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An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres

In the base excision repair pathway, MYH/MUTYH DNA glycosylase prevents mutations by removing adenine mispaired with 8-oxoG, a frequent oxidative lesion. MYH glycosylase activity is enhanced by Rad9-Rad1-Hus1 (9-1-1) checkpoint clamp and SIRT6 histone/protein deacetylase. Here, we show that MYH, SIR...

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Autores principales: Tan, Jun, Wang, Xiangyu, Hwang, Bor-Jang, Gonzales, Rex, Konen, Olivia, Lan, Li, Lu, A-Lien
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7585086/
https://www.ncbi.nlm.nih.gov/pubmed/32991318
http://dx.doi.org/10.18632/aging.103934
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author Tan, Jun
Wang, Xiangyu
Hwang, Bor-Jang
Gonzales, Rex
Konen, Olivia
Lan, Li
Lu, A-Lien
author_facet Tan, Jun
Wang, Xiangyu
Hwang, Bor-Jang
Gonzales, Rex
Konen, Olivia
Lan, Li
Lu, A-Lien
author_sort Tan, Jun
collection PubMed
description In the base excision repair pathway, MYH/MUTYH DNA glycosylase prevents mutations by removing adenine mispaired with 8-oxoG, a frequent oxidative lesion. MYH glycosylase activity is enhanced by Rad9-Rad1-Hus1 (9-1-1) checkpoint clamp and SIRT6 histone/protein deacetylase. Here, we show that MYH, SIRT6, and 9-1-1 are recruited to confined oxidatively damaged regions on telomeres in mammalian cells. Using different knockout cells, we show that SIRT6 responds to damaged telomeres very early, and then recruits MYH and Hus1 following oxidative stress. However, the recruitment of Hus1 to damaged telomeres is partially dependent on SIRT6. The catalytic activities of SIRT6 are not important for SIRT6 response but are essential for MYH recruitment to damaged telomeres. Compared to wild-type MYH, the recruitment of hMYH(V315A) mutant (defective in both SIRT6 and Hus1 interactions), but not hMYH(Q324H) mutant (defective in Hus1 interaction only), to damaged telomeres is severely reduced. The formation of MYH/SIRT6/9-1-1 complex is of biological significance as interrupting their interactions can increase cell’s sensitivity to H(2)O(2) and/or elevate cellular 8-oxoG levels after H(2)O(2) treatment. Our results establish that SIRT6 acts as an early sensor of BER enzymes and both SIRT6 and 9-1-1 serve critical roles in DNA repair to maintain telomere integrity.
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spelling pubmed-75850862020-11-03 An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres Tan, Jun Wang, Xiangyu Hwang, Bor-Jang Gonzales, Rex Konen, Olivia Lan, Li Lu, A-Lien Aging (Albany NY) Priority Research Paper In the base excision repair pathway, MYH/MUTYH DNA glycosylase prevents mutations by removing adenine mispaired with 8-oxoG, a frequent oxidative lesion. MYH glycosylase activity is enhanced by Rad9-Rad1-Hus1 (9-1-1) checkpoint clamp and SIRT6 histone/protein deacetylase. Here, we show that MYH, SIRT6, and 9-1-1 are recruited to confined oxidatively damaged regions on telomeres in mammalian cells. Using different knockout cells, we show that SIRT6 responds to damaged telomeres very early, and then recruits MYH and Hus1 following oxidative stress. However, the recruitment of Hus1 to damaged telomeres is partially dependent on SIRT6. The catalytic activities of SIRT6 are not important for SIRT6 response but are essential for MYH recruitment to damaged telomeres. Compared to wild-type MYH, the recruitment of hMYH(V315A) mutant (defective in both SIRT6 and Hus1 interactions), but not hMYH(Q324H) mutant (defective in Hus1 interaction only), to damaged telomeres is severely reduced. The formation of MYH/SIRT6/9-1-1 complex is of biological significance as interrupting their interactions can increase cell’s sensitivity to H(2)O(2) and/or elevate cellular 8-oxoG levels after H(2)O(2) treatment. Our results establish that SIRT6 acts as an early sensor of BER enzymes and both SIRT6 and 9-1-1 serve critical roles in DNA repair to maintain telomere integrity. Impact Journals 2020-09-29 /pmc/articles/PMC7585086/ /pubmed/32991318 http://dx.doi.org/10.18632/aging.103934 Text en Copyright: © 2020 Tan et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/3.0/) (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Priority Research Paper
Tan, Jun
Wang, Xiangyu
Hwang, Bor-Jang
Gonzales, Rex
Konen, Olivia
Lan, Li
Lu, A-Lien
An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres
title An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres
title_full An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres
title_fullStr An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres
title_full_unstemmed An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres
title_short An ordered assembly of MYH glycosylase, SIRT6 protein deacetylase, and Rad9-Rad1-Hus1 checkpoint clamp at oxidatively damaged telomeres
title_sort ordered assembly of myh glycosylase, sirt6 protein deacetylase, and rad9-rad1-hus1 checkpoint clamp at oxidatively damaged telomeres
topic Priority Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7585086/
https://www.ncbi.nlm.nih.gov/pubmed/32991318
http://dx.doi.org/10.18632/aging.103934
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