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Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function

DNA damage-induced Rad51 focus formation is the hallmark of homologous recombination-mediated DNA repair. Earlier, we reported that Rad51 physically interacts with Hsp90, and under the condition of Hsp90 inhibition, it undergoes proteasomal degradation. Here, we show that the dynamic interaction bet...

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Autores principales: Suhane, Tanvi, Bindumadhavan, Vijayalakshmi, Fangaria, Nupur, Nair, Achuthsankar S., Tabassum, Wahida, Muley, Poorvaja, Bhattacharyya, Mrinal K., Bhattacharyya, Sunanda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6429042/
https://www.ncbi.nlm.nih.gov/pubmed/30894431
http://dx.doi.org/10.1128/mSphere.00082-19
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author Suhane, Tanvi
Bindumadhavan, Vijayalakshmi
Fangaria, Nupur
Nair, Achuthsankar S.
Tabassum, Wahida
Muley, Poorvaja
Bhattacharyya, Mrinal K.
Bhattacharyya, Sunanda
author_facet Suhane, Tanvi
Bindumadhavan, Vijayalakshmi
Fangaria, Nupur
Nair, Achuthsankar S.
Tabassum, Wahida
Muley, Poorvaja
Bhattacharyya, Mrinal K.
Bhattacharyya, Sunanda
author_sort Suhane, Tanvi
collection PubMed
description DNA damage-induced Rad51 focus formation is the hallmark of homologous recombination-mediated DNA repair. Earlier, we reported that Rad51 physically interacts with Hsp90, and under the condition of Hsp90 inhibition, it undergoes proteasomal degradation. Here, we show that the dynamic interaction between Rad51 and Hsp90 is crucial for the DNA damage-induced nuclear function of Rad51. Guided by a bioinformatics study, we generated a single mutant of Rad51, which resides at the N-terminal domain, outside the ATPase core domain. The mutant with an E to L change at residue 108 (Rad51(E108L)) was predicted to bind more strongly with Hsp90 than the wild-type (Rad51(WT)). A coimmunoprecipitation study demonstrated that there exists a distinct difference between the in vivo associations of Rad51(WT)-Hsp90 and of Rad51(E108L)-Hsp90. We found that upon DNA damage, the association between Rad51(WT) and Hsp90 was significantly reduced compared to that in the undamaged condition. However, the mutant Rad51(E108L) remained tightly associated with Hsp90 even after DNA damage. Consequently, the recruitment of Rad51(E108L) to the double-stranded broken ends was reduced significantly. The E108L-rad51 strain manifested severe sensitivity toward methyl methanesulfonate (MMS) and a complete loss of gene conversion efficiency, a phenotype similar to that of the Δrad51 strain. Previously, some of the N-terminal domain mutants of Rad51 were identified in a screen for a Rad51 interaction-deficient mutant; however, our study shows that Rad51(E108L) is not defective either in the self-interaction or its interaction with the members of the Rad52 epistatic group. Our study thus identifies a novel mutant of Rad51 which, owing to its greater association with Hsp90, exhibits a severe DNA repair defect. IMPORTANCE Rad51-mediated homologous recombination is the major mechanism for repairing DNA double-strand break (DSB) repair in cancer cells. Thus, regulating Rad51 activity could be an attractive target. The sequential assembly and disassembly of Rad51 to the broken DNA ends depend on reversible protein-protein interactions. Here, we discovered that a dynamic interaction with molecular chaperone Hsp90 is one such regulatory event that governs the recruitment of Rad51 onto the damaged DNA. We uncovered that Rad51 associates with Hsp90, and upon DNA damage, this complex dissociates to facilitate the loading of Rad51 onto broken DNA. In a mutant where such dissociation is incomplete, the occupancy of Rad51 at the broken DNA is partial, which results in inefficient DNA repair. Thus, it is reasonable to propose that any small molecule that may alter the dynamics of the Rad51-Hsp90 interaction is likely to impact DSB repair in cancer cells.
