TY - JOUR
T1 - Near-atomic structural model for bacterial DNA replication initiation complex and its functional insights
AU - Shimizu, Masahiro
AU - Noguchi, Yasunori
AU - Sakiyama, Yukari
AU - Kawakami, Hironori
AU - Katayama, Tsutomu
AU - Takada, Shoji
N1 - Funding Information:
We thank Dr. Masayuki Su'etsugu for construction of M13oriCMS9; Dr. Matthew J. McGrath for revising the English; and the Research Support Center, Graduate School of Medical Sciences (Kyushu University) for DNA sequencing. This work was funded by Japan Society for the Promotion of Science (JSPS) KAKENHI Grants 15H01351, 26104517, 25251019, 16J02075, 26291004, and 16H00775; and the Strategic Programs for Innovative Research Supercomputational Life Science of the Ministry of Education, Culture, Sports, Science and Technology, Japan. Y.S. was supported by a JSPS predoctoral fellowship.
PY - 2016/12/13
Y1 - 2016/12/13
N2 - Upon DNA replication initiation in Escherichia coli, the initiator protein DnaA forms higher-order complexes with the chromosomal origin oriC and a DNA-bending protein IHF. Although tertiary structures of DnaA and IHF have previously been elucidated, dynamic structures of oriC-DnaA-IHF complexes remain unknown. Here, combining computer simulations with biochemical assays, we obtained models at almost-atomic resolution for the central part of the oriC-DnaA-IHF complex. This complex can be divided into three subcomplexes; the left and right subcomplexes include pentameric DnaA bound in a head-to-tail manner and the middle subcomplex contains only a single DnaA. In the left and right subcomplexes, DnaA ATPases associated with various cellular activities (AAA+) domain III formed helices with specific structural differences in interdomain orientations, provoking a bend in the bound DNA. In the left subcomplex a continuous DnaA chain exists, including insertion of IHF into the DNA looping, consistent with the DNA unwinding function of the complex. The intervening spaces in those subcomplexes are crucial for DNA unwinding and loading of DnaB helicases. Taken together, this model provides a reasonable near-atomic level structural solution of the initiation complex, including the dynamic conformations and spatial arrangements of DnaA subcomplexes.
AB - Upon DNA replication initiation in Escherichia coli, the initiator protein DnaA forms higher-order complexes with the chromosomal origin oriC and a DNA-bending protein IHF. Although tertiary structures of DnaA and IHF have previously been elucidated, dynamic structures of oriC-DnaA-IHF complexes remain unknown. Here, combining computer simulations with biochemical assays, we obtained models at almost-atomic resolution for the central part of the oriC-DnaA-IHF complex. This complex can be divided into three subcomplexes; the left and right subcomplexes include pentameric DnaA bound in a head-to-tail manner and the middle subcomplex contains only a single DnaA. In the left and right subcomplexes, DnaA ATPases associated with various cellular activities (AAA+) domain III formed helices with specific structural differences in interdomain orientations, provoking a bend in the bound DNA. In the left subcomplex a continuous DnaA chain exists, including insertion of IHF into the DNA looping, consistent with the DNA unwinding function of the complex. The intervening spaces in those subcomplexes are crucial for DNA unwinding and loading of DnaB helicases. Taken together, this model provides a reasonable near-atomic level structural solution of the initiation complex, including the dynamic conformations and spatial arrangements of DnaA subcomplexes.
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U2 - 10.1073/pnas.1609649113
DO - 10.1073/pnas.1609649113
M3 - Article
C2 - 27911788
AN - SCOPUS:85005942690
SN - 0027-8424
VL - 113
SP - E8021-E8030
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 50
ER -