A MOLECULAR-DYNAMICS SIMULATION OF BACTERIOPHAGE-T4 LYSOZYME

被引:13
作者
ARNOLD, GE [1 ]
ORNSTEIN, RL [1 ]
机构
[1] PACIFIC NW LAB, MOLEC SCI RES CTR, RICHLAND, WA 99352 USA
来源
PROTEIN ENGINEERING | 1992年 / 5卷 / 07期
关键词
COMPUTER SIMULATION; PROTEIN DYNAMICS; PROTEIN MOTIONS; T4; LYSOZYME;
D O I
10.1093/protein/5.7.703
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
An analysis of a 400 ps molecular dynamics simulation of the 164 amino acid enzyme T4 lysozyme is presented. The simulation was carried out with all hydrogen atoms modeled explicitly, the inclusion of all 152 crystallographic waters and at a temperature of 300 K. Temporal analysis of the trajectory versus energy, hydrogen bond stability, r.m.s. deviation from the starting crystal structure and radius of gyration, demonstrates that the simulation was both stable and representative of the average experimental structure. Average structural properties were calculated from the enzyme trajectory and compared with the crystal structure. The mean value of the Calpha displacements of the average simulated structure from the X-ray structure was 1.1 +/- 0.1 angstrom; differences of the backbone PHI and PSI angles between the average simulated structure and the crystal structure were also examined. Thermal-B factors were calculated from the simulation for heavy and backbone atoms and both were in good agreement with experimental values. Relationships between protein secondary structure elements and internal motions were studied by examining the positional fluctuations of individual helix, sheet and turn structures. The structural integrity in the secondary structure units was preserved throughout the simulation; however, the A helix did show some unusually high atomic fluctuations. The largest backbone atom r.m.s. fluctuations were found in non-secondary structure regions; similar results were observed for r.m.s. fluctuations of non-secondary structure PHI and PSI angles. In general, the calculated values of r.m.s. fluctuations were quite small for the secondary structure elements. In contrast, surface loops and turns exhibited much larger values, being able to sample larger regions of conformational space. The Calpha difference distance matrix and super-positioning analyses comparing the X-ray structure with the average dynamics structure suggest that a 'hinge-bending' motion occurs between the N- and C-terminal domains.
引用
收藏
页码:703 / 714
页数:12
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