Direct neuronal reprogramming by temporal identity factors

Author:

Boudreau-Pinsonneault Camille12,David Luke Ajay12ORCID,Lourenço Fernandes José Alex34ORCID,Javed Awais15,Fries Michel15,Mattar Pierre34ORCID,Cayouette Michel12567ORCID

Affiliation:

1. Cellular Neurobiology Research Unit, Montreal Clinical Research Institute (IRCM), Montreal, QC H2W 1R7, Canada

2. Integrated Program in Neuroscience, McGill University, Montreal, QC H3A 1A1, Canada

3. Ottawa Hospital Research Institute, Ottawa, ON K1H 8L6, Canada

4. Department of Cellular and Molecular Medicine, University of Ottawa, Ottawa, ON K1H 8M5, Canada

5. Molecular Biology Program, Université de Montréal, Montreal, QC H3C 3J7, Canada

6. Department of Anatomy and Cell Biology, McGill University, Montreal, QC H3A 0C7, Canada

7. Department of Medicine, Université de Montréal, Montreal, QC H3T 1J4, Canada

Abstract

Temporal identity factors are sufficient to reprogram developmental competence of neural progenitors and shift cell fate output, but whether they can also reprogram the identity of terminally differentiated cells is unknown. To address this question, we designed a conditional gene expression system that allows rapid screening of potential reprogramming factors in mouse retinal glial cells combined with genetic lineage tracing. Using this assay, we found that coexpression of the early temporal identity transcription factors Ikzf1 and Ikzf4 is sufficient to directly convert Müller glial (MG) cells into cells that translocate to the outer nuclear layer (ONL), where photoreceptor cells normally reside. We name these “induced ONL (iONL)” cells. Using genetic lineage tracing, histological, immunohistochemical, and single-cell transcriptome and multiome analyses, we show that expression of Ikzf1/4 in MG in vivo, without retinal injury, mostly generates iONL cells that share molecular characteristics with bipolar cells, although a fraction of them stain for Rxrg, a cone photoreceptor marker. Furthermore, we show that coexpression of Ikzf1 and Ikzf4 can reprogram mouse embryonic fibroblasts to induced neurons in culture by rapidly remodeling chromatin and activating a neuronal gene expression program. This work uncovers general neuronal reprogramming properties for temporal identity factors in terminally differentiated cells.

Funder

Gouvernement du Canada | Canadian Institutes of Health Research

Krembil Foundation

Fighting Blindness Canada

FRQ | Fonds de Recherche du Québec - Santé

FRQS Vision Health Research Network

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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