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Polymer-catalyzed DNA Assembly Relies on Weak Non-Covalent Interactions

Cell reports physical science(2024)

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摘要
In general, molecular interactions with high binding affinities are preferred when constructing self -assembly systems. Herein, we demonstrate that weak non -covalent interactions, although not advantageous in constructing thermodynamically stable assemblies, can play a vital role in regulating assembly kinetics. Positively charged polymer poly(lysine)-graft-poly(ethylene glycol) (PLL-gPEG) can enrich DNA strands and lower the activation barrier for DNA strand displacements. The acceleration effect versus affinity between polymers and DNA follows a volcano -like plot, akin to the law governing catalysts in covalent synthesis. Optimal acceleration is achieved when the affinity is neither too strong nor too weak (around 10 5 to 10 7 M - 1 ). In this case, polymer -catalyzed DNA strand displacement follows an assembly -while -bound mechanism. Due to relatively weak and dynamic binding, DNA strands reversibly associate with and dissociate from PLL-g-PEG, enabling conformational adjustments of DNA that facilitate strand displacement. The volcano relationship and assembly -while -bound mechanism relying on weak interactions may be widely applicable in designing catalyzed -assembly systems.
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关键词
DNA strand displacement,assembly while bound,volcano plots,catassembly,assisted assembly,catalyzed assembly,assembly kinetics,weak non-covalent interactions,dynamic binding
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