Improved Treatment of Ligands and Coupling Effects in Empirical Calculation and Rationalization of pKa Values

被引:1385
作者
Sondergaard, Chresten R. [1 ]
Olsson, Mats H. M.
Rostkowski, Michal
Jensen, Jan H. [1 ]
机构
[1] Univ Copenhagen, Dept Chem, Univ Parken 5, DK-2100 Copenhagen, Denmark
关键词
NUCLEAR-MAGNETIC-RESONANCE; DIHYDROFOLATE-REDUCTASE; ESCHERICHIA-COLI; ACTIVE-SITE; HYDROXYNITRILE LYASE; CRYSTAL-STRUCTURES; DRUG DISCOVERY; HIV-1; PROTEASE; CATHEPSIN-D; BINDING;
D O I
10.1021/ct200133y
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The new empirical rules for protein pK(a) predictions implemented in the PROPKA3.0 software package (Olsson et al. J. Chem. Theory Comput. 2010, 7, 525-537) have been extended to the prediction of pK(a) shifts of active site residues and ionizable ligand groups in protein ligand complexes. We present new algorithms that allow pK(a) shifts due to inductive (i.e., covalently coupled) intraligand interactions, as well as noncovalently coupled interligand interactions in multiligand complexes, to be included in the prediction. The number of different ligand chemical groups that are automatically recognized has been increased to 18, and the general implementation has been changed so that new functional groups can be added easily by the user, aided by a new and more general protonation scheme. Except for a few cases, the new algorithms in PROPKA3.1 are found to yield results similar to or better than those obtained with PROPKA2.0 (Bas et al. Proteins: Struct., Funct., Bioinf 2008, 73, 765-783). Finally, we present a novel algorithm that identifies noncovalently coupled ionizable groups, where pK(a) prediction may be especially difficult. This is a general improvement to PROPKA and is applied to proteins with and without ligands.
引用
收藏
页码:2284 / 2295
页数:12
相关论文
共 54 条
[1]   Statistics and Physical Origins of pK and Ionization State Changes upon Protein-Ligand Binding [J].
Aguilar, Boris ;
Anandakrishnan, Ramu ;
Ruscio, Jory Z. ;
Onufriev, Alexey V. .
BIOPHYSICAL JOURNAL, 2010, 98 (05) :872-880
[3]   STRUCTURE OF HIV-1 PROTEASE WITH KNI-272, A TIGHT-BINDING TRANSITION-STATE ANALOG CONTAINING ALLOPHENYLNORSTATINE [J].
BALDWIN, ET ;
BHAT, TN ;
GULNIK, S ;
LIU, BS ;
TOPOL, IA ;
KISO, Y ;
MIMOTO, T ;
MITSUYA, H ;
ERICKSON, JW .
STRUCTURE, 1995, 3 (06) :581-590
[4]   CRYSTAL-STRUCTURES OF NATIVE AND INHIBITED FORMS OF HUMAN CATHEPSIN-D - IMPLICATIONS FOR LYSOSOMAL TARGETING AND DRUG DESIGN [J].
BALDWIN, ET ;
BHAT, TN ;
GULNIK, S ;
HOSUR, MV ;
SOWDER, RC ;
CACHAU, RE ;
COLLINS, J ;
SILVA, AM ;
ERICKSON, JW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (14) :6796-6800
[5]   Very fast prediction and rationalization of pKa values for protein-ligand complexes [J].
Bas, Delphine C. ;
Rogers, David M. ;
Jensen, Jan H. .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2008, 73 (03) :765-783
[6]   The Protein Data Bank [J].
Berman, HM ;
Westbrook, J ;
Feng, Z ;
Gilliland, G ;
Bhat, TN ;
Weissig, H ;
Shindyalov, IN ;
Bourne, PE .
NUCLEIC ACIDS RESEARCH, 2000, 28 (01) :235-242
[7]   Crystal structure of the novel aspartic proteinase zymogen proplasmepsin II from Plasmodium falciparum [J].
Bernstein N.K. ;
Cherney M.M. ;
Loetscher H. ;
Ridley R.G. ;
James M.N.G. .
Nature Structural Biology, 1999, 6 (1) :32-37
[8]  
BOLIN JT, 1982, J BIOL CHEM, V257, P13650
[9]   STRUCTURE OF CHYMOTRYPSIN TRIFLUOROMETHYL KETONE INHIBITOR COMPLEXES - COMPARISON OF SLOWLY AND RAPIDLY EQUILIBRATING INHIBITORS [J].
BRADY, K ;
WEI, AZ ;
RINGE, D ;
ABELES, RH .
BIOCHEMISTRY, 1990, 29 (33) :7600-7607
[10]  
*CHEMAXON, 2009, MARVINSKETCH 5 2 6