Ahamad Shahzaib, Hema Kanipakam, Ahmad Shahnawaz, Kumar Vijay, Gupta Dinesh
Translational Bioinformatics Group, International Centre for Genetic Engineering and Biotechnology (ICGEB), Aruna Asaf Ali Marg, New Delhi, 110067 India.
Amity Institute of Neuropsychology and Neurosciences (AINN), Amity University, Noida, UP 201313 India.
3 Biotech. 2022 Apr;12(4):87. doi: 10.1007/s13205-022-03151-0. Epub 2022 Mar 3.
The Receptor Binding Domain (RBD) of SARS-CoV-2, located on the S1 subunit, plays a vital role in the virus binding and its entry into the host cell through angiotensin-converting enzyme 2 (ACE2) receptor. Therefore, understanding the dynamic effects of mutants on the SARS-CoV-2 RBD is essential for discovering drugs to inhibit the virus binding and disrupt its entry into the host cells. A recent study reported a double mutant of SARS-CoV-2, L452R-E484Q, located in the RBD region. Thus, this study employed various computational algorithms and methods to understand the structural impact of both individual variants L452R, E484Q, and the double mutant L452R-E484Q on the native RBD of spike glycoprotein. The effects of the mutations on native RBD structure were predicted by algorithms, which predicted changes in the protein structure and function upon the mutations. Subsequently, molecular dynamics (MD) simulations were employed to understand the conformational stability and functional changes on the RBD upon the mutations. The comparative results of MD simulation parameters displayed that the double mutant induces significant conformational changes in the spike glycoprotein RBD, which may alter its biological functions.
The online version contains supplementary material available at 10.1007/s13205-022-03151-0.
严重急性呼吸综合征冠状病毒2(SARS-CoV-2)的受体结合域(RBD)位于S1亚基上,在病毒通过血管紧张素转换酶2(ACE2)受体结合并进入宿主细胞的过程中起着至关重要的作用。因此,了解突变体对SARS-CoV-2 RBD的动态影响对于发现抑制病毒结合并阻止其进入宿主细胞的药物至关重要。最近的一项研究报道了位于RBD区域的SARS-CoV-2双突变体L452R-E484Q。因此,本研究采用了各种计算算法和方法,以了解单个变体L452R、E484Q以及双突变体L452R-E484Q对刺突糖蛋白天然RBD的结构影响。通过算法预测了突变对天然RBD结构的影响,这些算法可预测突变后蛋白质结构和功能的变化。随后,采用分子动力学(MD)模拟来了解突变后RBD的构象稳定性和功能变化。MD模拟参数的比较结果显示,双突变体在刺突糖蛋白RBD中诱导了显著的构象变化,这可能会改变其生物学功能。
在线版本包含可在10.1007/s13205-022-03151-0获取的补充材料。