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Regulation of DNA Self-Assembly and DNA Hybridization by Chiral Molecules with Corresponding Biosensor Applications

机译:相应的生物传感器应用的手性分子对DNA自组装和DNA杂交的调控。

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Chirality is one of the fundamental biochemical properties in a living system, and a lot of biological and physiological processes are greatly influenced by the chirality of molecules. Inspired by this phenomenon, we study the covalent assembly of DNA on chiral molecule modified surfaces and further discuss the hybridization of DNA on chiral surfaces with nucleic acids. Take methylene blue (MB) modified DNA as a model molecule, we show that the peak current of the L-NIBC (NIBC, N-isobutyryl-l(D)-cysteine) modified gold surface (L-surface) is larger than the D-surface because of a stronger interaction between short-chain DNA and the L-surface; however, the D-surface has a higher hybridization efficiency than the L-surface. Moreover, we apply this result to actual application by choosing an electrochemical DNA (E-DNA) sensor as a potential platform. Furthermore, we further amplify the difference of hybridization efficiency using the supersandwich assay. More importantly, our findings are successfully employed to program the sensitivity and limit of detection.
机译:手性是生命系统中基本的生化特性之一,分子的手性极大地影响了许多生物和生理过程。受此现象的启发,我们研究了手性分子修饰表面上DNA的共价组装,并进一步讨论了手性表面上DNA与核酸的杂交。以亚甲基蓝(MB)修饰的DNA为模型分子,我们显示L-NIBC(NIBC,N-异丁酰基-l(D)-半胱氨酸)修饰的金表面(L-表面)的峰值电流大于D表面是因为短链DNA与L表面之间的相互作用更强;但是,D面的杂交效率比L面高。此外,我们通过选择电化学DNA(E-DNA)传感器作为潜在平台将这一结果应用于实际应用。此外,我们使用超三明治测定法进一步放大了杂交效率的差异。更重要的是,我们的发现已成功用于编程灵敏度和检测限。

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