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耗散门控和级联DNA网络

Dissipative Gated and Cascaded DNA Networks.

作者信息

Zhou Zhixin, Ouyang Yu, Wang Jianbang, Willner Itamar

机构信息

The Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.

出版信息

J Am Chem Soc. 2021 Apr 7;143(13):5071-5079. doi: 10.1021/jacs.1c00486. Epub 2021 Mar 23.

Abstract

Nucleic acid based, out-of-equilibrium, dissipative networks driven by nucleic acid fuels coupled to the nicking enzyme, Nt.BbvCI, are presented. One set of experiments includes a functional module consisting of a duplex and two fluorophore-labeled strands. The fuel-triggered activation of the functional module leads to a supramolecular intermediate composed of a template bound to the two fluorophore-labeled strands. Nicking of the fuel strand by Nt.BbvCI yields "waste" products, resulting in the regeneration of original system. The transient dissipative behavior of the systems is probed by following the FRET signal generated by the fluorophore labels associated with the intermediate supramolecular complex. The second set of experiments introduces two functional modules activated in parallel by the fuel strand. Using two inhibitors, I or I, the selective gated dissipative operation of the networks is demonstrated. Finally, experiments presenting the intercommunication and cascading of two dissipative networks are introduced. Subjecting the networks to the fuel strands leads to intercommunication between the networks by strand-transfer and strand-feedback processes, allowing the cascaded dissipative operation of the assembly. The experimental results of the different dissipative systems are accompanied by kinetic models and computational simulations. The computational simulations provide useful means to predict the dissipative transient patterns of the systems at different auxiliary conditions.

摘要

本文介绍了由核酸燃料驱动并与切口酶Nt.BbvCI偶联的基于核酸的非平衡耗散网络。一组实验包括一个由双链体和两条荧光团标记链组成的功能模块。功能模块的燃料触发激活导致形成一种超分子中间体,该中间体由与两条荧光团标记链结合的模板组成。Nt.BbvCI对燃料链的切割产生“废物”产物,从而导致原始系统的再生。通过跟踪与中间超分子复合物相关的荧光团标记产生的FRET信号,探究了系统的瞬态耗散行为。第二组实验引入了由燃料链并行激活的两个功能模块。使用两种抑制剂I或I,证明了网络的选择性门控耗散操作。最后,介绍了展示两个耗散网络相互通信和级联的实验。使网络受到燃料链的作用会通过链转移和链反馈过程导致网络之间的相互通信,从而实现组件的级联耗散操作。不同耗散系统的实验结果伴有动力学模型和计算模拟。计算模拟为预测系统在不同辅助条件下的耗散瞬态模式提供了有用的手段。

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