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首页> 外文期刊>Analytical and Bioanalytical Chemistry >Towards chemical analysis of nanostructures in biofilms II: tip-enhanced Raman spectroscopy of alginates
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Towards chemical analysis of nanostructures in biofilms II: tip-enhanced Raman spectroscopy of alginates

机译:走向生物膜中纳米结构的化学分析II:海藻酸盐的尖端增强拉曼光谱

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摘要

This study examines the feasibility of using tip-enhanced Raman spectroscopy (TERS) for label-free chemical characterization of nanostructures in biological systems. For this purpose, a well-defined model system consisting of calcium alginate fibers is studied. In a companion paper, calcium alginate fibers and their network structures were shown to be a good model for the extracellular polysaccharides of biofilms at the nanoscale. TERS analysis of biological macromolecules, such as alginates, is complicated by heterogeneity in their sequence, molecular weight, and conformations, their small Raman cross-section, and the large number of functional groups, which can chemically interact with the silver surface of the tip and cause significant band shifts. Due to these effects, Raman frequencies in TERS spectra of biopolymers do not necessarily resemble band positions in the normal Raman spectrum of the bulk material, as is the case for less complex samples (e.g., dye molecules) studied so far. Additionally, analyte decomposition due to laser heating can have a significant influence, and carbon contamination signals can sometimes even overwhelm the weak analyte signals. Based on the investigation of alginates, strategies for spectra correction, choice of appropriate reference samples, and data interpretation are presented. With this approach, characteristic frequency ranges and specific marker bands can be found for biological macromolecules that can be employed for their identification in complex environments.
机译:这项研究检验了使用尖端增强拉曼光谱(TERS)进行生物系统中纳米结构的无标记化学表征的可行性。为此,研究了由藻酸钙纤维组成的定义明确的模型系统。在伴侣论文中,藻酸钙纤维及其网络结构被证明是纳米级生物膜细胞外多糖的良好模型。生物大分子(例如藻酸盐)的TERS分析因其序列,分子量和构象的异质性,拉曼横截面小以及可以与尖端的银表面化学相互作用的大量官能团而变得复杂并导致明显的频带偏移。由于这些效应,生物聚合物的TERS光谱中的拉曼频率不一定类似于块状材料的正常拉曼光谱中的能带位置,就目前为止研究的较不复杂的样品(例如染料分子)而言就是这种情况。此外,由于激光加热而导致的分析物分解可能会产生重大影响,并且碳污染信号有时甚至会淹没弱的分析物信号。在研究藻酸盐的基础上,提出了光谱校正,适当参考样品选择和数据解释的策略。通过这种方法,可以发现生物大分子的特征频率范围和特定标记带,这些生物大分子可用于在复杂环境中进行鉴定。

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