Zhang Hong-Li, Lv Cong, Li Zi-Hua, Jiang Song, Cai Dan, Liu Shao-Song, Wang Ting, Zhang Kun-He
Department of Gastroenterology, The First Affiliated Hospital of Nanchang University, Jiangxi Institute of Gastroenterology and Hepatology, Jiangxi Clinical Research Center for Gastroenterology, Nanchang, China.
Front Chem. 2023 May 9;11:1144347. doi: 10.3389/fchem.2023.1144347. eCollection 2023.
Aptamers are valuable for bioassays, but aptamer-target binding is susceptible to reaction conditions. In this study, we combined thermofluorimetric analysis (TFA) and molecular dynamics (MD) simulations to optimize aptamer-target binding, explore underlying mechanisms and select preferred aptamer. Alpha-fetoprotein (AFP) aptamer AP273 (as the model) was incubated with AFP under various experimental conditions, and melting curves were measured in a real-time PCR system to select the optimal binding conditions. The intermolecular interactions of AP273-AFP were analysed by MD simulations with these conditions to reveal the underlying mechanisms. A comparative study between AP273 and control aptamer AP-L3-4 was performed to validate the value of combined TFA and MD simulation in selecting preferred aptamers. The optimal aptamer concentration and buffer system were easily determined from the dF/dT peak characteristics and the melting temperature (Tm) values on the melting curves of related TFA experiments, respectively. A high Tm value was found in TFA experiments performed in buffer systems with low metal ion strength. The molecular docking and MD simulation analyses revealed the underlying mechanisms of the TFA results, i.e., the binding force and stability of AP273 to AFP were affected by the number of binding sites, frequency and distance of hydrogen bonds, and binding free energies; these factors varied in different buffer and metal ion conditions. The comparative study showed that AP273 was superior to the homologous aptamer AP-L3-4. Combining TFA and MD simulation is efficient for optimizing the reaction conditions, exploring underlying mechanisms, and selecting aptamers in aptamer-target bioassays.
适体在生物测定中很有价值,但适体与靶标的结合易受反应条件影响。在本研究中,我们结合热荧光分析(TFA)和分子动力学(MD)模拟来优化适体与靶标的结合、探索潜在机制并筛选优选适体。将甲胎蛋白(AFP)适体AP273(作为模型)在各种实验条件下与AFP孵育,并在实时PCR系统中测量熔解曲线以选择最佳结合条件。利用这些条件通过MD模拟分析AP273-AFP的分子间相互作用,以揭示潜在机制。对AP273和对照适体AP-L3-4进行比较研究,以验证TFA和MD模拟相结合在筛选优选适体中的价值。分别根据相关TFA实验熔解曲线上的dF/dT峰特征和熔解温度(Tm)值,可轻松确定最佳适体浓度和缓冲体系。在低金属离子强度的缓冲体系中进行的TFA实验中发现了较高的Tm值。分子对接和MD模拟分析揭示了TFA结果的潜在机制,即AP273与AFP的结合力和稳定性受结合位点数量、氢键频率和距离以及结合自由能的影响;这些因素在不同的缓冲液和金属离子条件下有所不同。比较研究表明,AP273优于同源适体AP-L3-4。在适体-靶标生物测定中,结合TFA和MD模拟对于优化反应条件、探索潜在机制以及筛选适体是有效的。