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首页> 外文期刊>Bioconjugate Chemistry >Design, Fabrication, and Device Chemistry of a 3-Input-3-Output Synthetic Genetic Combinatorial Logic Circuit with a 3-Input AND Gate in a Single Bacterial Cell
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Design, Fabrication, and Device Chemistry of a 3-Input-3-Output Synthetic Genetic Combinatorial Logic Circuit with a 3-Input AND Gate in a Single Bacterial Cell

机译:3输入-3次输出合成基因组合逻辑电路的设计,制造和装置化学,在单一细菌细胞中具有3输入和闸门

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摘要

Advancement of in-cell molecular computation requires multi-input-multi-output genetic logic devices. However, increased physical size, a higher number of molecular interactions, cross-talk, and complex systems level device chemistry limited the realization of such multi-input-multi-output devices in a single bacterial cell. Here, by adapting a circuit minimization and conjugated promoter engineering approach, we created the first 3-input-3-output logic function in a single bacterial cell. The circuit integrated three extracellular chemical signals as inputs and produced three different fluorescent proteins as outputs following the truth table of the circuit. First, we created a noncascaded 1-gate-3-input synthetic genetic AND gate in bacteria. We showed that the 3-input AND gate was digital in nature and mathematically predictable, two important characteristics, which were not reported for previous 3-input AND gates in bacteria. Our design consists of a 128 bp DNA scaffold, which conjugated various protein-binding sites in a single piece of DNA and worked as a hybrid promoter. The scaffold was a few times smaller than the similar 3-input synthetic genetic AND gate promoter reported. Integrating this AND gate with a new 2-input-2-output integrated circuit, which was also digital-like and predictive, we created a 3-input-3-output combinatorial logic circuit. This work demonstrated the integration of a 3-input AND gate in a larger circuit and a 3-input-3-output synthetic genetic circuit, both for the first time. The work has significance in molecular computation, biorobotics, DNA nanotechnology, and synthetic biology.
机译:细胞内分子计算的进步需要多输入多输出遗传逻辑器件。然而,增加物理尺寸,较高数量的分子相互作用,串扰和复杂的系统级别装置化学限制了在单个细菌细胞中的这种多输入多输出装置的实现。这里,通过调整电路最小化和共轭启动子工程方法,我们在单个细菌细胞中创建了第一3输入-3输出逻辑功能。电路将三种细胞外化学信号集成为输入并产生三种不同的荧光蛋白作为电路真相表之后的输出。首先,我们在细菌中创建了一个非纤巧的1门3输入合成遗传和浇口。我们认为,3输入和门是数字性的,数学上可预测,两个重要特征,其未报告在细菌中的先前3输入和栅极。我们的设计由128bp DNA支架组成,其在单件DNA中共轭各种蛋白质结合位点,并作为杂交启动子工作。支架比相似的3输入合成遗传和浇口启动子报道的几倍。使用新的2输入-2-输出集成电路集成了此和门,这也是数字式和预测的,我们创建了一个3输入-3输出组合逻辑电路。这项工作首次展示了在较大的电路和3输入-3-输出合成遗传电路中的3输入和栅极的集成。该作品对分子计算,生物摩托学,DNA纳米技术和合成生物学具有重要意义。

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  • 来源
    《Bioconjugate Chemistry》 |2019年第12期|共8页
  • 作者单位

    Homi Bhabha Natl Inst Biophys &

    Struct Genom Div Saha Inst Nucl Phys Block A-F Sect 1 Kolkata 700064 India;

    Homi Bhabha Natl Inst Biophys &

    Struct Genom Div Saha Inst Nucl Phys Block A-F Sect 1 Kolkata 700064 India;

    Homi Bhabha Natl Inst Biophys &

    Struct Genom Div Saha Inst Nucl Phys Block A-F Sect 1 Kolkata 700064 India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
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