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Updated: Apr 30, 2026

Combining Single-molecule Manipulation and Imaging for the Study of Protein-DNA Interactions
Published on: August 27, 2014
From thermal cycling PCR to isothermal RPA: vibrational strong coupling as a new physical control axis for DNA
Chuang Huang1, Kaihao Gu1, Jiaqi Lian1
1Terahertz Technology Innovation Research Institute, Terahertz Spectrum and Imaging Technology Cooperative Innovation Center, Shanghai Key Lab of Modern Optical System, School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200093, P. R. China. 15221338046@qq.com.
Abstract:
The emergence of vibrational strong coupling (VSC) strategies has reshaped how biochemical reactions are regulated-not by chemical additives or thermal cycling, but through vacuum-field-mediated restructuring of solvent dynamics and energy landscapes. This Perspective bridges fundamental developments in cavity-modified enzymatic catalysis with the unique biochemical architecture of recombinase polymerase amplification (RPA), a low-temperature, hydration-regulated nucleic acid amplification system. Earlier enzyme-specific VSC studies established that coupling the O-H stretching manifold of water to Fabry-Pérot (FP) modes reorganizes hydrogen bond topology, alters activation barriers, and selectively accelerates or suppresses catalytic turnover depending on vibrational mode alignment. These mechanistic principles translate directly to multi-enzyme amplification: recent experiments demonstrate that tuning the cavity length to the O-H stretching band of water modulates the RPA product yield, with on-resonance coupling suppressing amplification efficiency and off-resonance conditions restoring activity. Because RPA relies on hydration-assisted strand invasion, Mg2+-mediated recombinase filament formation, and solvent-regulated polymerase elongation, it represents a particularly responsive platform for cavity-controlled biochemical amplification. We further outline how dielectric engineering, microfluidic confinement, and multimode photonic architectures may enable deterministic control of amplification kinetics and selectivity. This work recasts optical cavities as active thermodynamic variables capable of sculpting biochemical free-energy landscapes, enabling enzyme systems that respond to field structure rather than bulk chemistry.
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