Transcriptional Dysregulation and Impaired Neuronal Activity in FMR1 Knock-Out and Fragile X Patients’ iPSC-Derived Models

Author:

Maussion Gilles1ORCID,Rocha Cecilia1,Abdian Narges1,Yang Dimitri1,Turk Julien1,Carrillo Valenzuela Dulce1,Pimentel Luisa1ORCID,You Zhipeng1,Morquette Barbara1,Nicouleau Michael1,Deneault Eric2ORCID,Higgins Samuel3,Chen Carol X.-Q.1,Reintsch Wolfgang E.1,Ho Stanley4ORCID,Soubannier Vincent1ORCID,Lépine Sarah15,Modrusan Zora6,Lund Jessica6,Stephenson William6ORCID,Schubert Rajib4,Durcan Thomas M.1ORCID

Affiliation:

1. The Neuro’s Early Drug Discovery Unit (EDDU), McGill University, Montreal, QC H3A 2B4, Canada

2. Regulatory Research Division, Centre for Oncology, Radiopharmaceuticals and Research, Biologic and Radiopharmaceutical Drugs Directorate, Health Products and Food Branch, Health Canada, Ottawa, ON K1A 0K9, Canada

3. Roche Sequencing, Computational Science and Informatics, Roche Molecular Systems, Santa Clara, CA 95050, USA

4. Research and Early Development, Roche Molecular Systems, Pleasanton, CA 94588, USA

5. Faculty of Medicine and Health Sciences, McGill University, Montreal, QC H3G 2M1, Canada

6. Genentech, South San Francisco, CA 94080, USA

Abstract

Fragile X syndrome (FXS) is caused by a repression of the FMR1 gene that codes the Fragile X mental retardation protein (FMRP), an RNA binding protein involved in processes that are crucial for proper brain development. To better understand the consequences of the absence of FMRP, we analyzed gene expression profiles and activities of cortical neural progenitor cells (NPCs) and neurons obtained from FXS patients’ induced pluripotent stem cells (IPSCs) and IPSC-derived cells from FMR1 knock-out engineered using CRISPR-CAS9 technology. Multielectrode array recordings revealed in FMR1 KO and FXS patient cells, decreased mean firing rates; activities blocked by tetrodotoxin application. Increased expression of presynaptic mRNA and transcription factors involved in the forebrain specification and decreased levels of mRNA coding AMPA and NMDA subunits were observed using RNA sequencing on FMR1 KO neurons and validated using quantitative PCR in both models. Intriguingly, 40% of the differentially expressed genes were commonly deregulated between NPCs and differentiating neurons with significant enrichments in FMRP targets and autism-related genes found amongst downregulated genes. Our findings suggest that the absence of FMRP affects transcriptional profiles since the NPC stage, and leads to impaired activity and neuronal differentiation over time, which illustrates the critical role of FMRP protein in neuronal development.

Funder

Canada First Research Excellence Fund

Healthy Brains, Healthy Lives initiative at McGill University

Alain and Sandra Bouchard Foundation

Chamandy Foundation

Djavad Mowafaghian Foundation

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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