MOLECULAR MECHANICS ANALYSIS OF INHIBITOR BINDING TO HIV-1 PROTEASE

被引:31
作者
SANSOM, CE
WU, J
WEBER, IT
机构
[1] THOMAS JEFFERSON UNIV, JEFFERSON CANC INST, PHILADELPHIA, PA 19107 USA
[2] NCI, FREDERICK CANC RES FACIL, MACROMOLEC STRUCT LAB, FREDERICK, MD 21702 USA
来源
PROTEIN ENGINEERING | 1992年 / 5卷 / 07期
关键词
ASPARTIC PROTEASES; HIV-1; INHIBITOR BINDING; MOLECULAR MECHANICS;
D O I
10.1093/protein/5.7.659
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
Crystallographic structures of HIV protease with three different peptide-mimetic inhibitors were subjected to energy minimization using molecular mechanics, the minimized structures analyzed and the inhibitor binding energies calculated. Partial charge assignment for the hydrogen bonded catalytic aspartic acids, Asp25 and -25', was in good agreement with charge calculations using semi-empirical molecular orbital methods. Root mean square deviations on minimization were small and similar for both subunits in the protease dimer. The surface loops, which had the largest B factors, changed most on minimization; the hydrophobic core and the inhibitor binding site showed little change. The distance-dependent dielectric of D(r) = 4r was found to be preferable to D(r) = r. Distance restraints were applied for the intermolecular hydrogen bonds to maintain the conformation of the inhibitor binding site. Using the dielectric of D(r) = 4r, the calculated interaction energy of the three inhibitors with the protease ranged from -53 to -56 kcal/mol. The psi groups of the inhibitors were changed to add or remove a 'transition state analogue' hydroxyl group, and the loss in energy on the removal of this group was calculated to be 0.9-1.7 kcal/mol. This would represent 19-36% of the total measured difference in binding energy between the inhibitors JG365 and MVT-101.
引用
收藏
页码:659 / 667
页数:9
相关论文
共 44 条
[11]   HYDROGEN-BONDING AND BIOLOGICAL SPECIFICITY ANALYZED BY PROTEIN ENGINEERING [J].
FERSHT, AR ;
SHI, JP ;
KNILLJONES, J ;
LOWE, DM ;
WILKINSON, AJ ;
BLOW, DM ;
BRICK, P ;
CARTER, P ;
WAYE, MMY ;
WINTER, G .
NATURE, 1985, 314 (6008) :235-238
[12]  
FITZGERALD PMD, 1990, J BIOL CHEM, V265, P14209
[13]   FUNCTION MINIMIZATION BY CONJUGATE GRADIENTS [J].
FLETCHER, R ;
REEVES, CM .
COMPUTER JOURNAL, 1964, 7 (02) :149-&
[14]   CALCULATION OF THE TOTAL ELECTROSTATIC ENERGY OF A MACROMOLECULAR SYSTEM - SOLVATION ENERGIES, BINDING-ENERGIES, AND CONFORMATIONAL-ANALYSIS [J].
GILSON, MK ;
HONIG, B .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1988, 4 (01) :7-18
[15]   COMPARISON OF INHIBITOR BINDING IN HIV-1 PROTEASE AND IN NONVIRAL ASPARTIC PROTEASES - THE ROLE OF THE FLAP [J].
GUSTCHINA, A ;
WEBER, IT .
FEBS LETTERS, 1990, 269 (01) :269-272
[16]   COMPARATIVE-ANALYSIS OF THE SEQUENCES AND STRUCTURES OF HIV-1 AND HIV-2 PROTEASES [J].
GUSTCHINA, A ;
WEBER, IT .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1991, 10 (04) :325-339
[17]   PARTIAL-PURIFICATION AND SUBSTRATE ANALYSIS OF BACTERIALLY EXPRESSED HIV PROTEASE BY MEANS OF MONOCLONAL-ANTIBODY [J].
HANSEN, J ;
BILLICH, S ;
SCHULZE, T ;
SUKROW, S ;
MOELLING, K .
EMBO JOURNAL, 1988, 7 (06) :1785-1791
[18]   HUMAN IMMUNODEFICIENCY VIRUS-1 PROTEASE .2. USE OF PH RATE STUDIES AND SOLVENT KINETIC ISOTOPE EFFECTS TO ELUCIDATE DETAILS OF CHEMICAL MECHANISM [J].
HYLAND, LJ ;
TOMASZEK, TA ;
MEEK, TD .
BIOCHEMISTRY, 1991, 30 (34) :8454-8463
[19]   STRUCTURE AT 2.5-A RESOLUTION OF CHEMICALLY SYNTHESIZED HUMAN-IMMUNODEFICIENCY-VIRUS TYPE-1 PROTEASE COMPLEXED WITH A HYDROXYETHYLENE-BASED INHIBITOR [J].
JASKOLSKI, M ;
TOMASSELLI, AG ;
SAWYER, TK ;
STAPLES, DG ;
HEINRIKSON, RL ;
SCHNEIDER, J ;
KENT, SBH ;
WLODAWER, A .
BIOCHEMISTRY, 1991, 30 (06) :1600-1609
[20]   MURINE LEUKEMIA-VIRUS MATURATION - PROTEASE REGION REQUIRED FOR CONVERSION FROM IMMATURE TO MATURE CORE FORM AND FOR VIRUS INFECTIVITY [J].
KATOH, I ;
YOSHINAKA, Y ;
REIN, A ;
SHIBUYA, M ;
ODAKA, T ;
OROSZLAN, S .
VIROLOGY, 1985, 145 (02) :280-292