Karplus M, Post C B
Department of Chemistry, Harvard University, Cambridge, MA 02138, USA.
EXS. 1996;75:111-41. doi: 10.1007/978-3-0348-9225-4_8.
Simulations of lysozyme by molecular dynamics have greatly increased our understanding of this enzyme. It has been shown how the internal motions are related to the structural elements (helices, sheets and loops) of the molecule. Comparisons of the motions in the free and substrate-bound form reveal that most are similar but that there are significant differences. Comparisons of the theoretical results with X-ray and nuclear magnetic resource data show good agreement. The hinge-bending motion, which opens and closes the binding site cleft between the two domains, is correlated with substrate binding. From analysis of simulations with bound substrate, an alternative mechanism for oligoglycoside hydrolysis was proposed. It involves cleavage of an endocyclic C-O bond, instead of the exocyclic cleavage proposed in the standard mechanism. Both mechanisms have been demonstrated in solution, but it is still unclear which is prevalent in lysozyme.
通过分子动力学对溶菌酶进行模拟,极大地增进了我们对这种酶的理解。已经表明了分子内部运动与分子结构元件(螺旋、片层和环)之间的关系。对游离形式和底物结合形式的运动进行比较发现,大多数运动是相似的,但也存在显著差异。理论结果与X射线和核磁共振数据的比较显示出良好的一致性。打开和关闭两个结构域之间结合位点裂缝的铰链弯曲运动与底物结合相关。通过对结合底物的模拟分析,提出了一种寡糖苷水解的替代机制。它涉及环内C-O键的断裂,而不是标准机制中提出的环外断裂。两种机制都已在溶液中得到证实,但溶菌酶中哪种机制普遍存在仍不清楚。