灵活性(工程)
功能(生物学)
机制(生物学)
计算生物学
计算机科学
功能选择性
分子动力学
蛋白质动力学
人口
配体(生物化学)
生物系统
认知科学
化学
生物
受体
G蛋白偶联受体
物理
计算化学
心理学
遗传学
数学
生物化学
量子力学
统计
社会学
人口学
作者
Atanu Maity,Sarmistha Majumdar,Prerna Priya,Pallavi De,Sudipto Saha,Shubhra Ghosh Dastidar
标识
DOI:10.1080/07391102.2013.873002
摘要
The basic framework of understanding the mechanisms of protein functions is achieved from the knowledge of their structures which can model the molecular recognition. Recent advancement in the structural biology has revealed that in spite of the availability of the structural data, it is nontrivial to predict the mechanism of the molecular recognition which progresses via situation-dependent structural adaptation. The mutual selectivity of protein-protein and protein-ligand interactions often depends on the modulations of conformations empowered by their inherent flexibility, which in turn regulates the function. The mechanism of a protein's function, which used to be explained by the ideas of 'lock and key' has evolved today as the concept of 'induced fit' as well as the 'population shift' models. It is felt that the 'dynamics' is an essential feature to take into account for understanding the mechanism of protein's function. The design principles of therapeutic molecules suffer from the problems of plasticity of the receptors whose binding conformations are accurately not predictable from the prior knowledge of a template structure. On the other hand, flexibility of the receptors provides the opportunity to improve the binding affinity of a ligand by suitable substitution that will maximize the binding by modulating the receptors surface. In this paper, we discuss with example how the protein's flexibility is correlated with its functions in various systems, revealing the importance of its understanding and for making applications. We also highlight the methodological challenges to investigate it computationally and to account for the flexible nature of the molecules in drug design.
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