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Updated: May 29, 2025

Plasmid-derived DNA Strand Displacement Gates for Implementing Chemical Reaction Networks
Published on: November 25, 2015
A gate-clamp mechanism for ssDNA translocation by DdmD in Vibrio cholerae plasmid defense
Ruoyu Li1,2, Yusong Liu3,4, Haishan Gao3,4
1College of Chemical Engineering, Fuzhou University, Fujian 350108, China.
Abstract:
The DdmDE antiplasmid system, consisting of the helicase-nuclease DdmD and the prokaryotic Argonaute (pAgo) protein DdmE, plays a crucial role in defending Vibrio cholerae against plasmids. Guided by DNA, DdmE specifically targets plasmids, disassembles the DdmD dimer, and forms a DdmD-DdmE handover complex to facilitate plasmid degradation. However, the precise ATP-dependent DNA translocation mechanism of DdmD has remained unclear. Here, we present cryo-EM structures of DdmD bound to single-stranded DNA (ssDNA) in nucleotide-free, ATPγS-bound, and ADP-bound states. These structures, combined with biochemical analysis, reveal a unique "gate-clamp" mechanism for ssDNA translocation by DdmD. Upon ATP binding, arginine finger residues R855 and R858 reorient to interact with the γ-phosphate, triggering HD2 domain movement. This shift repositions the gate residue Q781, causing a flip of the 3' flank base, which is then clamped by residue F639. After ATP hydrolysis, the arginine finger releases the nucleotide, inducing HD2 to return to its open state. This conformational change enables DdmD to translocate along ssDNA by one nucleotide in the 5' to 3' direction. This study provides new insights into the ATP-dependent translocation of DdmD and contributes to understanding the mechanistic diversity within SF2 helicases.
Insights
The DdmDE antiplasmid system uses DdmD helicase to degrade foreign DNA. This study reveals DdmD’s unique "gate-clamp" mechanism for ATP-dependent DNA translocation, clarifying its role in bacterial defense.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- The DdmDE system in Vibrio cholerae defends against plasmids using helicase-nuclease DdmD and prokaryotic Argonaute DdmE.
- DdmE targets plasmids, disassembles DdmD, and forms a complex for DNA degradation.
- The ATP-dependent DNA translocation mechanism of DdmD was previously unclear.
Purpose of the Study:
- To elucidate the ATP-dependent DNA translocation mechanism of the DdmD helicase.
- To provide structural insights into DdmD's interaction with single-stranded DNA (ssDNA) during translocation.
Main Methods:
- Cryo-electron microscopy (cryo-EM) to determine structures of DdmD bound to ssDNA.
- Biochemical analyses to support mechanistic findings.
Main Results:
- Cryo-EM structures revealed DdmD in nucleotide-free, ATPγS-bound, and ADP-bound states.
- A unique "gate-clamp" mechanism for ssDNA translocation was identified.
- ATP binding triggers conformational changes involving arginine fingers and the HD2 domain, facilitating nucleotide-by-nucleotide translocation in the 5' to 3' direction.
Conclusions:
- The study clarifies the ssDNA translocation mechanism of DdmD via a "gate-clamp" process.
- Findings contribute to understanding the functional diversity of SF2 helicases.
- Provides mechanistic insights into bacterial antiplasmid defense systems.
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