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1,6-连接多糖中强制构象转变的分子动力学模拟

Molecular dynamics simulations of forced conformational transitions in 1,6-linked polysaccharides.

作者信息

Lee Gwangrog, Nowak Wiesław, Jaroniec Justyna, Zhang Qingmin, Marszalek Piotr E

机构信息

Department of Mechanical Engineering and Materials Science, Duke University, Durham, North Carolina, USA.

出版信息

Biophys J. 2004 Sep;87(3):1456-65. doi: 10.1529/biophysj.104.042879.

Abstract

Recent atomic force microscopy stretching measurements of single polysaccharide molecules suggest that their elasticity is governed by force-induced conformational transitions of the pyranose ring. However, the mechanism of these transitions and the mechanics of the pyranose ring are not fully understood. Here we use steered molecular dynamics simulations of the stretching process to unravel the mechanism of forced conformational transitions in 1,6 linked polysaccharides. In contrast to most sugars, 1,6 linked polysaccharides have an extra bond in their inter-residue linkage, C5-C6, around which restricted rotations occur and this additional degree of freedom increases the mechanical complexity of these polymers. By comparing the computational results with the atomic force microscopy data we determine that forced rotations around the C5-C6 bond have a significant and different impact on the elasticity of alpha- and beta-linked polysaccharides. Beta-linkages of a polysaccharide pustulan force the rotation around the C5-C6 bonds and produce a Hookean-like elasticity but do not affect the conformation of the pyranose rings. However, alpha-linkages of dextran induce compound conformational transitions that include simultaneous rotations around the C5-C6 bonds and chair-boat transitions of the pyranose rings. These previously not-recognized transitions are responsible for the characteristic plateau in the force-extension relationship of dextran.

摘要

最近对单个多糖分子进行的原子力显微镜拉伸测量表明,其弹性受吡喃糖环的力诱导构象转变支配。然而,这些转变的机制以及吡喃糖环的力学性质尚未完全理解。在此,我们使用拉伸过程的引导分子动力学模拟来揭示1,6-连接多糖中强制构象转变的机制。与大多数糖类不同,1,6-连接多糖在其残基间连接中有一个额外的键,即C5-C6键,围绕该键会发生受限旋转,这种额外的自由度增加了这些聚合物的机械复杂性。通过将计算结果与原子力显微镜数据进行比较,我们确定围绕C5-C6键的强制旋转对α-和β-连接多糖的弹性有显著且不同的影响。多糖普鲁兰糖的β-连接迫使围绕C5-C6键的旋转,并产生类似胡克弹性,但不影响吡喃糖环的构象。然而,右旋糖酐的α-连接会引发复合构象转变,包括围绕C5-C6键的同时旋转以及吡喃糖环的椅式-船式转变。这些先前未被认识到的转变是右旋糖酐力-伸长关系中特征性平台的原因。

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