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小分子化学界面用于分子程序。

A small-molecule chemical interface for molecular programs.

机构信息

Laboratoire Gulliver, CNRS, ESPCI Paris, PSL Research University, 10 rue Vauquelin 75005 Paris, France.

出版信息

Nucleic Acids Res. 2021 Jul 21;49(13):7765-7774. doi: 10.1093/nar/gkab470.

Abstract

In vitro molecular circuits, based on DNA-programmable chemistries, can perform an increasing range of high-level functions, such as molecular level computation, image or chemical pattern recognition and pattern generation. Most reported demonstrations, however, can only accept nucleic acids as input signals. Real-world applications of these programmable chemistries critically depend on strategies to interface them with a variety of non-DNA inputs, in particular small biologically relevant chemicals. We introduce here a general strategy to interface DNA-based circuits with non-DNA signals, based on input-translating modules. These translating modules contain a DNA response part and an allosteric protein sensing part, and use a simple design that renders them fully tunable and modular. They can be repurposed to either transmit or invert the response associated with the presence of a given input. By combining these translating-modules with robust and leak-free amplification motifs, we build sensing circuits that provide a fluorescent quantitative time-response to the concentration of their small-molecule input, with good specificity and sensitivity. The programmability of the DNA layer can be leveraged to perform DNA based signal processing operations, which we demonstrate here with logical inversion, signal modulation and a classification task on two inputs. The DNA circuits are also compatible with standard biochemical conditions, and we show the one-pot detection of an enzyme through its native metabolic activity. We anticipate that this sensitive small-molecule-to-DNA conversion strategy will play a critical role in the future applications of molecular-level circuitry.

摘要

基于 DNA 可编程化学的体外分子电路可以执行越来越多的高级功能,例如分子级计算、图像或化学模式识别和模式生成。然而,大多数报道的演示只能接受核酸作为输入信号。这些可编程化学物质的实际应用关键取决于与各种非 DNA 输入(特别是具有生物学相关性的小分子)接口的策略。我们在这里介绍了一种基于输入转换模块的将基于 DNA 的电路与非 DNA 信号接口的通用策略。这些转换模块包含 DNA 响应部分和变构蛋白感应部分,并使用简单的设计使其完全可调且模块化。它们可以重新用于传输或反转与给定输入存在相关的响应。通过将这些转换模块与稳健且无泄漏的扩增基序相结合,我们构建了传感电路,这些电路对小分子输入浓度提供荧光定量时间响应,具有良好的特异性和灵敏度。DNA 层的可编程性可用于执行基于 DNA 的信号处理操作,我们在此通过逻辑反转、信号调制和对两个输入的分类任务来证明这一点。DNA 电路也与标准生化条件兼容,我们展示了通过其天然代谢活性对一种酶的一锅检测。我们预计,这种灵敏的小分子到 DNA 的转换策略将在分子级电路的未来应用中发挥关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3eef/8287923/3543b8c6a1b5/gkab470fig1.jpg

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