Cargando…
A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis
In multicellular eukaryotic organisms, the initiation of DNA replication occurs asynchronously throughout S-phase according to a regulated replication timing program. Here, using Xenopus egg extracts, we showed that Yap (Yes-associated protein 1), a downstream effector of the Hippo signalling pathwa...
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
eLife Sciences Publications, Ltd
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9328763/ https://www.ncbi.nlm.nih.gov/pubmed/35838349 http://dx.doi.org/10.7554/eLife.75741 |
_version_ | 1784757789692788736 |
---|---|
author | Meléndez García, Rodrigo Haccard, Olivier Chesneau, Albert Narassimprakash, Hemalatha Roger, Jérôme Perron, Muriel Marheineke, Kathrin Bronchain, Odile |
author_facet | Meléndez García, Rodrigo Haccard, Olivier Chesneau, Albert Narassimprakash, Hemalatha Roger, Jérôme Perron, Muriel Marheineke, Kathrin Bronchain, Odile |
author_sort | Meléndez García, Rodrigo |
collection | PubMed |
description | In multicellular eukaryotic organisms, the initiation of DNA replication occurs asynchronously throughout S-phase according to a regulated replication timing program. Here, using Xenopus egg extracts, we showed that Yap (Yes-associated protein 1), a downstream effector of the Hippo signalling pathway, is required for the control of DNA replication dynamics. We found that Yap is recruited to chromatin at the start of DNA replication and identified Rif1, a major regulator of the DNA replication timing program, as a novel Yap binding protein. Furthermore, we show that either Yap or Rif1 depletion accelerates DNA replication dynamics by increasing the number of activated replication origins. In Xenopus embryos, using a Trim-Away approach during cleavage stages devoid of transcription, we found that either Yap or Rif1 depletion triggers an acceleration of cell divisions, suggesting a shorter S-phase by alterations of the replication program. Finally, our data show that Rif1 knockdown leads to defects in the partitioning of early versus late replication foci in retinal stem cells, as we previously showed for Yap. Altogether, our findings unveil a non-transcriptional role for Yap in regulating replication dynamics. We propose that Yap and Rif1 function as brakes to control the DNA replication program in early embryos and post-embryonic stem cells. |
format | Online Article Text |
id | pubmed-9328763 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | eLife Sciences Publications, Ltd |
record_format | MEDLINE/PubMed |
spelling | pubmed-93287632022-07-28 A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis Meléndez García, Rodrigo Haccard, Olivier Chesneau, Albert Narassimprakash, Hemalatha Roger, Jérôme Perron, Muriel Marheineke, Kathrin Bronchain, Odile eLife Cell Biology In multicellular eukaryotic organisms, the initiation of DNA replication occurs asynchronously throughout S-phase according to a regulated replication timing program. Here, using Xenopus egg extracts, we showed that Yap (Yes-associated protein 1), a downstream effector of the Hippo signalling pathway, is required for the control of DNA replication dynamics. We found that Yap is recruited to chromatin at the start of DNA replication and identified Rif1, a major regulator of the DNA replication timing program, as a novel Yap binding protein. Furthermore, we show that either Yap or Rif1 depletion accelerates DNA replication dynamics by increasing the number of activated replication origins. In Xenopus embryos, using a Trim-Away approach during cleavage stages devoid of transcription, we found that either Yap or Rif1 depletion triggers an acceleration of cell divisions, suggesting a shorter S-phase by alterations of the replication program. Finally, our data show that Rif1 knockdown leads to defects in the partitioning of early versus late replication foci in retinal stem cells, as we previously showed for Yap. Altogether, our findings unveil a non-transcriptional role for Yap in regulating replication dynamics. We propose that Yap and Rif1 function as brakes to control the DNA replication program in early embryos and post-embryonic stem cells. eLife Sciences Publications, Ltd 2022-07-15 /pmc/articles/PMC9328763/ /pubmed/35838349 http://dx.doi.org/10.7554/eLife.75741 Text en © 2022, Meléndez García, Haccard et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited. |
spellingShingle | Cell Biology Meléndez García, Rodrigo Haccard, Olivier Chesneau, Albert Narassimprakash, Hemalatha Roger, Jérôme Perron, Muriel Marheineke, Kathrin Bronchain, Odile A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis |
title | A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis |
title_full | A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis |
title_fullStr | A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis |
title_full_unstemmed | A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis |
title_short | A non-transcriptional function of Yap regulates the DNA replication program in Xenopus laevis |
title_sort | non-transcriptional function of yap regulates the dna replication program in xenopus laevis |
topic | Cell Biology |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9328763/ https://www.ncbi.nlm.nih.gov/pubmed/35838349 http://dx.doi.org/10.7554/eLife.75741 |
work_keys_str_mv | AT melendezgarciarodrigo anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT haccardolivier anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT chesneaualbert anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT narassimprakashhemalatha anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT rogerjerome anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT perronmuriel anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT marheinekekathrin anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT bronchainodile anontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT melendezgarciarodrigo nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT haccardolivier nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT chesneaualbert nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT narassimprakashhemalatha nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT rogerjerome nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT perronmuriel nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT marheinekekathrin nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis AT bronchainodile nontranscriptionalfunctionofyapregulatesthednareplicationprograminxenopuslaevis |