Cargando…

A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes

Cellular differentiation requires both activation of target cell transcriptional programs and repression of non-target cell programs. The Myt1 family of zinc finger transcription factors contributes to fibroblast to neuron reprogramming in vitro. Here, we show that ztf-11 (Zinc-finger Transcription...

Descripción completa

Detalles Bibliográficos
Autores principales: Lee, Joo, Taylor, Caitlin A, Barnes, Kristopher M, Shen, Ao, Stewart, Emerson V, Chen, Allison, Xiang, Yang K, Bao, Zhirong, Shen, Kang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6684318/
https://www.ncbi.nlm.nih.gov/pubmed/31386623
http://dx.doi.org/10.7554/eLife.46703
_version_ 1783442238745870336
author Lee, Joo
Taylor, Caitlin A
Barnes, Kristopher M
Shen, Ao
Stewart, Emerson V
Chen, Allison
Xiang, Yang K
Bao, Zhirong
Shen, Kang
author_facet Lee, Joo
Taylor, Caitlin A
Barnes, Kristopher M
Shen, Ao
Stewart, Emerson V
Chen, Allison
Xiang, Yang K
Bao, Zhirong
Shen, Kang
author_sort Lee, Joo
collection PubMed
description Cellular differentiation requires both activation of target cell transcriptional programs and repression of non-target cell programs. The Myt1 family of zinc finger transcription factors contributes to fibroblast to neuron reprogramming in vitro. Here, we show that ztf-11 (Zinc-finger Transcription Factor-11), the sole Caenorhabditis elegans Myt1 homolog, is required for neurogenesis in multiple neuronal lineages from previously differentiated epithelial cells, including a neuron generated by a developmental epithelial-to-neuronal transdifferentiation event. ztf-11 is exclusively expressed in all neuronal precursors with remarkable specificity at single-cell resolution. Loss of ztf-11 leads to upregulation of non-neuronal genes and reduced neurogenesis. Ectopic expression of ztf-11 in epidermal lineages is sufficient to produce additional neurons. ZTF-11 functions together with the MuvB corepressor complex to suppress the activation of non-neuronal genes in neurons. These results dovetail with the ability of Myt1l (Myt1-like) to drive neuronal transdifferentiation in vitro in vertebrate systems. Together, we identified an evolutionarily conserved mechanism to specify neuronal cell fate by repressing non-neuronal genes.
format Online
Article
Text
id pubmed-6684318
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher eLife Sciences Publications, Ltd
record_format MEDLINE/PubMed
spelling pubmed-66843182019-08-09 A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes Lee, Joo Taylor, Caitlin A Barnes, Kristopher M Shen, Ao Stewart, Emerson V Chen, Allison Xiang, Yang K Bao, Zhirong Shen, Kang eLife Developmental Biology Cellular differentiation requires both activation of target cell transcriptional programs and repression of non-target cell programs. The Myt1 family of zinc finger transcription factors contributes to fibroblast to neuron reprogramming in vitro. Here, we show that ztf-11 (Zinc-finger Transcription Factor-11), the sole Caenorhabditis elegans Myt1 homolog, is required for neurogenesis in multiple neuronal lineages from previously differentiated epithelial cells, including a neuron generated by a developmental epithelial-to-neuronal transdifferentiation event. ztf-11 is exclusively expressed in all neuronal precursors with remarkable specificity at single-cell resolution. Loss of ztf-11 leads to upregulation of non-neuronal genes and reduced neurogenesis. Ectopic expression of ztf-11 in epidermal lineages is sufficient to produce additional neurons. ZTF-11 functions together with the MuvB corepressor complex to suppress the activation of non-neuronal genes in neurons. These results dovetail with the ability of Myt1l (Myt1-like) to drive neuronal transdifferentiation in vitro in vertebrate systems. Together, we identified an evolutionarily conserved mechanism to specify neuronal cell fate by repressing non-neuronal genes. eLife Sciences Publications, Ltd 2019-08-06 /pmc/articles/PMC6684318/ /pubmed/31386623 http://dx.doi.org/10.7554/eLife.46703 Text en © 2019, Lee et al http://creativecommons.org/licenses/by/4.0/ http://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Developmental Biology
Lee, Joo
Taylor, Caitlin A
Barnes, Kristopher M
Shen, Ao
Stewart, Emerson V
Chen, Allison
Xiang, Yang K
Bao, Zhirong
Shen, Kang
A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes
title A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes
title_full A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes
title_fullStr A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes
title_full_unstemmed A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes
title_short A Myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes
title_sort myt1 family transcription factor defines neuronal fate by repressing non-neuronal genes
topic Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6684318/
https://www.ncbi.nlm.nih.gov/pubmed/31386623
http://dx.doi.org/10.7554/eLife.46703
work_keys_str_mv AT leejoo amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT taylorcaitlina amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT barneskristopherm amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT shenao amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT stewartemersonv amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT chenallison amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT xiangyangk amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT baozhirong amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT shenkang amyt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT leejoo myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT taylorcaitlina myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT barneskristopherm myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT shenao myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT stewartemersonv myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT chenallison myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT xiangyangk myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT baozhirong myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes
AT shenkang myt1familytranscriptionfactordefinesneuronalfatebyrepressingnonneuronalgenes