Multimodal epigenetic changes and altered NEUROD1 chromatin binding in the mouse hippocampus underlie FOXG1 syndrome

Author:

Akol Ipek12ORCID,Izzo Annalisa1ORCID,Gather Fabian1ORCID,Strack Stefanie1,Heidrich Stefanie1,Ó hAilín Darren13ORCID,Villarreal Alejandro34ORCID,Hacker Christine1ORCID,Rauleac Tudor1ORCID,Bella Chiara5ORCID,Fischer Andre678,Manke Thomas5,Vogel Tanja19ORCID

Affiliation:

1. Department Molecular Embryology, Institute for Anatomy and Cell Biology, Medical Faculty, University of Freiburg, 79104 Freiburg, Germany

2. Faculty of Biology, University of Freiburg, 79104 Freiburg, Germany

3. AUC School of Medicine, University of Central Lancashire, Preston, UK

4. Laboratorio de Neuropatología Molecular, Instituto de Biología Celular y Neurociencia “Prof. E. De Robertis” UBA-CONICET, Facultad de Medicina, Universidad de Buenos Aires, Buenos Aires 1121, Argentina

5. Max Planck Institute of Immunobiology and Epigenetics, 79108 Freiburg, Germany

6. Department for Systems Medicine and Epigenetics, German Center for Neurodegenerative Diseases (DZNE), Göttingen 37075, Germany

7. Cluster of Excellence “Multiscale Bioimaging: From Molecular Machines to Networks of Excitable Cells”, University of Göttingen, Göttingen 37075, Germany

8. Department of Psychiatry and Psychotherapy, University Medical Center Göttingen, Göttingen 37075, Germany

9. Center for Basics in NeuroModulation, Medical Faculty, University of Freiburg, Freiburg 79104, Germany

Abstract

Forkhead box G1 (FOXG1) has important functions in neuronal differentiation and balances excitatory/inhibitory network activity. Thus far, molecular processes underlying FOXG1 function are largely unexplored. Here, we present a multiomics data set exploring how FOXG1 impacts neuronal maturation at the chromatin level in the mouse hippocampus. At a genome-wide level, FOXG1 i) both represses and activates transcription, ii) binds mainly to enhancer regions, iii) reconfigures the epigenetic landscape through bidirectional alteration of H3K27ac, H3K4me3, and chromatin accessibility, and iv) operates synergistically with NEUROD1. Interestingly, we could not detect a clear hierarchy of FOXG1 and NEUROD1, but instead, provide the evidence that they act in a highly cooperative manner to control neuronal maturation. Genes affected by the chromatin alterations impact synaptogenesis and axonogenesis. Inhibition of histone deacetylases partially rescues transcriptional alterations upon FOXG1 reduction. This integrated multiomics view of changes upon FOXG1 reduction reveals an unprecedented multimodality of FOXG1 functions converging on neuronal maturation. It fuels therapeutic options based on epigenetic drugs to alleviate, at least in part, neuronal dysfunction.

Funder

Deutsche Forschungsgemeinschaft

Deutscher Akademischer Austauschdienst

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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