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Combined Bacteria Microarray and Quartz Crystal Microbalance Approach for Exploring Glycosignatures of Nontypeable Haemophilus influenzae and Recognition by Host Lectins

机译:细菌微阵列和石英晶体微天平的组合方法探索不可分型流感嗜血杆菌糖特征和宿主凝集素的识别。

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摘要

Recognition of bacterial surface epitopes by host receptors plays an important role in the infectious process and is intimately associated with bacterial virulence. Delineation of bacteria-host interactions commonly relies on the detection of binding events between purified bacteria- and host-target molecules. In this work, we describe a combined microarray and quartz crystal microbalance (QCM) approach for the analysis of carbohydrate-mediated interactions directly on the bacterial surface, thus preserving the native environment of the bacterial targets. Nontypeable Haemophilus influenzae (NTHi) was selected as a model pathogenic species not displaying a polysaccharide capsule or O-antigen-containing lipopolysaccharide, a trait commonly found in several important respiratory pathogens. Here, we demonstrate the usefulness of NTHi microarrays for exploring the presence of carbohydrate structures on the bacterial surface. Furthermore, the microarray approach is shown to be efficient for detecting strain-selective binding of three innate immune lectins, namely, surfactant protein D, human galectin-8, and Siglec-14, to different NTHi clinical isolates. In parallel, QCM bacteria-chips were developed for the analysis of lectin-binding kinetics and affinity. This novel QCM approach involves capture of NTHi on lectin-derivatized chips followed by formaldehyde fixation, rendering the bacteria an integrated part of the sensor chip, and subsequent binding assays with label-free lectins. The binding parameters obtained for selected NTHi-lectin pairs provide further insights into the interactions occurring at the bacterial surface.
机译:宿主受体对细菌表面表位的识别在感染过程中起着重要作用,并与细菌毒力密切相关。细菌与宿主之间相互作用的描述通常取决于对纯化的细菌与宿主靶分子之间结合事件的检测。在这项工作中,我们描述了一种结合微阵列和石英晶体微天平(QCM)的方法,可直接在细菌表面上分析碳水化合物介导的相互作用,从而保留细菌靶标的天然环境。选择非典型流感嗜血杆菌(NTHi)作为不显示多糖荚膜或含O抗原的脂多糖的模型病原体,这是在几种重要的呼吸道病原体中常见的特征。在这里,我们证明了NTHi微阵列在探索细菌表面上碳水化合物结构的存在方面的有用性。此外,显示了微阵列方法对于检测三种先天性免疫凝集素即表面活性剂蛋白D,人半乳凝素8和Siglec-14与不同NTHi临床分离株的菌株选择性结合是有效的。同时,开发了QCM细菌芯片来分析凝集素结合动力学和亲和力。这种新颖的QCM方法涉及在凝集素衍生的芯片上捕获NTHi,然后进行甲醛固定,使细菌成为传感器芯片的组成部分,随后进行无标记凝集素的结合测定。为选定的NTHi-凝集素对获得的结合参数为细菌表面发生的相互作用提供了进一步的见解。

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