a Department of Biochemistry, Faculty of Biological Sciences , Tarbiat Modares University , Tehran , Iran.
b Department of Biophysics, Faculty of Biological Sciences , Tarbiat Modares University , Tehran , Iran.
J Biomol Struct Dyn. 2019 Sep;37(14):3686-3696. doi: 10.1080/07391102.2018.1526116. Epub 2018 Nov 18.
Single-domain antibodies also known as nanobodies are recombinant antigen-binding domains that correspond to the heavy-chain variable region of camelid antibodies. Previous experimental studies showed that the nanobodies have stable and active structures at high temperatures. In this study, the thermal stability and dynamics of nanobodies have been studied by employing molecular dynamics simulation at different temperatures. Variations in root mean square deviation, native contacts, and solvent-accessible surface area of the nanobodies during the simulation were calculated to analyze the effect of different temperatures on the overall conformation of the nanobody. Then, the thermostability mechanism of this protein was studied through calculation of dynamic cross-correlation matrix, principal component analyses, native contact analyses, and root mean square fluctuation. Our results manifest that the side chain conformation of some residues in the complementarity-determining region 3 (CDR3) and also the interaction between α-helix region of CDR3 and framework2 play a critical role to stabilize the protein at a high temperature. Communicated by Ramaswamy H. Sarma.
单域抗体也被称为纳米抗体,是骆驼科抗体的重链可变区对应的重组抗原结合结构域。先前的实验研究表明,纳米抗体在高温下具有稳定和活跃的结构。在这项研究中,通过在不同温度下进行分子动力学模拟,研究了纳米抗体的热稳定性和动力学。在模拟过程中,计算了纳米抗体的均方根偏差、天然接触和溶剂可及表面积的变化,以分析不同温度对纳米抗体整体构象的影响。然后,通过计算动态互相关矩阵、主成分分析、天然接触分析和均方根波动,研究了该蛋白质的热稳定性机制。我们的结果表明,互补决定区 3 (CDR3)中的一些残基的侧链构象以及 CDR3 的α-螺旋区域与框架 2 之间的相互作用在高温下对稳定蛋白质起着关键作用。Ramaswamy H. Sarma 通讯。