首页 | 本学科首页   官方微博 | 高级检索  
   检索      


Structure-Function Perturbation and Dissociation of Tetrameric Urate Oxidase by High Hydrostatic Pressure
Authors:Eric Girard  Stéphane Marchal  Stéphanie Finet  Roger Fourme  Anne-Claire Dhaussy  Marion Giffard  Françoise Bonneté  Jacques H Abraini  Nathalie Colloc'h
Institution: Institut de Biologie Structurale J.-P. Ebel UMR 5075 CEA CNRS UJF, Grenoble, France
Synchrotron-SOLEIL, Gif sur Yvette, France
§ INSERM U710, Montpellier, France, Université Montpellier 2, Montpellier, France, and EPHE, Paris, France
Protéines: biochimie structurale et fonctionnelle FRE 2852, CNRS Université Paris 6, Paris, France
Centre d'Imagerie, Neurosciences et d'Applications aux Pathologies UMR 6232 UCBN CNRS ERT 1083, Centre CYCERON, Caen, France
†† CRISMAT ENSICAEN, Caen, France
‡‡ Laboratoire de cristallographie et RMN biologiques UMR 8015, CNRS Université Paris Descartes, Paris, France
§§ Centre Interdisciplinaire de Nanoscience de Marseille UPR 3118, CNRS, Marseille, France
¶¶ European Synchrotron Radiation Facility, Grenoble, France
Abstract:Structure-function relationships in the tetrameric enzyme urate oxidase were investigated using pressure perturbation. As the active sites are located at the interfaces between monomers, enzyme activity is directly related to the integrity of the tetramer. The effect of hydrostatic pressure on the enzyme was investigated by x-ray crystallography, small-angle x-ray scattering, and fluorescence spectroscopy. Enzymatic activity was also measured under pressure and after decompression. A global model, consistent with all measurements, discloses structural and functional details of the pressure-induced dissociation of the tetramer. Before dissociating, the pressurized protein adopts a conformational substate characterized by an expansion of its substrate binding pocket at the expense of a large neighboring hydrophobic cavity. This substate should be adopted by the enzyme during its catalytic mechanism, where the active site has to accommodate larger intermediates and product. The approach, combining several high-pressure techniques, offers a new (to our knowledge) means of exploring structural and functional properties of transient states relevant to protein mechanisms.
Keywords:
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号