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Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis

The base excision repair DNA glycosylase MutY homolog (MYH) is responsible for removing adenines misincorporated into DNA opposite guanine or 7,8-dihydro-8-oxo-guanine (8-oxoG), thereby preventing G:C to T:A mutations. Biallelic germline mutations in the human MYH gene predispose individuals to mult...

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Autores principales: Bai, Haibo, Jones, Siân, Guan, Xin, Wilson, Teresa M., Sampson, Julian R., Cheadle, Jeremy P., Lu, A-Lien
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC548354/
https://www.ncbi.nlm.nih.gov/pubmed/15673720
http://dx.doi.org/10.1093/nar/gki209
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author Bai, Haibo
Jones, Siân
Guan, Xin
Wilson, Teresa M.
Sampson, Julian R.
Cheadle, Jeremy P.
Lu, A-Lien
author_facet Bai, Haibo
Jones, Siân
Guan, Xin
Wilson, Teresa M.
Sampson, Julian R.
Cheadle, Jeremy P.
Lu, A-Lien
author_sort Bai, Haibo
collection PubMed
description The base excision repair DNA glycosylase MutY homolog (MYH) is responsible for removing adenines misincorporated into DNA opposite guanine or 7,8-dihydro-8-oxo-guanine (8-oxoG), thereby preventing G:C to T:A mutations. Biallelic germline mutations in the human MYH gene predispose individuals to multiple colorectal adenomas and carcinoma. We have recently demonstrated that hMYH interacts with the mismatch repair protein hMSH6, and that the hMSH2/hMSH6 (hMutSα) heterodimer stimulates hMYH activity. Here, we characterize the functional effect of two missense mutations (R227W and V232F) associated with hMYH polyposis that lie within, or adjacent to, the putative hMSH6 binding domain. Neither missense mutation affects the physical interaction between hMYH and hMSH6. However, hMYH(R227W) has a severe defect in A/8-oxoG binding and glycosylase activities, while hMYH(V232F) has reduced A/8-oxoG binding and glycosylase activities. The glycosylase activity of the V232F mutant can be partially stimulated by hMutSα but cannot be restored to the wild-type level. Both mutants also fail to complement mutY-deficiency in Escherichia coli. These data define the pathogenic mechanisms underlying two further hMYH polyposis-associated mutations.
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spelling pubmed-5483542005-02-10 Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis Bai, Haibo Jones, Siân Guan, Xin Wilson, Teresa M. Sampson, Julian R. Cheadle, Jeremy P. Lu, A-Lien Nucleic Acids Res Article The base excision repair DNA glycosylase MutY homolog (MYH) is responsible for removing adenines misincorporated into DNA opposite guanine or 7,8-dihydro-8-oxo-guanine (8-oxoG), thereby preventing G:C to T:A mutations. Biallelic germline mutations in the human MYH gene predispose individuals to multiple colorectal adenomas and carcinoma. We have recently demonstrated that hMYH interacts with the mismatch repair protein hMSH6, and that the hMSH2/hMSH6 (hMutSα) heterodimer stimulates hMYH activity. Here, we characterize the functional effect of two missense mutations (R227W and V232F) associated with hMYH polyposis that lie within, or adjacent to, the putative hMSH6 binding domain. Neither missense mutation affects the physical interaction between hMYH and hMSH6. However, hMYH(R227W) has a severe defect in A/8-oxoG binding and glycosylase activities, while hMYH(V232F) has reduced A/8-oxoG binding and glycosylase activities. The glycosylase activity of the V232F mutant can be partially stimulated by hMutSα but cannot be restored to the wild-type level. Both mutants also fail to complement mutY-deficiency in Escherichia coli. These data define the pathogenic mechanisms underlying two further hMYH polyposis-associated mutations. Oxford University Press 2005 2005-01-26 /pmc/articles/PMC548354/ /pubmed/15673720 http://dx.doi.org/10.1093/nar/gki209 Text en © The Author 2005. Published by Oxford University Press. All rights reserved
spellingShingle Article
Bai, Haibo
Jones, Siân
Guan, Xin
Wilson, Teresa M.
Sampson, Julian R.
Cheadle, Jeremy P.
Lu, A-Lien
Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis
title Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis
title_full Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis
title_fullStr Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis
title_full_unstemmed Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis
title_short Functional characterization of two human MutY homolog (hMYH) missense mutations (R227W and V232F) that lie within the putative hMSH6 binding domain and are associated with hMYH polyposis
title_sort functional characterization of two human muty homolog (hmyh) missense mutations (r227w and v232f) that lie within the putative hmsh6 binding domain and are associated with hmyh polyposis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC548354/
https://www.ncbi.nlm.nih.gov/pubmed/15673720
http://dx.doi.org/10.1093/nar/gki209
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