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◆ Analytical Chemistry2026-04-20· Chemistry

Overcoming the Thermodynamic Diffusion Barrier in DNA Cascade Amplifiers via Spatially Confined Entropy Reduction: A Versatile Kinetic Engineering Framework

Zhenyu Wang, Youwei Chen, Zhiyi Wu, Bingjie Zhu, Botao Xu, Xiqin Wang, Jiaolai Jiang, Zhengwei Xiong, Wen Yun, Lizhu Yang

原始摘要(英文原文)· Original abstract
The reaction efficiency of solution-phase DNA cascade amplifiers is fundamentally constrained by stochastic Brownian motion, creating a thermodynamic diffusion bottleneck that limits sensitivity and speed. To overcome this, we present a general kinetic engineering framework based on spatially confined entropy reduction. By integrating a DNA tetrahedron scaffold with a cascade amplification circuit, we successfully transition the reaction from a stochastic dilute-phase regime to a deterministic pseudosolid-phase regime. For the first time, we employ phase-space kinetic mapping to visualize the entropy-driven acceleration in DNA nanomachines. This comprehensive analysis reveals that this architecture increases the effective local concentration by 4 orders of magnitude by prepaying the entropic cost of molecular collision. Using targets spanning small molecules (BPA), macromolecules (Thrombin), and nucleic acids (miRNA), the system achieved a detection limit of 0.1 pM with rapid kinetics. This work establishes a theoretical blueprint. Crucially, the phase-space kinetic mapping framework proposed here serves as a universal toolkit for the community, offering a new dimension to evaluate and optimize next-generation DNA cascade amplifiers.
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Overcoming the Thermodynamic Diffusion Barrier in DNA Cascade Amplifiers via Spatially Confined Entropy Reduction: A Versatile Kinetic Engineering Framework — 科研速览 Science Skim