首页> 外文期刊>The Open Biomedical Engineering Journal >Investigating the Conformation of S100β Protein Under Physiological Parameters Using Computational Modeling: A Clue for Rational Drug Design
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Investigating the Conformation of S100β Protein Under Physiological Parameters Using Computational Modeling: A Clue for Rational Drug Design

机译:使用计算模型研究生理参数下S100β蛋白的构象:合理药物设计的线索

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Background:Physiochemical factors such as temperature, pH and cofactors are well known parameters that confer conformational changes in a protein structure. With S100β protein being a metal binding brain-specific receptor for both extracellular and intracellular functions, a change in conformation due to the above-mentioned factors, can compromise their cellular functions and therefore result in several pathological conditions such as Alzheimer’s disease, Ischemic stroke, as well as Myocardial Infarction.Objective:The studies conducted sought to elucidate the effect of these physiological factors on the conformational dynamics of S100β protein using computational modeling approaches.Method:Temperature-dependent and protein-cofactor complexes molecular dynamics simulations were conducted by varying the temperature from 100 to 400K using GROMACS 5.0.3. Additionally, the conformational dynamics of the protein was studied by varying the pH at 5.0, 7.4 and 9.0 using Ambertools17. This was done by preparing the protein molecule, solvating and minimizing its energy level as well as heating it to the required temperature, equilibrating and simulating under desired conditions (NVT and NPT ensembles).Results:The results show that the protein misfolds as a function of increasing temperature with alpha helical content at 100K and 400K being 57.8% and 43.3%, respectively. However, the binding sites of the protein was not appreciably affected by temperature variations. The protein displayed high conformational instability in acidic medium (pH ~5.0). The binding sites of Ca2+, Mg2+ and Zn2+ were identified and each exhibited different groupings of the secondary structural elements (binding motifs). The secondary structure analysis revealed different conformational changes with the characteristic appearance of two beta hairpins in the presence of Zn2+and Mg2+.Conclusion:High temperatures, different cofactors and acidic pH confer conformational changes to the S100β structure and these results may inform the design of novel drugs against the protein.
机译:背景:诸如温度,pH和辅因子等理化因素是众所周知的参数,可赋予蛋白质结构构象变化。 S100β蛋白是细胞外和细胞内功能的金属结合脑特异性受体,由于上述因素引起的构象变化会损害其细胞功能,因此会导致多种病理状况,例如阿尔茨海默氏病,缺血性中风,目的:进行的研究试图通过计算建模方法阐明这些生理因素对S100β蛋白构象动力学的影响。方法:通过改变温度和蛋白质-辅因子复合物的分子动力学模拟使用GROMACS 5.0.3将温度从100提升至400K。此外,通过使用Ambertools17在5.0、7.4和9.0下改变pH值来研究蛋白质的构象动力学。通过制备蛋白质分子,溶剂化和最小化其能级以及将其加热到所需温度,在所需条件下平衡和模拟(NVT和NPT集成)来完成此操作。结果:结果表明,蛋白质错折叠为功能随温度升高而变化,α螺旋含量在100K和400K时分别为57.8%和43.3%。但是,蛋白质的结合位点不受温度变化的影响。该蛋白质在酸性介质(pH〜5.0)中显示出很高的构象不稳定性。鉴定了Ca2 +,Mg2 +和Zn2 +的结合位点,并且每个结合位点都表现出不同的二级结构元素分组(结合基序)。二级结构分析揭示了在存在Zn2 +和Mg2 +的情况下,两个β发夹具有不同的构象变化。结论:高温,不同的辅因子和酸性pH使S100β结构发生构象变化,这些结果可能有助于设计S100β。针对蛋白质的新型药物。

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