OPEN BACK DOOR IN A MOLECULAR-DYNAMICS SIMULATION OF ACETYLCHOLINESTERASE

被引:242
作者
GILSON, MK
STRAATSMA, TP
MCCAMMON, JA
RIPOLL, DR
FAERMAN, CH
AXELSEN, PH
SILMAN, I
SUSSMAN, JL
机构
[1] CORNELL UNIV,CORNELL THEORY CTR,ITHACA,NY 14853
[2] CORNELL UNIV,BIOCHEM MOLEC & CELL BIOL SECT,ITHACA,NY 14853
[3] UNIV PENN,SCH MED,DEPT PHARMACOL,PHILADELPHIA,PA 19104
[4] WEIZMANN INST SCI,DEPT NEUROBIOL,IL-76100 REHOVOT,ISRAEL
[5] WEIZMANN INST SCI,DEPT STRUCT BIOL,IL-76100 REHOVOT,ISRAEL
关键词
D O I
10.1126/science.8122110
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The enzyme acetylcholinesterase generates a strong electrostatic field that can attract the cationic substrate acetylcholine to the active site. However, the long and narrow active site gorge seems inconsistent with the enzyme's high catalytic rate. A molecular dynamics simulation of acetylcholinesterase in water reveals the transient opening of a short channel, large enough to pass a water molecule, through a thin wall of the active site near tryptophan-84. This simulation suggests that substrate, products, or solvent could move through this ''back door,'' in addition to the entrance revealed by the crystallographic structure. Electrostatic calculations show a strong field at the back door, oriented to attract the substrate and the reaction product choline and to repel the other reaction product, acetate. Analysis of the open back door conformation suggests a mutation that could seal the back door and thus test the hypothesis that thermal motion of this enzyme may open multiple routes of access to its active site.
引用
收藏
页码:1276 / 1278
页数:3
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