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spelling pubmed-64290422019-04-03 Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function Suhane, Tanvi Bindumadhavan, Vijayalakshmi Fangaria, Nupur Nair, Achuthsankar S. Tabassum, Wahida Muley, Poorvaja Bhattacharyya, Mrinal K. Bhattacharyya, Sunanda mSphere Research Article DNA damage-induced Rad51 focus formation is the hallmark of homologous recombination-mediated DNA repair. Earlier, we reported that Rad51 physically interacts with Hsp90, and under the condition of Hsp90 inhibition, it undergoes proteasomal degradation. Here, we show that the dynamic interaction between Rad51 and Hsp90 is crucial for the DNA damage-induced nuclear function of Rad51. Guided by a bioinformatics study, we generated a single mutant of Rad51, which resides at the N-terminal domain, outside the ATPase core domain. The mutant with an E to L change at residue 108 (Rad51(E108L)) was predicted to bind more strongly with Hsp90 than the wild-type (Rad51(WT)). A coimmunoprecipitation study demonstrated that there exists a distinct difference between the in vivo associations of Rad51(WT)-Hsp90 and of Rad51(E108L)-Hsp90. We found that upon DNA damage, the association between Rad51(WT) and Hsp90 was significantly reduced compared to that in the undamaged condition. However, the mutant Rad51(E108L) remained tightly associated with Hsp90 even after DNA damage. Consequently, the recruitment of Rad51(E108L) to the double-stranded broken ends was reduced significantly. The E108L-rad51 strain manifested severe sensitivity toward methyl methanesulfonate (MMS) and a complete loss of gene conversion efficiency, a phenotype similar to that of the Δrad51 strain. Previously, some of the N-terminal domain mutants of Rad51 were identified in a screen for a Rad51 interaction-deficient mutant; however, our study shows that Rad51(E108L) is not defective either in the self-interaction or its interaction with the members of the Rad52 epistatic group. Our study thus identifies a novel mutant of Rad51 which, owing to its greater association with Hsp90, exhibits a severe DNA repair defect. IMPORTANCE Rad51-mediated homologous recombination is the major mechanism for repairing DNA double-strand break (DSB) repair in cancer cells. Thus, regulating Rad51 activity could be an attractive target. The sequential assembly and disassembly of Rad51 to the broken DNA ends depend on reversible protein-protein interactions. Here, we discovered that a dynamic interaction with molecular chaperone Hsp90 is one such regulatory event that governs the recruitment of Rad51 onto the damaged DNA. We uncovered that Rad51 associates with Hsp90, and upon DNA damage, this complex dissociates to facilitate the loading of Rad51 onto broken DNA. In a mutant where such dissociation is incomplete, the occupancy of Rad51 at the broken DNA is partial, which results in inefficient DNA repair. Thus, it is reasonable to propose that any small molecule that may alter the dynamics of the Rad51-Hsp90 interaction is likely to impact DSB repair in cancer cells. American Society for Microbiology 2019-03-20 /pmc/articles/PMC6429042/ /pubmed/30894431 http://dx.doi.org/10.1128/mSphere.00082-19 Text en Copyright © 2019 Suhane et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Suhane, Tanvi
Bindumadhavan, Vijayalakshmi
Fangaria, Nupur
Nair, Achuthsankar S.
Tabassum, Wahida
Muley, Poorvaja
Bhattacharyya, Mrinal K.
Bhattacharyya, Sunanda
Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function
title Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function
title_full Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function
title_fullStr Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function
title_full_unstemmed Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function
title_short Glu-108 in Saccharomyces cerevisiae Rad51 Is Critical for DNA Damage-Induced Nuclear Function
title_sort glu-108 in saccharomyces cerevisiae rad51 is critical for dna damage-induced nuclear function
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6429042/
https://www.ncbi.nlm.nih.gov/pubmed/30894431
http://dx.doi.org/10.1128/mSphere.00082-19
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