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State transitions by molecules.

机译:通过分子的状态转变。

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摘要

In our previous paper, we described a method by which a state machine is implemented by a single-stranded DNA molecule whose 3'-end sequence encodes the current state of the machine. Successive state transitions are performed in such a way that the current state is annealed onto an appropriate portion of DNA encoding the transition table of the state machine and the next state is copied to the 3'-end by extension with polymerase. In this paper, we first show that combined with parallel overlap assembly, a single series of successive transitions can solve NP-complete problems. This means that the number of necessary laboratory steps is independent from the problem size. We then report the results of two experiments concerning the implementation of our method. One is on isothermal reactions which greatly increase the efficiency of state transitions compared with reactions controlled by thermal cycles. The other is on the use of unnatural bases for avoiding out-of-frame annealing. The latter result can also be applied to many DNA-based computing paradigms.
机译:在我们之前的论文中,我们描述了一种状态机,该状态机由单链DNA分子实现,该分子的3'端序列编码该机的当前状态。连续状态转换的执行方式是将当前状态退火到编码状态机转换表的DNA的适当部分上,然后通过聚合酶的延伸将下一个状态复制到3'末端。在本文中,我们首先表明,结合并行重叠装配,单个系列的连续过渡可以解决NP完全问题。这意味着必要的实验室步骤数量与问题的大小无关。然后,我们报告有关我们方法实施的两个实验的结果。一种是等温反应,与受热循环控制的反应相比,等温反应极大地提高了状态转换的效率。另一个是使用不自然的碱基来避免帧外退火。后一结果也可以应用于许多基于DNA的计算范例。

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