio]/Biochemistry, Molecular Biology/Genomics [q-bio.GN]
[SDV.BC.BC] Life Sciences [q-bio]/Cellular Biology/Subcellular Processes [q-bio.SC]
Genetics
Immunoprecipitation
Animals
Humans
Non-coding RNA
Molecular Biology
Transcription factor
Ecology, Evolution, Behavior and Systematics
[SDV.GEN]Life Sciences [q-bio]/Genetics
Reproductive System
Estrogen Receptor alpha
Biology and Life Sciences
Computational Biology
[SDV.BBM.BM]Life Sciences [q-bio]/Biochemistry, Molecular Biology/Molecular biology
Cell Biology
DNA
Genome Analysis
Molecular biology
Placentation
Gene regulation
lcsh:Genetics
030104 developmental biology
[SDV.BDD.EO]Life Sciences [q-bio]/Development Biology/Embryology and Organogenesis
HEK293 Cells
biology.protein
RNA
Transcriptome
Developmental Biology
Transcription Factors

Details

ISSN :
15537390 and 15537404
Database :
OpenAIRE
Journal :
PLoS Genetics, Vol 12, Iss 3, p e1005898 (2016), PLoS Genetics, PLoS Genetics, 2016, 12 (3), pp.e1005898. ⟨10.1371/journal.pgen.1005898⟩, PLoS Genetics, Public Library of Science, 2016, 12 (3), pp.e1005898. ⟨10.1371/journal.pgen.1005898⟩, Plos Genetics 3 (12), 1-26. (2016), PLOS Genetics
Accession number :
edsair.doi.dedup.....4a62788fa55fa964310f2bf954bcf0db
Full Text :
https://doi.org/10.17863/cam.61034