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Exploring the Binding Mechanism and Dynamics of EndoMS/NucS to Mismatched dsDNA
Yanjun Zhang1, Shengyou Huang2
1School of Physics, Huazhong University of Science and Technology, Wuhan 430074, Hubei, China. yjz@hust.edu.cn.
Abstract:
The well-known mismatch repair (MMR) machinery, MutS/MutL, is absent in numerous Archaea and some Bacteria. Recent studies have shown that EndoMS/NucS has the ability to cleave double-stranded DNA (dsDNA) containing a mismatched base pair, which suggests a novel mismatch repair process. However, the recognition mechanism and the binding process of EndoMS/NucS in the MMR pathway remain unclear. In this study, we investigate the binding dynamics of EndoMS/NucS to mismatched dsDNA and its energy as a function of the angle between the two C-terminal domains of EndoMS/NucS, through molecular docking and extensive molecular dynamics (MD) simulations. It is found that there exists a half-open transition state corresponding to an energy barrier (at an activation angle of approximately 80 ∘ ) between the open state and the closed state, according to the energy curve. When the angle is larger than the activation angle, the C-terminal domains can move freely and tend to change to the open state (local energy minimum). Otherwise, the C-terminal domains will interact with the mismatched dsDNA directly and converge to the closed state at the global energy minimum. As such, this two-state system enables the exposed N-terminal domains of EndoMS/NucS to recognize mismatched dsDNA during the open state and then stabilize the binding of the C-terminal domains of EndoMS/NucS to the mismatched dsDNA during the closed state. We also investigate how the EndoMS/NucS recognizes and binds to mismatched dsDNA, as well as the effects of K + ions. The results provide insights into the recognition and binding mechanisms of EndoMS/NucS to mismatched dsDNA in the MMR pathway.
Insights
EndoMS/NucS uses a two-state system to recognize and bind mismatched DNA, crucial for DNA repair in organisms lacking traditional mismatch repair (MMR) machinery.
Area of Science:
- Molecular Biology
- Biochemistry
- Computational Biology
Background:
- The mismatch repair (MMR) machinery, MutS/MutL, is absent in many Archaea and some Bacteria.
- EndoMS/NucS enzymes show potential for a novel DNA repair pathway by cleaving mismatched double-stranded DNA (dsDNA).
Purpose of the Study:
- To elucidate the binding dynamics and recognition mechanism of EndoMS/NucS to mismatched dsDNA.
- To understand the role of C-terminal domain angles in EndoMS/NucS binding and function.
Main Methods:
- Molecular docking simulations were employed to model EndoMS/NucS interactions.
- Extensive molecular dynamics (MD) simulations were performed to analyze binding dynamics and energy landscapes.
- The influence of K+ ions on binding was investigated.
Main Results:
- A two-state system (open and closed) for EndoMS/NucS binding to mismatched dsDNA was identified.
- A transition state with an energy barrier at an activation angle of ~80° was observed between the open and closed states.
- The open state facilitates recognition, while the closed state stabilizes binding to mismatched dsDNA.
Conclusions:
- The two-state mechanism allows EndoMS/NucS to effectively recognize and bind mismatched dsDNA.
- This mechanism provides insights into DNA repair pathways in organisms lacking canonical MMR proteins.
- The findings contribute to understanding the molecular basis of DNA mismatch repair by EndoMS/NucS.
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