FOXG1 targets BMP repressors and cell cycle inhibitors in human neural progenitor cells

Author:

Hettige Nuwan C12,Fleming Peter23,Semenak Amelia23,Zhang Xin2,Peng Huashan2,Hagel Marc-Daniel4,Théroux Jean-François2,Zhang Ying2,Ni Anjie12,Jefri Malvin23,Antonyan Lilit12,Alsuwaidi Shaima23,Schuppert Andreas4,Stumpf Patrick S4,Ernst Carl1235ORCID

Affiliation:

1. Department of Human Genetics, McGill University , Montreal, QC H3A 0C7 , Canada

2. Psychiatric Genetics Group , Montreal, QC H4H 1R3 , Canada

3. Department of Neurology and Neurosurgery, McGill University , Montreal, QC H3A 2B4 , Canada

4. Joint Research Center for Computational Biomedicine, RWTH Aachen University , Aachen 52074 , Germany

5. Montreal Neurological Institute, McGill University , Montréal, QC H3A 2B4 , Canada

Abstract

Abstract FOXG1 is a critical transcription factor in human brain where loss-of-function mutations cause a severe neurodevelopmental disorder, while increased FOXG1 expression is frequently observed in glioblastoma. FOXG1 is an inhibitor of cell patterning and an activator of cell proliferation in chordate model organisms but different mechanisms have been proposed as to how this occurs. To identify genomic targets of FOXG1 in human neural progenitor cells (NPCs), we engineered a cleavable reporter construct in endogenous FOXG1 and performed chromatin immunoprecipitation (ChIP) sequencing. We also performed deep RNA sequencing of NPCs from two females with loss-of-function mutations in FOXG1 and their healthy biological mothers. Integrative analyses of RNA and ChIP sequencing data showed that cell cycle regulation and Bone Morphogenic Protein (BMP) repression gene ontology categories were over-represented as FOXG1 targets. Using engineered brain cell lines, we show that FOXG1 specifically activates SMAD7 and represses CDKN1B. Activation of SMAD7 which inhibits BMP signaling may be one way that FOXG1 patterns the forebrain, while repression of cell cycle regulators such as CDKN1B may be one way that FOXG1 expands the NPC pool to ensure proper brain size. Our data reveal novel mechanisms on how FOXG1 may control forebrain patterning and cell proliferation in human brain development.

Funder

Fonds de Recherche de Québec—Santé

Indonesian Endowment Fund

United Arab Emirates

Consejo Nacional de Ciencia y Tecnología

Canada Research Chairs Program

FRQS Chercheurs Boursier-Senior Program

Canadian Institutes of Health Research

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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