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具有 DNA 多发夹基序的纳米组装逻辑门的性能。

Performance of nano-assembly logic gates with a DNA multi-hairpin motif.

机构信息

Department of Chemistry, Oregon State University, 153 Gilbert Hall, Corvallis, Oregon 97331, USA.

出版信息

Nanoscale. 2017 Jan 26;9(4):1709-1720. doi: 10.1039/c6nr07814a.

DOI:10.1039/c6nr07814a
PMID:28090611
Abstract

DNA nano-assemblies have far-reaching implications for molecular computers. Boolean logic gates made from DNA respond to specific combinations of chemical or molecular inputs. In complex samples an assortment of other chemicals and molecules may interfere with the gate's recognition and response mechanisms. For logic gates to accept an increasing number of inputs, while maintaining selectivity, their design must only respond when specific input combinations are available simultaneously. Here we present proof-of-principle for a fluorescent-based nano-assembly logic gate for three inputs. Central to the gate's design is a multi-hairpin motif that distinguishes it from other works in this area. The multi-hairpin motif facilitates a larger and increasing number of inputs and a place to generate FRET-based signal enhancement. We will show the nano-assembly logic gate worked in aqueous buffer and in crude MCF-7 cell lysate. We will demonstrate the gate's selectivity against off-analyte cocktails. Finally, multi-hairpin motifs with different chemical and physical properties were evaluated to test their logic capabilities. Future work will demonstrate the gate's ability to visually identify specific combinations of oligonucleotides called small non-coding RNAs (ncRNAs) in cells. This nano-assembly logic gate for small ncRNA has far reaching cellular computation and single-cell analysis applicability. The gate can be used for basic cellular analysis, computing and observing the unique molecular expression patterns in tumor microenvironments, and advancing the field of therapeutics.

摘要

DNA 纳米组装在分子计算机方面具有深远的意义。由 DNA 制成的布尔逻辑门对特定的化学或分子输入组合做出响应。在复杂的样本中,各种其他化学物质和分子可能会干扰门的识别和响应机制。为了使逻辑门在保持选择性的同时接受越来越多的输入,其设计必须仅在存在特定输入组合时才做出响应。在这里,我们提出了一个基于荧光的用于三个输入的纳米组装逻辑门的原理验证。该门的设计核心是一个多发夹基序,使其有别于该领域的其他工作。多发夹基序促进了更大数量和不断增加的输入,以及产生基于 FRET 的信号增强的位置。我们将展示纳米组装逻辑门在水缓冲液和粗 MCF-7 细胞裂解物中的工作情况。我们将证明门对非分析物鸡尾酒的选择性。最后,评估了具有不同化学和物理性质的多发夹基序,以测试它们的逻辑功能。未来的工作将展示该门在细胞中识别称为小非编码 RNA(ncRNA)的特定寡核苷酸组合的能力。这个用于小 ncRNA 的纳米组装逻辑门在细胞计算和单细胞分析方面具有广泛的应用。该门可用于基本的细胞分析、计算以及观察肿瘤微环境中的独特分子表达模式,并推进治疗学领域的发展。

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