生物传感器
荧光团
化学
配体(生物化学)
荧光
小分子
生物物理学
组合化学
折叠(DSP实现)
半胱氨酸
构象变化
生物化学
生物
受体
酶
工程类
物理
电气工程
量子力学
作者
Robert M. de Lorimier,James J. Smith,Mary A. Dwyer,Loren L. Looger,Kevin M. Sali,Chad D. Paavola,Shahir S. Rizk,Shamil Sadigov,David W. Conrad,Leslie M. Loew,Homme W. Hellinga
摘要
Bacterial periplasmic binding proteins (bPBPs) are specific for a wide variety of small molecule ligands. bPBPs undergo a large, ligand-mediated conformational change that can be linked to reporter functions to monitor ligand concentrations. This mechanism provides the basis of a general system for engineering families of reagentless biosensors that share a common physical signal transduction functionality and detect many different analytes. We demonstrate the facility of designing optical biosensors based on fluorophore conjugates using 8 environmentally sensitive fluorophores and 11 bPBPs specific for diverse ligands, including sugars, amino acids, anions, cations, and dipeptides. Construction of reagentless fluorescent biosensors relies on identification of sites that undergo a local conformational change in concert with the global, ligand-mediated hinge-bending motion. Construction of cysteine mutations at these locations then permits site-specific coupling of environmentally sensitive fluorophores that report ligand binding as changes in fluorescence intensity. For 10 of the bPBPs presented in this study, the three-dimensional receptor structure was used to predict the location of reporter sites. In one case, a bPBP sensor specific for glutamic and aspartic acid was designed starting from genome sequence information and illustrates the potential for discovering novel binding functions in the microbial genosphere using bioinformatics.
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