Maturation Delay of Human GABAergic Neurogenesis in Fragile X Syndrome Pluripotent Stem Cells

Author:

Zhang Ai123,Sokolova Irina4,Domissy Alain5,Davis Joshua1ORCID,Rao Lee16,Hana Utami Kagistia78,Wang Yanling19,Hagerman Randi J10,Pouladi Mahmoud A7811,Sanna Pietro4,Boland Michael J1213,Loring Jeanne F1ORCID

Affiliation:

1. Department of Molecular Medicine, Scripps Research , La Jolla, CA , USA

2. Skaggs Graduate School of Chemical and Biological Sciences, Scripps Research , La Jolla, CA , USA

3. Aspen Neuroscience, Inc. San Diego, CA , USA

4. Department of Immunology and Microbiology, Scripps Research , La Jolla, CA , USA

5. Center for Computational Biology, Scripps Research , La Jolla, CA , USA

6. Biological and Medical Informatics Graduate Program, University of California , San Francisco, CA , USA

7. Department of Physiology, National University of Singapore , Singapore

8. Translational Laboratory in Genetic Medicine, Agency for Science, Technology and Research (A*STAR) , Singapore

9. Rush Alzheimer’s Disease Center, Rush University Medical Center , Chicago, IL , USA

10. MIND Institute, University of California Davis , Sacramento, CA , USA

11. British Columbia Children’s Hospital Research Institute, Department of Medical Genetics, University of British Columbia , Vancouver , Canada

12. Institute for Genomic Medicine, Columbia University Irving Medical Center , New York, NY , USA

13. Department of Neurology, Columbia University , New York, NY , USA

Abstract

Abstract Fragile X Syndrome (FXS), the leading monogenic cause of intellectual disability and autism spectrum disorder, is caused by expansion of a CGG trinucleotide repeat in the 5ʹ-UTR of the Fragile X Mental Retardation-1 (FMR1) gene. Epigenetic silencing of FMR1 results in loss of the Fragile X Mental Retardation Protein (FMRP). Although most studies to date have focused on excitatory neurons, recent evidence suggests that GABAergic inhibitory networks are also affected. To investigate human GABAergic neurogenesis, we established a method to reproducibly derive inhibitory neurons from multiple FXS and control human pluripotent stem cell (hPSC) lines. Electrophysiological analyses suggested that the developing FXS neurons had a delay in the GABA functional switch, a transition in fetal development that converts the GABAA channel’s function from depolarization to hyperpolarization, with profound effects on the developing brain. To investigate the cause of this delay, we analyzed 14 400 single-cell transcriptomes from FXS and control cells at 2 stages of GABAergic neurogenesis. While control and FXS cells were similar at the earlier time point, the later-stage FXS cells retained expression of neuroblast proliferation-associated genes and had lower levels of genes associated with action potential regulation, synapses, and mitochondria compared with controls. Our analysis suggests that loss of FMRP prolongs the proliferative stage of progenitors, which may result in more neurons remaining immature during the later stages of neurogenesis. This could have profound implications for homeostatic excitatory-inhibitory circuit development in FXS, and suggests a novel direction for understanding disease mechanisms that may help to guide therapeutic interventions.

Funder

National Institutes of Health

California Institute for Regenerative Medicine

Scripps Research Skaggs Graduate School of Chemical and Biological Sciences

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,General Medicine

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