Energetics for displacing a single chain from the surface of microcrystalline cellulose into the active site of Acidothermus cellulolyticus Cel5A.

C E Skopec, M E Himmel, J F Matthews, J W Brady
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引用次数: 16

Abstract

A series of molecular mechanics calculations were used to analyze the energetics for moving a single polysaccharide chain from the surface of microcrystalline cellulose into the binding cleft of the Cel5A cellulase from Acidothermus cellulolyticus. A build-up procedure was used to model the placement of a 12-residue oligosaccharide chain along the surface of the enzyme, using as a guide the four residues of the tetrasaccharide substrate co-crystallized with the protein in the crystallographic structure determination. The position of this 12-residue oligosaccharide was used to orient the enzyme properly above two different surfaces of cellulose 1beta, the (1,0,0) and the (1,1,0) faces of the crystal. Constrained molecular dynamics simulations were then used to pull a target chain directly below the enzyme up out of the crystal surface and into the binding groove. The energetics for this process were favorable for both faces, with the step face being more favorable than the planar face, implying that this surface could be hydrolyzed more readily.

将单链从微晶纤维素表面置换到酸热溶纤维素活性位点Cel5A的能量学。
通过一系列分子力学计算,分析了将单个多糖链从微晶纤维素表面移动到酸热菌的Cel5A纤维素酶结合间隙中的能量学。构建过程用于模拟沿着酶表面的12个残基寡糖链的放置,在晶体学结构确定中使用与蛋白质共结晶的四糖底物的四个残基作为指导。这个12个残基寡糖的位置被用来使酶正确地定位在纤维素1 β的两个不同表面上,即晶体的(1,0,0)面和(1,1,0)面。然后使用受限分子动力学模拟将酶正下方的目标链拉出晶体表面并进入结合槽。该过程的能量学对两个面都有利,台阶面比平面面更有利,说明台阶面更容易水解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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