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Unraveling Escherichia coli’s Cloak: Identification of Phosphoethanolamine Cellulose Its Functions and Applications

机译:揭开大肠杆菌的隐身衣:磷酸乙醇胺纤维素的鉴定其功能和应用

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摘要

Bacterial biofilms are complex, multicellular communities made up of bacteria enmeshed in a self-produced extracellular matrix (ECM) that protects against environmental stress. The ECM often comprises insoluble components, which complicates the study of biofilm composition, structure, and function. Wrinkled, agar-grown Escherichia coli biofilms require 2 insoluble macromolecules: curli amyloid fibers and cellulosic polymers. We quantified these components with solid-state nuclear magnetic resonance (NMR) and determined that curli contributed 85% of the isolated uropathogenic E coli ECM dry mass. The remaining 15% was cellulosic, but, surprisingly, was not ordinary cellulose. We tracked the identity of the unanticipated peak in the 13C NMR spectrum of the cellulosic component and discovered that E coli secrete phosphoethanolamine (pEtN)-modified cellulose. Cellulose is the most abundant biopolymer on the planet, and this marked the first identification of a naturally, chemically modified cellulose. To investigate potential roles of pEtN cellulose, we customized a newly designed live-cell monolayer rheometer and demonstrated that pEtN cellulose facilitated E coli attachment to bladder epithelial cells and acted as a glue, keeping curli cell associated. The discovery of pEtN cellulose opens questions regarding its biological function(s) and provides opportunities in materials science to explore this newly discovered biopolymer.
机译:细菌生物膜是由细菌组成的复杂的多细胞群落,这些细菌聚集在自我产生的细胞外基质(ECM)中,可以防止环境压力。 ECM通常包含不溶性成分,这使生物膜组成,结构和功能的研究变得复杂。皱褶,琼脂生长的大肠杆菌生物膜需要2种不可溶的大分子:卷曲的淀粉样蛋白纤维和纤维素聚合物。我们用固态核磁共振(NMR)量化了这些成分,并确定curli贡献了分离出的尿路致病性大肠杆菌ECM干物质的85%。剩余的15%是纤维素,但令人惊讶的是,它不是普通纤维素。我们在纤维素组分的 13 C NMR光谱中追踪了意外峰的身份,并发现大肠杆菌分泌了磷酸乙醇胺(pEtN)修饰的纤维素。纤维素是地球上最丰富的生物聚合物,这标志着天然化学修饰纤维素的首次鉴定。为了研究pEtN纤维素的潜在作用,我们定制了一种新设计的活细胞单层流变仪,并证明了pEtN纤维素可促进大肠杆菌附着在膀胱上皮细胞上并起胶的作用,保持卷曲细胞相关。 pEtN纤维素的发现提出了有关其生物学功能的疑问,并为材料科学探索这种新发现的生物聚合物提供了机会。

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