Computational Study of the Catalytic Mechanism of the Cruzain Cysteine Protease

被引:43
作者
Arafet, Kernel [1 ]
Ferrer, Silvia [1 ]
Moliner, Vicent [1 ]
机构
[1] Univ Jaume 1, Dept Quim Fis & Analit, Castellon de La Plana 12071, Spain
关键词
cysteine proteases; catalytic mechanism; QM/MM; molecular dynamics; PMF; ENERGY SURFACES; COMBINED QM/MM; ACTIVE-SITE; ION-PAIR; PAPAIN; HYDROLYSIS; PATHWAY; ATTACK; SIMULATIONS; SPECIFICITY;
D O I
10.1021/acscatal.6b03096
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
Cysteine proteases of the papain family are involved in many diseases, making them attractive targets for developing drugs. In this paper, different catalytic mechanisms of cruzain cysteine protease have been studied on the basis of molecular dynamics simulations within hybrid quantum mechanics/molecular mechanics potentials. The obtained free energy surfaces have allowed characterizing every single step along the mechanisms. The results confirm that the full process can be divided into an acylation and a deacylation stage, but important differences with respect to previous studies can be deduced from our calculations. Thus, our calculations suggest that the acylation stage takes place in a stepwise mechanism where a proton from a conserved His159 is transferred first to the Ni atom of the peptide and, after a transient intermediate is located, the Cys25 attacks the carbonyl carbon atom. The stabilization of the activated Cys25 is achieved by an effect of the local environment through interactions with residues Trp26, Gly160, and His159, rather than by a less complex Cys25S(-)/His159H(+) ion pair. In contrast, the deacylation stage, which was proposed to occur via a general base-catalyzed reaction whereby His159 activates a water molecule that attacks the peptide, would take place through a concerted mechanism. In this stage, the role of some residues of the active site, such as Gln19, Asn175, and Trp181, appears to also be crucial. Interestingly, the local environment of His159 would be modulating its pK(a) value to act as an acid in the acylation stage and as a base in the following deacylation stage.
引用
收藏
页码:1207 / 1215
页数:9
相关论文
共 49 条
[1]   MECHANISM OF ACTION OF PAPAIN WITH A SPECIFIC ANILIDE SUBSTRATE [J].
ANGELIDES, KJ ;
FINK, AL .
BIOCHEMISTRY, 1979, 18 (11) :2355-2363
[2]   MECHANISM OF THIOL PROTEASE CATALYSIS - DETECTION AND STABILIZATION OF A TETRAHEDRAL INTERMEDIATE IN PAPAIN CATALYSIS [J].
ANGELIDES, KJ ;
FINK, AL .
BIOCHEMISTRY, 1979, 18 (11) :2363-2369
[3]   A SIMULATION OF THE SULFUR ATTACK IN THE CATALYTIC PATHWAY OF PAPAIN USING MOLECULAR MECHANICS AND SEMIEMPIRICAL QUANTUM-MECHANICS [J].
ARAD, D ;
LANGRIDGE, R ;
KOLLMAN, PA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1990, 112 (02) :491-502
[4]   First Quantum Mechanics/Molecular Mechanics Studies of the Inhibition Mechanism of Cruzain by Peptidyl Halomethyl Ketones [J].
Arafet, Kemel ;
Ferrer, Silvia ;
Moliner, Vicent .
BIOCHEMISTRY, 2015, 54 (21) :3381-3391
[5]  
BROCKLEHURST K, 1979, INT J BIOCHEM, V10, P259, DOI 10.1016/0020-711X(79)90088-0
[6]   A combined QM/MM study of the nucleophilic addition reaction of methanethiolate and N-methylacetamide [J].
Byun, K ;
Gao, JL .
JOURNAL OF MOLECULAR GRAPHICS & MODELLING, 2000, 18 (01) :50-55
[7]   Mapped interpolation scheme for single-point energy corrections in reaction rate calculations and a critical evaluation of dual-level reaction path dynamics methods [J].
Chuang, YY ;
Corchado, JC ;
Truhlar, DG .
JOURNAL OF PHYSICAL CHEMISTRY A, 1999, 103 (08) :1140-1149
[8]   Interpolated variational transition-state theory by mapping [J].
Corchado, JC ;
Coitiño, EL ;
Chuang, YY ;
Fast, PL ;
Truhlar, DG .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (14) :2424-2438
[9]   IS THE THIOLATE-IMIDAZOLIUM ION-PAIR THE CATALYTICALLY IMPORTANT FORM OF PAPAIN [J].
CREIGHTON, DJ ;
GESSOUROUN, MS ;
HEAPES, JM .
FEBS LETTERS, 1980, 110 (02) :319-322
[10]   BINDING OF CHLOROMETHYL KETONE SUBSTRATE ANALOGS TO CRYSTALLINE PAPAIN [J].
DRENTH, J ;
KALK, KH ;
SWEN, HM .
BIOCHEMISTRY, 1976, 15 (17) :3731-3738