Department of Biotechnology, Sharda University, Greater Noida, Uttar Pradesh, India.
Centre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia, New Delhi, Delhi, India.
J Biomol Struct Dyn. 2022;40(23):13265-13277. doi: 10.1080/07391102.2021.1987990. Epub 2021 Nov 2.
Crowded and confined macromolecular milieus surround proteins, and both are stabilizing if the nature of the interaction between crowder and proteins are considered hard-core repulsive interactions. However, non-specific chemical interactions between a protein and its surroundings also play a significant role and the sum effect of both hard-core repulsion and soft interaction balances the overall effect of crowding/confinement. Previous studies showing the effect of polyethylene glycol (PEG) on protein and nucleic acid may be interpreted as either primarily excluded volume effect or, in some cases, chemical effect by changing solvent properties. In case of destabilizing interactions, charge-charge and hydrophobic contact have to gain more attention. For instance, and studies using protein as crowding agent revealed the destabilization of proteins induced by charge-charge interactions. To investigate the effect of PEG 10 kDa on holo α-lactalbumin (holo α-LA), structure and thermal stability of the protein were measured at different pH values using several techniques. Structural characterization by Trp-fluorescence, near-UV CD and far-UV measurements at different pH values clearly shows perturbation of tertiary and secondary structure of holo α-LA by PEG 10 kDa. Furthermore, the dynamic light scattering measurement shows that the protein is homogeneous under all experimental conditions. Analysis of the heat-induced denaturation profile in the presence of the crowder shows destabilization of the protein in terms of (midpoint of denaturation) and Δ (Gibbs free energy change at 25 °C). To evaluate the interaction of PEG 10 kDa with holo α-LA and stability of PEG-α-LA complex, docking and molecular dynamic simulation were carried out for 100 ns.Communicated by Ramaswamy H. Sarma.
拥挤和受限的大分子环境包围着蛋白质,如果 Crowder 和蛋白质之间的相互作用被认为是硬芯排斥相互作用,那么两者都是稳定的。然而,蛋白质与其周围环境之间的非特异性化学相互作用也起着重要作用,硬芯排斥和软相互作用的总和平衡了拥挤/受限的整体效果。以前的研究表明,聚乙二醇(PEG)对蛋白质和核酸的影响可能被解释为主要是排除体积效应,或者在某些情况下,通过改变溶剂性质产生化学效应。在不稳定相互作用的情况下,必须更加注意电荷-电荷和疏水力。例如,使用蛋白质作为拥挤剂的 和 研究揭示了电荷-电荷相互作用诱导的蛋白质失稳。为了研究 10 kDa PEG 对全酶 α-乳白蛋白(holo α-LA)的影响,使用几种技术在不同 pH 值下测量了蛋白质的结构和热稳定性。在不同 pH 值下通过色氨酸荧光、近紫外 CD 和远紫外测量进行的结构表征清楚地表明,PEG 10 kDa 对 holo α-LA 的三级和二级结构产生了干扰。此外,动态光散射测量表明,在所有实验条件下,蛋白质都是均匀的。在有 Crowder 的情况下分析热诱导变性曲线表明,蛋白质在 (变性中点)和 Δ(25°C 时的吉布斯自由能变化)方面不稳定。为了评估 10 kDa PEG 与全酶 α-LA 的相互作用和 PEG-α-LA 复合物的稳定性,进行了 100 ns 的对接和分子动力学模拟。由 Ramaswamy H. Sarma 传达。