TCS Innovation Labs - Hyderabad (Life Sciences Division), Tata Consultancy Services Limited, Hyderabad, 500081, India.
TCS Innovation Labs - Hyderabad (Life Sciences Division), Tata Consultancy Services Limited, Hyderabad, 500081, India.
J Mol Graph Model. 2019 May;88:282-291. doi: 10.1016/j.jmgm.2019.01.015. Epub 2019 Jan 25.
Riboswitches are non-coding RNAs that regulate gene expression in response to the binding of metabolites. Their abundance in bacteria makes them ideal drug targets. The prokaryotic thiamine pyrophosphate (TPP) riboswitch regulates gene expression in a wide range of bacteria by undergoing conformational changes in response to the binding of TPP. Although an experimental structure for the aptamer domain of the riboswitch is now available, details of the conformational changes that occur during the binding of the ligand, and the factors that govern these conformational changes, are still not clear. This study employs microsecond-scale molecular dynamics simulations to provide insights into the functioning of the riboswitch aptamer in atomistic detail. A mechanism for the transmission of conformational changes from the ligand-binding site to the P1 switch helix is proposed. Mg ions in the binding site play a critical role in anchoring the ligand to the riboswitch. Finally, modeling the egress of TPP from the binding site reveals a two-step mechanism for TPP unbinding. Findings from this study can motivate the design of future studies aimed at modulating the activity of this drug target.
Riboswitches 是一类非编码 RNA,能够响应代谢物的结合来调节基因表达。由于它们在细菌中的丰富存在,使它们成为理想的药物靶点。原核生物硫胺素焦磷酸(TPP)核糖开关通过响应 TPP 的结合发生构象变化来调节广泛细菌中的基因表达。尽管现在已经有了该核糖开关的适体结构的实验结构,但配体结合过程中发生的构象变化的细节以及控制这些构象变化的因素仍然不清楚。本研究利用微秒尺度的分子动力学模拟,从原子细节上深入了解了核糖开关适体的功能。提出了一种从配体结合位点向 P1 开关螺旋传递构象变化的机制。结合位点中的 Mg 离子在将配体锚定到核糖开关上起着关键作用。最后,对 TPP 从结合位点中释放的建模揭示了 TPP 解结合的两步机制。本研究的结果可以为设计旨在调节该药物靶点活性的未来研究提供动力。