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Antibody-controlled actuation of DNA-based molecular circuits

机译:基于DNA的分子电路的抗体控制驱动

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DNA-based molecular circuits allow autonomous signal processing, but their actuation has relied mostly on RNA/DNA-based inputs, limiting their application in synthetic biology, biomedicine and molecular diagnostics. Here we introduce a generic method to translate the presence of an antibody into a unique DNA strand, enabling the use of antibodies as specific inputs for DNA-based molecular computing. Our approach, antibody-templated strand exchange (ATSE), uses the characteristic bivalent architecture of antibodies to promote DNA-strand exchange reactions both thermodynamically and kinetically. Detailed characterization of the ATSE reaction allowed the establishment of a comprehensive model that describes the kinetics and thermodynamics of ATSE as a function of toehold length, antibody–epitope affinity and concentration. ATSE enables the introduction of complex signal processing in antibody-based diagnostics, as demonstrated here by constructing molecular circuits for multiplex antibody detection, integration of multiple antibody inputs using logic gates and actuation of enzymes and DNAzymes for signal amplification.
机译:基于DNA的分子电路可进行自主信号处理,但其驱动主要依靠基于RNA / DNA的输入,从而限制了它们在合成生物学,生物医学和分子诊断中的应用。在这里,我们介绍一种将抗体的存在转化为独特的DNA链的通用方法,从而可以将抗体用作基于DNA的分子计算的特定输入。我们的方法是抗体模板链交换(ATSE),它使用抗体的特征性二价结构来促进DNA链交换反应的热力学和动力学。对ATSE反应的详细表征可以建立一个综合模型,该模型描述ATSE的动力学和热力学与脚趾长度,抗体-表位亲和力和浓度的关系。 ATSE能够在基于抗体的诊断中引入复杂的信号处理,如此处所示,通过构建用于多重抗体检测的分子电路,使用逻辑门整合多个抗体输入以及激活酶和DNA酶来进行信号放大来证明。

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