Slow domain reconfiguration causes power-law kinetics in a two-state enzyme
Author(s) -
Iris GrossmanHaham,
Gabriel Rosenblum,
Trishool Namani,
Hagen Hofmann
Publication year - 2018
Publication title -
proceedings of the national academy of sciences
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1714401115
Subject(s) - kinetics , förster resonance energy transfer , energy landscape , nanosecond , substrate (aquarium) , chemistry , power law , conformational isomerism , biophysics , chemical physics , molecule , physics , biology , mathematics , biochemistry , quantum mechanics , fluorescence , ecology , statistics , organic chemistry , laser
Protein dynamics are typically captured well by rate equations that predict exponential decays for two-state reactions. Here, we describe a remarkable exception. The electron-transfer enzyme quiescin sulfhydryl oxidase (QSOX), a natural fusion of two functionally distinct domains, switches between open- and closed-domain arrangements with apparent power-law kinetics. Using single-molecule FRET experiments on time scales from nanoseconds to milliseconds, we show that the unusual open-close kinetics results from slow sampling of an ensemble of disordered domain orientations. While substrate accelerates the kinetics, thus suggesting a substrate-induced switch to an alternative free energy landscape of the enzyme, the power-law behavior is also preserved upon electron load. Our results show that the slow sampling of open conformers is caused by a variety of interdomain interactions that imply a rugged free energy landscape, thus providing a generic mechanism for dynamic disorder in multidomain enzymes.
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