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Rational design and performance testing of aptamer-based electrochemical biosensors for adenosine

机译:基于适体的腺苷电化学生物传感器的合理设计和性能测试

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摘要

This work emphasizes on the design criteria of aptamer-based biosensors for adenosine and the comparison of their performances by using both electrochemical and biochemical methods. The adenosine biosensors have been typically prepared by hybridizing a short bridging DNA (modified with a thiol for the attachment to gold electrode) to the aptamer strand that releases upon adenosine binding. We have carefully compared the two "isomeric" designs, one with the thiol-linker tethered to the 3'-hydroxyl and the other to the 5'-phosphate end of the bridging DNA. It has been demonstrated through electrochemical and gel electrophoresis experiments that the 3'-thiol bridged sensor shows much better performance than its 5'-counterpart on surface, whereas in solution phase the two sensor systems are equally sensitive. We believe that the "transient" secondary structure of the aptamer sequence restricts the freedom of the strand displacement upon analyte binding, leading to a sluggish release of the aptamer strand from the 5'-thiol-bridging DNA.
机译:这项工作强调了基于适体的腺苷生物传感器的设计标准,并通过电化学和生物化学方法对它们的性能进行了比较。腺苷生物传感器通常是通过将短桥DNA(用硫醇修饰以附着在金电极上)与适体链杂交而制备的,该适体链在腺苷结合后释放。我们仔细比较了两种“异构”设计,一种设计是将硫醇连接子拴在桥接DNA的3'-羟基上,另一种设计在桥接DNA的5'-磷酸端上。通过电化学和凝胶电泳实验已经证明,3'-硫醇桥联的传感器在表面上的表现优于其5'-对应物,而在溶液相中,这两个传感器系统同样敏感。我们认为,适体序列的“瞬时”二级结构在分析物结合后限制了链置换的自由,从而导致适体链从5'-硫醇桥连DNA中缓慢释放。

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