Effects of folding on metalloprotein active sites

被引:151
作者
Winkler, JR
WittungStafshede, P
Leckner, J
Malmstrom, BG
Gray, HB
机构
[1] CALTECH,BECKMAN INST 139 74,PASADENA,CA 91125
[2] GOTHENBURG UNIV,DEPT PHYS CHEM,S-41296 GOTHENBURG,SWEDEN
[3] CHALMERS UNIV TECHNOL,S-41296 GOTHENBURG,SWEDEN
[4] GOTHENBURG UNIV,DEPT BIOCHEM & BIOPHYS,S-41390 GOTHENBURG,SWEDEN
关键词
protein folding; rack formation; cytochrome c; azurin; electron transfer;
D O I
10.1073/pnas.94.9.4246
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Experimental data for the unfolding of cytochrome c and azurin by quanidinium chloride (GuHCl) are used to construct free-energy diagrams for the folding of the oxidized and reduced proteins. With cytochrome c, the driving force for folding the reduced protein is larger than that for the oxidized form. Both the oxidized and the reduced folded forms of yeast cytochrome c are less stable than the corresponding states of the horse protein. Due to the covalent attachment of the heme and is fixed tetragonal coordination geometry, cytochrome c folding can be described by a two-state model. A thermodynamic cycle leads to an expression for the difference in self-exchange reorganization energies for the folded and unfolded proteins, The reorganization energy for electron exchange in the folded protein is approximately 0.5 eV smaller than that for a heme in aqueous solution. The finding that reduced azurin unfolds at lower GuHCl concentrations than the oxidized protein suggests that the coordination structure of copper is different in oxidized and reduced unfolded states: it is likely that the geometry of Cu-I in the unfolded protein is linear or trigonal, whereas Cu-II prefers to be tetragonal. The evidence indicates that protein folding lowers the azurin reorganization energy by roughly 1.7 eV relative to an aqueous Cu(1,10-phenanthroline)(2)(2+/+) reference system.
引用
收藏
页码:4246 / 4249
页数:4
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