4.8 Article

Conformational model of the Holliday junction transition deduced from molecular dynamics simulations

期刊

NUCLEIC ACIDS RESEARCH
卷 32, 期 22, 页码 6683-6695

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OXFORD UNIV PRESS
DOI: 10.1093/nar/gkh1006

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资金

  1. NCRR NIH HHS [5 P41RR05969-04, P41 RR005969] Funding Source: Medline
  2. NIGMS NIH HHS [R01 GM065367, R01GM065367] Funding Source: Medline
  3. NATIONAL CENTER FOR RESEARCH RESOURCES [P41RR005969] Funding Source: NIH RePORTER
  4. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [R01GM065367] Funding Source: NIH RePORTER

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Homologous recombination plays a key role in the restart of stalled replication forks and in the generation of genetic diversity. During this process, two homologous DNA molecules undergo strand exchange to form a four-way DNA (Holliday) junction. In the presence of metal ions, the Holliday junction folds into the stacked-X structure that has two alternative conformers. Experiments have revealed the spontaneous transitions between these conformers, but their detailed pathways are not known. Here, we report a series of molecular dynamics simulations of the Holliday junction at physiological and elevated (400 K) temperatures. The simulations reveal new tetrahedral intermediates and suggest a schematic framework for conformer transitions. The tetrahedral intermediates bear resemblance to the junction conformation in complex with a junction-resolving enzyme, T7 endonuclease I, and indeed, one intermediate forms a stable complex with the enzyme as demonstrated in one simulation. We also describe free energy minima for various states of the Holliday junction system, which arise during conformer transitions. The results show that magnesium ions stabilize the stacked-X form and destabilize the open and tetrahedral intermediates. Overall, our study provides a detailed dynamic model of the Holliday junction undergoing a conformer transition.

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