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Logical computation using algorithmic self-assembly of DNA triple-crossover molecules

机译:使用DNA三重交叉分子的算法自组装进行逻辑计算

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Recent work has demonstrated the self-assembly of designed periodic two-dimensional arrays composed of DNA tiles, in which the intermolecular contacts are directed by 'sticky' ends. In a mathematical context, aperiodic mosaics may be formed by the self-assembly of 'Wang' tiles, a process that emulates the operation of a Turing machine. Macroscopic self-assembly has been used to perform computations; there is also a logical equivalence between DNA sticky ends and Wang tile edges. This suggests that the self-assembly of DNA-based tiles could be used to perform DNA-based computation. Algorithmic aperiodic self-assembly requires greater fidelity than periodic self-assembly, because correct tiles must compete with partially correct tiles. Here we report a one-dimensional algorithmic self-assembly of DNA triple-crossover molecules that can be used to execute four steps of a logical (cumulative XOR) operation on a string of binary bits.
机译:最近的工作证明了由DNA片组成的周期性二维阵列的自组装,其中分子间的接触由“粘性”末端引导。在数学上,非周期性镶嵌可以通过“ Wang”图块的自组装形成,该过程模拟图灵机的运行。宏观自组装已被用于执行计算。在DNA粘性末端和Wang瓷砖边缘之间也存在逻辑上的等价关系。这表明基于DNA的图块的自组装可用于执行基于DNA的计算。算法非周期性自组装比周期性自组装需要更高的保真度,因为正确的图块必须与部分正确的图块竞争。在这里,我们报告DNA三重交叉分子的一维算法自组装,该分子可用于对一串二进制位执行逻辑(累积XOR)操作的四个步骤。

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