Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X.
African swine fever virus (ASFV) can cause highly lethal disease in pigs and is becoming a global threat. ASFV DNA Polymerase X (AsfvPolX) is the most distinctive DNA polymerase identified to date; it lacks two DNA-binding domains (the thumb domain and 8-KD domain) conserved in the homologous protei...
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2017-02-01
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doaj-a2a134d72b104d20b4537ce233b117572021-07-02T05:26:21ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852017-02-01152e100259910.1371/journal.pbio.1002599Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X.Yiqing ChenJing ZhangHehua LiuYanqing GaoXuhang LiLina ZhengRuixue CuiQingqing YaoLiang RongJixi LiZhen HuangJinbiao MaJianhua GanAfrican swine fever virus (ASFV) can cause highly lethal disease in pigs and is becoming a global threat. ASFV DNA Polymerase X (AsfvPolX) is the most distinctive DNA polymerase identified to date; it lacks two DNA-binding domains (the thumb domain and 8-KD domain) conserved in the homologous proteins. AsfvPolX catalyzes the gap-filling reaction during the DNA repair process of the ASFV virus genome; it is highly error prone and plays an important role during the strategic mutagenesis of the viral genome. The structural basis underlying the natural substrate binding and the most frequent dG:dGTP misincorporation of AsfvPolX remain poorly understood. Here, we report eight AsfvPolX complex structures; our structures demonstrate that AsfvPolX has one unique 5'-phosphate (5'-P) binding pocket, which can favor the productive catalytic complex assembly and enhance the dGTP misincorporation efficiency. In combination with mutagenesis and in vitro catalytic assays, our study also reveals the functional roles of the platform His115-Arg127 and the hydrophobic residues Val120 and Leu123 in dG:dGTP misincorporation and can provide information for rational drug design to help combat ASFV in the future.http://europepmc.org/articles/PMC5330486?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yiqing Chen Jing Zhang Hehua Liu Yanqing Gao Xuhang Li Lina Zheng Ruixue Cui Qingqing Yao Liang Rong Jixi Li Zhen Huang Jinbiao Ma Jianhua Gan |
spellingShingle |
Yiqing Chen Jing Zhang Hehua Liu Yanqing Gao Xuhang Li Lina Zheng Ruixue Cui Qingqing Yao Liang Rong Jixi Li Zhen Huang Jinbiao Ma Jianhua Gan Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X. PLoS Biology |
author_facet |
Yiqing Chen Jing Zhang Hehua Liu Yanqing Gao Xuhang Li Lina Zheng Ruixue Cui Qingqing Yao Liang Rong Jixi Li Zhen Huang Jinbiao Ma Jianhua Gan |
author_sort |
Yiqing Chen |
title |
Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X. |
title_short |
Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X. |
title_full |
Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X. |
title_fullStr |
Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X. |
title_full_unstemmed |
Unique 5'-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X. |
title_sort |
unique 5'-p recognition and basis for dg:dgtp misincorporation of asfv dna polymerase x. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Biology |
issn |
1544-9173 1545-7885 |
publishDate |
2017-02-01 |
description |
African swine fever virus (ASFV) can cause highly lethal disease in pigs and is becoming a global threat. ASFV DNA Polymerase X (AsfvPolX) is the most distinctive DNA polymerase identified to date; it lacks two DNA-binding domains (the thumb domain and 8-KD domain) conserved in the homologous proteins. AsfvPolX catalyzes the gap-filling reaction during the DNA repair process of the ASFV virus genome; it is highly error prone and plays an important role during the strategic mutagenesis of the viral genome. The structural basis underlying the natural substrate binding and the most frequent dG:dGTP misincorporation of AsfvPolX remain poorly understood. Here, we report eight AsfvPolX complex structures; our structures demonstrate that AsfvPolX has one unique 5'-phosphate (5'-P) binding pocket, which can favor the productive catalytic complex assembly and enhance the dGTP misincorporation efficiency. In combination with mutagenesis and in vitro catalytic assays, our study also reveals the functional roles of the platform His115-Arg127 and the hydrophobic residues Val120 and Leu123 in dG:dGTP misincorporation and can provide information for rational drug design to help combat ASFV in the future. |
url |
http://europepmc.org/articles/PMC5330486?pdf=render |
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