Cargando…

A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate

To protect viral DNA against the host bacterial restriction system, bacterio­phages utilize a special modification system – hydroxymethylation – in which dCMP hydroxymethylase (dCH) converts dCMP to 5-hydroxymethyl-dCMP (5hm-dCMP) using N5,N10-methylenetetrahydrofolate as a cofactor. Despite shared...

Descripción completa

Detalles Bibliográficos
Autores principales: Park, Si Hoon, Suh, Se Won, Song, Hyun Kyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6400193/
https://www.ncbi.nlm.nih.gov/pubmed/30867918
http://dx.doi.org/10.1107/S2052252518018274
_version_ 1783399913417080832
author Park, Si Hoon
Suh, Se Won
Song, Hyun Kyu
author_facet Park, Si Hoon
Suh, Se Won
Song, Hyun Kyu
author_sort Park, Si Hoon
collection PubMed
description To protect viral DNA against the host bacterial restriction system, bacterio­phages utilize a special modification system – hydroxymethylation – in which dCMP hydroxymethylase (dCH) converts dCMP to 5-hydroxymethyl-dCMP (5hm-dCMP) using N5,N10-methylenetetrahydrofolate as a cofactor. Despite shared similarity with thymidylate synthase (TS), dCH catalyzes hydroxylation through an exocyclic methylene intermediate during the last step, which is different from the hydride transfer that occurs with TS. In contrast to the extensively studied TS, the hydroxymethylation mechanism of a cytosine base is not well understood due to the lack of a ternary complex structure of dCH in the presence of both its substrate and cofactor. This paper reports the crystal structure of the ternary complex of dCH from bacteriophage T4 (T4dCH) with dCMP and tetrahydrofolate at 1.9 Å resolution. The authors found key residues of T4dCH for accommodating the cofactor without a C-terminal tail, an optimized network of ordered water molecules and a hydrophobic gating mechanism for cofactor regulation. In combination with biochemical data on structure-based mutants, key residues within T4dCH and a substrate water molecule for hydroxymethylation were identified. Based on these results, a complete enzyme mechanism of dCH and signature residues that can identify dCH enzymes within the TS family have been proposed. These findings provide a fundamental basis for understanding the pyrimidine modification system.
format Online
Article
Text
id pubmed-6400193
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher International Union of Crystallography
record_format MEDLINE/PubMed
spelling pubmed-64001932019-03-13 A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate Park, Si Hoon Suh, Se Won Song, Hyun Kyu IUCrJ Research Papers To protect viral DNA against the host bacterial restriction system, bacterio­phages utilize a special modification system – hydroxymethylation – in which dCMP hydroxymethylase (dCH) converts dCMP to 5-hydroxymethyl-dCMP (5hm-dCMP) using N5,N10-methylenetetrahydrofolate as a cofactor. Despite shared similarity with thymidylate synthase (TS), dCH catalyzes hydroxylation through an exocyclic methylene intermediate during the last step, which is different from the hydride transfer that occurs with TS. In contrast to the extensively studied TS, the hydroxymethylation mechanism of a cytosine base is not well understood due to the lack of a ternary complex structure of dCH in the presence of both its substrate and cofactor. This paper reports the crystal structure of the ternary complex of dCH from bacteriophage T4 (T4dCH) with dCMP and tetrahydrofolate at 1.9 Å resolution. The authors found key residues of T4dCH for accommodating the cofactor without a C-terminal tail, an optimized network of ordered water molecules and a hydrophobic gating mechanism for cofactor regulation. In combination with biochemical data on structure-based mutants, key residues within T4dCH and a substrate water molecule for hydroxymethylation were identified. Based on these results, a complete enzyme mechanism of dCH and signature residues that can identify dCH enzymes within the TS family have been proposed. These findings provide a fundamental basis for understanding the pyrimidine modification system. International Union of Crystallography 2019-01-24 /pmc/articles/PMC6400193/ /pubmed/30867918 http://dx.doi.org/10.1107/S2052252518018274 Text en © Park, Suh and Song 2019 http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.http://creativecommons.org/licenses/by/4.0/
spellingShingle Research Papers
Park, Si Hoon
Suh, Se Won
Song, Hyun Kyu
A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate
title A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate
title_full A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate
title_fullStr A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate
title_full_unstemmed A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate
title_short A cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage T4 with its cofactor and substrate
title_sort cytosine modification mechanism revealed by the structure of a ternary complex of deoxycytidylate hydroxymethylase from bacteriophage t4 with its cofactor and substrate
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6400193/
https://www.ncbi.nlm.nih.gov/pubmed/30867918
http://dx.doi.org/10.1107/S2052252518018274
work_keys_str_mv AT parksihoon acytosinemodificationmechanismrevealedbythestructureofaternarycomplexofdeoxycytidylatehydroxymethylasefrombacteriophaget4withitscofactorandsubstrate
AT suhsewon acytosinemodificationmechanismrevealedbythestructureofaternarycomplexofdeoxycytidylatehydroxymethylasefrombacteriophaget4withitscofactorandsubstrate
AT songhyunkyu acytosinemodificationmechanismrevealedbythestructureofaternarycomplexofdeoxycytidylatehydroxymethylasefrombacteriophaget4withitscofactorandsubstrate
AT parksihoon cytosinemodificationmechanismrevealedbythestructureofaternarycomplexofdeoxycytidylatehydroxymethylasefrombacteriophaget4withitscofactorandsubstrate
AT suhsewon cytosinemodificationmechanismrevealedbythestructureofaternarycomplexofdeoxycytidylatehydroxymethylasefrombacteriophaget4withitscofactorandsubstrate
AT songhyunkyu cytosinemodificationmechanismrevealedbythestructureofaternarycomplexofdeoxycytidylatehydroxymethylasefrombacteriophaget4withitscofactorandsubstrate