Quantum chemical calculations of the reorganization energy of blue-copper proteins

被引:87
作者
Olsson, MHM [1 ]
Ryde, U [1 ]
Roos, BO [1 ]
机构
[1] Univ Lund, Ctr Chem, Dept Theoret Chem, S-22100 Lund, Sweden
关键词
B3LYP method; blue-copper proteins; entatic state theory; induced-rack theory; reorganization energy;
D O I
10.1002/pro.5560071220
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The inner-sphere reorganization energy for several copper complexes related to the active site in blue-copper protein has been calculated with the density functional B3LYP method. The best model of the blue-copper proteins, Cu(Im)(2)(SCH3)(S(CH3)(2))(0/+), has a self-exchange inner-sphere reorganization energy of 62 kJ/mol, which is at least 120 kJ/mol lower than for Cu(H2O)(4)(+/2+). This lowering of the reorganization energy is caused by the soft ligands in the blue-copper site, especially the cysteine thiolate and the methionine thioether groups. Soft ligands both make the potential surfaces of the complexes flatter and give rise to oxidized structures that are quite close to a tetrahedron (rather than tetragonal). Approximately half of the reorganization energy originates from changes in the copper-ligand bond lengths and half of this contribution comes from the Cu-S-Cys bond. A tetragonal site, which is present in the rhombic type 1 blue-copper proteins, has a slightly higher (16 kT/mol) inner-sphere reorganization energy than a trigonal site, present in the axial type 1 copper proteins. A site with the methionine ligand replaced by an amide group, as in stellacyanin, has an even higher reorganization energy, about 90 kJ/mol.
引用
收藏
页码:2659 / 2668
页数:10
相关论文
共 42 条
[1]  
ADMAN ET, 1991, ADV PROTEIN CHEM, V42, P145
[2]   2ND-ORDER PERTURBATION-THEORY WITH A CASSCF REFERENCE FUNCTION [J].
ANDERSSON, K ;
MALMQVIST, PA ;
ROOS, BO ;
SADLEJ, AJ ;
WOLINSKI, K .
JOURNAL OF PHYSICAL CHEMISTRY, 1990, 94 (14) :5483-5488
[3]   Comparison of conventional and hybrid density functional approaches. Cationic hydrides of first-row transition metals as a case study [J].
Barone, V ;
Adamo, C ;
Mele, F .
CHEMICAL PHYSICS LETTERS, 1996, 249 (3-4) :290-296
[4]  
Bu YX, 1997, INT J QUANTUM CHEM, V61, P117, DOI 10.1002/(SICI)1097-461X(1997)61:1<117::AID-QUA14>3.0.CO
[5]  
2-B
[6]   AB-INITIO CALCULATION OF INNER-SPHERE REORGANIZATION ENERGY FOR THE FE-2+ (H2O)6/FE-3+ (H2O)6 ELECTRON-TRANSFER SYSTEM [J].
BU, YX ;
LIU, SX ;
SONG, XY .
CHEMICAL PHYSICS LETTERS, 1994, 227 (1-2) :121-125
[7]  
CHURG AK, 1983, J PHYS CHEM-US, V87, P1683, DOI 10.1021/j100233a010
[8]   X-RAY CRYSTAL-STRUCTURE ANALYSIS OF PLASTOCYANIN AT 2.7A RESOLUTION [J].
COLMAN, PM ;
FREEMAN, HC ;
GUSS, JM ;
MURATA, M ;
NORRIS, VA ;
RAMSHAW, JAM ;
VENKATAPPA, MP .
NATURE, 1978, 272 (5651) :319-324
[9]   Theoretical study of the structural and spectroscopic properties of stellacyanin [J].
De Kerpel, JOA ;
Pierloot, K ;
Ryde, U ;
Roos, BO .
JOURNAL OF PHYSICAL CHEMISTRY B, 1998, 102 (23) :4638-4647
[10]   Reorganization energy of blue copper: Effects of temperature and driving force on the rates of electron transfer in ruthenium- and osmium-modified azurins [J].
DiBilio, AJ ;
Hill, MG ;
Bonander, N ;
Karlsson, BG ;
Villahermosa, RM ;
Malmstrom, BG ;
Winkler, JR ;
Gray, HB .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1997, 119 (41) :9921-9922