4.3 Article

A miniaturized technique for assessing protein thermodynamics and function using fast determination of quantitative cysteine reactivity

期刊

PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS
卷 79, 期 4, 页码 1034-1047

出版社

WILEY-BLACKWELL
DOI: 10.1002/prot.22932

关键词

quantitative cysteine reactivity; thiol reactivity; protein thermodynamic stability; conformational free energy; protein folding kinetics; linkage analysis of protein stability; dissociation constants binding affinity; Staphylococcal nuclease; ribose-binding protein

资金

  1. NIH [5DPI OD000122]
  2. Homeland Security Advanced Research Projects Agency [HSH ODC-08-C00099]

向作者/读者索取更多资源

Protein thermodynamic stability is a fundamental physical characteristic that determines biological function. Furthermore, alteration of thermodynamic stability by macromolecular interactions or biochemical modifications is a powerful tool for assessing the relationship between protein structure, stability, and biological function. High-throughput approaches for quantifying protein stability are beginning to emerge that enable thermodynamic measurements on small amounts of material, in short periods of time, and using readily accessible instrumentation. Here we present such a method, fast quantitative cysteine reactivity, which exploits the linkage between protein stability, sidechain protection by protein structure, and structural dynamics to characterize the thermodynamic and kinetic properties of proteins. In this approach, the reaction of a protected cysteine and thiol-reactive fluorogenic indicator is monitored over a gradient of temperatures after a short incubation time. These labeling data can be used to determine the midpoint of thermal unfolding, measure the temperature dependence of protein stability, quantify ligand-binding affinity, and, under certain conditions, estimate folding rate constants. Here, we demonstrate the fQCR method by characterizing these thermodynamic and kinetic properties for variants of Staphylococcal nuclease and E. coli ribose-binding protein engineered to contain single, protected cysteines. These straightforward, information-rich experiments are likely to find applications in protein engineering and functional genomics.

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