Physics of biomolecular recognition and conformational dynamics

Author:

Chu Wen-TingORCID,Yan ZhiqiangORCID,Chu XiakunORCID,Zheng Xiliang,Liu Zuojia,Xu Li,Zhang Kun,Wang JinORCID

Abstract

Abstract Biomolecular recognition usually leads to the formation of binding complexes, often accompanied by large-scale conformational changes. This process is fundamental to biological functions at the molecular and cellular levels. Uncovering the physical mechanisms of biomolecular recognition and quantifying the key biomolecular interactions are vital to understand these functions. The recently developed energy landscape theory has been successful in quantifying recognition processes and revealing the underlying mechanisms. Recent studies have shown that in addition to affinity, specificity is also crucial for biomolecular recognition. The proposed physical concept of intrinsic specificity based on the underlying energy landscape theory provides a practical way to quantify the specificity. Optimization of affinity and specificity can be adopted as a principle to guide the evolution and design of molecular recognition. This approach can also be used in practice for drug discovery using multidimensional screening to identify lead compounds. The energy landscape topography of molecular recognition is important for revealing the underlying flexible binding or binding–folding mechanisms. In this review, we first introduce the energy landscape theory for molecular recognition and then address four critical issues related to biomolecular recognition and conformational dynamics: (1) specificity quantification of molecular recognition; (2) evolution and design in molecular recognition; (3) flexible molecular recognition; (4) chromosome structural dynamics. The results described here and the discussions of the insights gained from the energy landscape topography can provide valuable guidance for further computational and experimental investigations of biomolecular recognition and conformational dynamics.

Funder

National Natural Science Foundation of China

Ministry of Science and Technology of China

Scientific Instrument Developing Project of the Chinese Academy of Sciences

Youth Innovation Promotion Association

Jilin Province Science and Technology Development Plan

Publisher

IOP Publishing

Subject

General Physics and Astronomy

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