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Design of hidden thermodynamic driving for non-equilibrium systems via mismatch elimination during DNA strand displacement

机译:DNA股线置换期间失配消除非平衡系统隐藏热力学驾驶的设计

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Recent years have seen great advances in the development of synthetic self-assembling molecular systems. Designing out-of-equilibrium architectures, however, requires a more subtle control over the thermodynamics and kinetics of reactions. We propose a mechanism for enhancing the thermodynamic drive of DNA strand-displacement reactions whilst barely perturbing forward reaction rates: the introduction of mismatches within the initial duplex. Through a combination of experiment and simulation, we demonstrate that displacement rates are strongly sensitive to mismatch location and can be tuned by rational design. By placing mismatches away from duplex ends, the thermodynamic drive for a strand-displacement reaction can be varied without significantly affecting the forward reaction rate. This hidden thermodynamic driving motif is ideal for the engineering of non-equilibrium systems that rely on catalytic control and must be robust to leak reactions.
机译:近年来,在合成自组装分子系统的发展中看到了巨大进展。然而,设计超均衡架构需要更微妙地控制热力学和反应动力学。我们提出了一种提高DNA链 - 位移反应的热力学驱动的机制,同时几乎没有动现前对反应速率:在初始双链体内引入不匹配。通过实验和模拟的组合,我们证明了位移率对不匹配位置非常敏感,并且可以通过合理设计进行调整。通过将不匹配远离双相端,可以改变用于股线置换反应的热力学驱动,而不会显着影响前向反应速率。这种隐藏的热力动力驱动图案是依赖于催化控制的非平衡系统的工程,并且必须坚固地泄漏反应。

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