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Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast

Gene duplications increase organismal robustness by providing freedom for gene divergence or by increasing gene dosage. The yeast histone chaperones Fpr3 and Fpr4 are paralogs that can assemble nucleosomes in vitro; however, the genomic locations they target and their functional relationship is poor...

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Autores principales: Savic, Neda, Shortill, Shawn P., Bilenky, Misha, Dobbs, Joseph M., Dilworth, David, Hirst, Martin, Nelson, Christopher J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6893378/
https://www.ncbi.nlm.nih.gov/pubmed/31604797
http://dx.doi.org/10.1534/genetics.119.302235
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author Savic, Neda
Shortill, Shawn P.
Bilenky, Misha
Dobbs, Joseph M.
Dilworth, David
Hirst, Martin
Nelson, Christopher J.
author_facet Savic, Neda
Shortill, Shawn P.
Bilenky, Misha
Dobbs, Joseph M.
Dilworth, David
Hirst, Martin
Nelson, Christopher J.
author_sort Savic, Neda
collection PubMed
description Gene duplications increase organismal robustness by providing freedom for gene divergence or by increasing gene dosage. The yeast histone chaperones Fpr3 and Fpr4 are paralogs that can assemble nucleosomes in vitro; however, the genomic locations they target and their functional relationship is poorly understood. We refined the yeast synthetic genetic array approach to enable the functional dissection of gene paralogs. Applying this method to Fpr3 and Fpr4 uncovered redundant, cooperative, and divergent functions. While Fpr3 is uniquely involved in chromosome segregation, Fpr3 and Fpr4 cooperate to regulate genes involved in polyphosphate metabolism and ribosome biogenesis. We find that the TRAMP5 RNA exosome is critical for fitness in Δfpr3Δfpr4 yeast and leverage this information to identify an important role for Fpr4 at the 5′ ends of protein coding genes. Additionally, Fpr4 and TRAMP5 negatively regulate RNAs from the nontranscribed spacers of ribosomal DNA. Yeast lacking Fpr3 and Fpr4 exhibit a genome instability phenotype at the ribosomal DNA, which implies that these histone chaperones regulate chromatin structure and DNA access at this location. Taken together. we provide genetic and transcriptomic evidence that Fpr3 and Fpr4 operate separately, cooperatively, and redundantly to regulate a variety of chromatin environments.
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spelling pubmed-68933782019-12-05 Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast Savic, Neda Shortill, Shawn P. Bilenky, Misha Dobbs, Joseph M. Dilworth, David Hirst, Martin Nelson, Christopher J. Genetics Investigations Gene duplications increase organismal robustness by providing freedom for gene divergence or by increasing gene dosage. The yeast histone chaperones Fpr3 and Fpr4 are paralogs that can assemble nucleosomes in vitro; however, the genomic locations they target and their functional relationship is poorly understood. We refined the yeast synthetic genetic array approach to enable the functional dissection of gene paralogs. Applying this method to Fpr3 and Fpr4 uncovered redundant, cooperative, and divergent functions. While Fpr3 is uniquely involved in chromosome segregation, Fpr3 and Fpr4 cooperate to regulate genes involved in polyphosphate metabolism and ribosome biogenesis. We find that the TRAMP5 RNA exosome is critical for fitness in Δfpr3Δfpr4 yeast and leverage this information to identify an important role for Fpr4 at the 5′ ends of protein coding genes. Additionally, Fpr4 and TRAMP5 negatively regulate RNAs from the nontranscribed spacers of ribosomal DNA. Yeast lacking Fpr3 and Fpr4 exhibit a genome instability phenotype at the ribosomal DNA, which implies that these histone chaperones regulate chromatin structure and DNA access at this location. Taken together. we provide genetic and transcriptomic evidence that Fpr3 and Fpr4 operate separately, cooperatively, and redundantly to regulate a variety of chromatin environments. Genetics Society of America 2019-12 2019-10-11 /pmc/articles/PMC6893378/ /pubmed/31604797 http://dx.doi.org/10.1534/genetics.119.302235 Text en Copyright © 2019 Savic et al. Available freely online through the author-supported open access option. This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Investigations
Savic, Neda
Shortill, Shawn P.
Bilenky, Misha
Dobbs, Joseph M.
Dilworth, David
Hirst, Martin
Nelson, Christopher J.
Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast
title Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast
title_full Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast
title_fullStr Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast
title_full_unstemmed Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast
title_short Histone Chaperone Paralogs Have Redundant, Cooperative, and Divergent Functions in Yeast
title_sort histone chaperone paralogs have redundant, cooperative, and divergent functions in yeast
topic Investigations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6893378/
https://www.ncbi.nlm.nih.gov/pubmed/31604797
http://dx.doi.org/10.1534/genetics.119.302235
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