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Computational Design and Biosensor Applications of Small Molecule-Sensing Allosteric Ribozymes

机译:小分子传感变构核酶的计算设计和生物传感器应用

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摘要

Here I describe accurate and time-efficient computational methods for designing small molecule-sensing allosteric ribozymes that serve as logic gates with NOT or YES Boolean logic functions. Theophylline-sensing ribozymes are engineered to have a high cleavage rate of 1.3 min~(-1) under physiologically relevant conditions. They are highly specific to theophylline and do not respond to caffeine, which differs in a single methyl group. These ribozymes are designed by fusing a theophylline aptamer with an extended version of the hammerhead ribozyme by modeling secondary structures, Purine-sensing ribozymes are designed by fusing the minimal version of the hammerhead ribozyme with bacterial guanine or adenine aptamers by modeling 3D interactions. I Have developed high-throughput compatible arrays based on purine RNA sensors that can be used for antibacterial drug discovery. The ribozymes can be employed as molecular sensors in various applications, including exogenous control of gene expression, high-throughput screening arrays, and molecular computing.
机译:在这里,我描述了用于设计小分子感应变构核酶的准确而省时的计算方法,这些变构核酶用作具有NOT或YES布尔逻辑功能的逻辑门。茶碱敏感核酶经改造后在生理相关条件下具有1.3 min〜(-1)的高裂解速率。它们对茶碱具有高度特异性,对咖啡因没有反应,咖啡因在单个甲基上有所不同。这些核酶通过模拟二级结构,将茶碱适体与锤头状核酶的扩展版本融合在一起而设计,嘌呤传感核酶是通过将3D相互作用的锤头状核酶的最低版本与细菌鸟嘌呤或腺嘌呤适体融合来设计的。我已经开发了基于嘌呤RNA传感器的高通量兼容阵列,可用于发现抗菌药物。核酶可以在各种应用中用作分子传感器,包括基因表达的外源控制,高通量筛选阵列和分子计算。

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