MicroRNA-218 instructs proper assembly of hippocampal networks

Author:

Taylor Seth R1,Kobayashi Mariko2,Vilella Antonietta3,Tiwari Durgesh45,Zolboot Norjin6,Du Jessica X6,Spencer Kathryn R6,Hartzell Andrea6,Girgiss Carol1,Abaci Yusuf T1,Shao Yufeng6,De Sanctis Claudia7,Bellenchi Gian Carlo78,Darnell Robert B2ORCID,Gross Christina45ORCID,Zoli Michele3,Berg Darwin K1,Lippi Giordano6ORCID

Affiliation:

1. Division of Biological Sciences, University of California, San Diego

2. Laboratory of Molecular Neuro-oncology, Howard Hughes Medical Institute, Rockefeller University

3. Department of Biomedical, Metabolic and Neural Sciences; Center for Neuroscience and Neurotechnology (CfNN), University of Modena and Reggio Emilia

4. Division of Neurology, Department of Pediatrics, Cincinnati Children's Hospital Medical Center, University of Cincinnati College of Medicine

5. Department of Pediatrics, University of Cincinnati College of Medicine

6. Department of Neuroscience, Scripps Research Institute

7. Institute of Genetics and Biophysics A Buzzati-Traverso

8. IRCCS Fondazione Santa Lucia

Abstract

The assembly of the mammalian brain is orchestrated by temporally coordinated waves of gene expression. Post-transcriptional regulation by microRNAs (miRNAs) is a key aspect of this program. Indeed, deletion of neuron-enriched miRNAs induces strong developmental phenotypes, and miRNA levels are altered in patients with neurodevelopmental disorders. However, the mechanisms used by miRNAs to instruct brain development remain largely unexplored. Here, we identified miR-218 as a critical regulator of hippocampal assembly. MiR-218 is highly expressed in the hippocampus and enriched in both excitatory principal neurons (PNs) and GABAergic inhibitory interneurons (INs). Early life inhibition of miR-218 results in an adult brain with a predisposition to seizures. Changes in gene expression in the absence of miR-218 suggest that network assembly is impaired. Indeed, we find that miR-218 inhibition results in the disruption of early depolarizing GABAergic signaling, structural defects in dendritic spines, and altered intrinsic membrane excitability. Conditional knockout of Mir218-2 in INs, but not PNs, is sufficient to recapitulate long-term instability. Finally, de-repressing Kif21b and Syt13, two miR-218 targets, phenocopies the effects on early synchronous network activity induced by miR-218 inhibition. Taken together, the data suggest that miR-218 orchestrates formative events in PNs and INs to produce stable networks.

Funder

National Institutes of Health

Tobacco-Related Disease Research Program

Whitehall Foundation

Autism Speaks

American Epilepsy Society

Ministero dell'Istruzione, dell'Università e della Ricerca

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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