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首页> 外文期刊>Biomacromolecules >Molecular Dynamics Unlocks Atomic Level Self-Assembly of the Exopolysaccharide Matrix of Water-Treatment Granular Biofilms
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Molecular Dynamics Unlocks Atomic Level Self-Assembly of the Exopolysaccharide Matrix of Water-Treatment Granular Biofilms

机译:分子动力学解锁水处理颗粒生物膜的外多糖基质的原子能级自组装。

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摘要

Biofflm formation, in which bacteria are embedded within an extracellular matrix, is the default form of microbial life in most natural and engineered habitats. In this work, atomistic molecular dynamics simulations were employed to examine the self-assembly of the polysaccharide Granulan to provide insight into the molecular interactions that lead to biofilm formation. Granulan is a major gel forming matrix component of granular microbial biofilms found in used-water treatment systems. Molecular dynamics simulations showed that Granulan forms an antiparallel double helix stabilized by complementary hydrogen bonds between the β-glucosamine of one strand and the N-acetyl-β-galactosamine-2-acetoamido-2-deoxy-α-galactopyranuronic pair of the other in both the presence and absence of Ca~(2+). It is shown that Ca~(2+) binds primarily to the carboxyl group of the terminal hexuronic acid of the sugar branch and that interactions between branches mediated by Ca~(2+) suggest a possible mechanism for strengthening gels by facilitating interhelical bridging.
机译:Biofflm的形成是细菌在大多数自然和工程栖息地中的默认生命形式,其中细菌被嵌入细胞外基质中。在这项工作中,原子分子动力学模拟被用来检查多糖颗粒的自组装,以提供导致生物膜形成的分子相互作用的见解。颗粒剂是在废水处理系统中发现的颗粒状微生物生物膜的主要凝胶形成基质成分。分子动力学模拟表明,颗粒由一条链的β-葡萄糖胺与另一条链的N-乙酰基-β-半乳糖胺-2-乙酰氨基-2-脱氧-α-吡喃半乳糖醛酸对之间的互补氢键形成稳定的反平行双螺旋。 Ca〜(2+)的存在与否。结果表明,Ca〜(2+)主要与糖分支末端己糖醛酸的羧基结合,Ca〜(2+)介导的分支之间的相互作用提示可能通过促进螺旋间桥联来增强凝胶。

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