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Combination of synchrotron radiation-based Fourier transforms infrared microspectroscopy and confocal laser scanning microscopy to understand spatial heterogeneity in aquatic multispecies biofilms

机译:基于同步加速器辐射的傅里叶变换红外光谱和共聚焦激光扫描显微镜的结合,以了解水生多物种生物膜中的空间异质性

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摘要

Understanding the spatial heterogeneity within environmental biofilms can provide an insight into compartmentalization of different functions in biofilm communities. We used a non-destructive and label-free method by combining Synchrotron Radiation-based Fourier Transform Infrared Microspectroscopy (SR-FTIR) with Confocal Laser Scanning Microscopy (CLSM) to distinguish the spatial chemical changes within multispecies biofilms grown from natural storm waters in flow cells. Among the different surfaces tested for biofilm growth and optimal imaging, mylar membranes were most suited and it enabled successful spatial infrared imaging of natural biofilms for obtaining reliable and interpretable FTIR spectra. Time series analysis of biofilm growth showed that influx of water during biofilm growth, results in significant changes in biofilm formation. Early biofilms showed active nutrient acquisition and desiccation tolerance mechanisms corresponding with accumulation of secreted proteins. Statistical approach used for the evaluation of chemical spectra allowed for clustering and classification of various regions of the biofilm. Microheterogeneity was observed in the polymeric components of the biofilm matrix, including cellulose, glycocalyx and dextran-like molecules. Fructan and glycan-rich regions were distinguishable and glycocalyx was abundant in the strongly adhering peripheral regions of biofilms. Inner core showed coexistence of oxygen dimers and ferrihydrite that will likely support growth of Fe (Ⅱ)-oxidising bacteria. The combined SR-FTIR microspectroscopy and CSLM approach for complex natural biofilms described here will be useful both in understanding heterogeneity of matrix components and in correlating functions of juxtaposed microbial species in complex natural biofilms with physicochemical microenvironment to which they are exposed.
机译:了解环境生物膜内的空间异质性可以提供对生物膜群落中不同功能的区隔的了解。我们通过将基于同步辐射的傅立叶变换红外光谱(SR-FTIR)与共聚焦激光扫描显微镜(CLSM)结合使用了无损和无标签的方法,以区分由自然雨水流动形成的多种生物膜中的空间化学变化。细胞。在用于生物膜生长和最佳成像测试的不同表面中,聚酯薄膜非常适合,它可以对天然生物膜进行成功的空间红外成像,从而获得可靠且可解释的FTIR光谱。生物膜生长的时间序列分析表明,生物膜生长过程中水的流入导致生物膜形成的显着变化。早期的生物膜表现出主动的营养获取和脱水耐受机制,与分泌的蛋白质积累相对应。用于评估化学光谱的统计方法可以对生物膜的各个区域进行聚类和分类。在生物膜基质的聚合物成分中观察到微异质性,包括纤维素,糖萼和右旋糖酐样分子。果胶和富含聚糖的区域是可区分的,而糖膜在生物膜的牢固粘附的外围区域中丰富。内核显示出氧二聚体和水铁矿共存,这很可能支持氧化Fe(Ⅱ)的细菌的生长。此处所述的用于复杂天然生物膜的SR-FTIR显微技术和CSLM的组合方法将有助于理解基质成分的异质性,以及将复杂天然生物膜中并列的微生物物种与其所暴露的物理化学微环境相关联的功能。

著录项

  • 来源
    《Water Research》 |2014年第1期|123-133|共11页
  • 作者单位

    Singapore Delft Water Alliance (SDWA), National University of Singapore, 2 Engineering Drive 2,Engineering Workshop 1, #02-05 Singapore 117577, Singapore;

    Singapore Synchrotron Light Source (SSLS), National University of Singapore, 5 Research Link,Singapore 117603, Singapore;

    Singapore Synchrotron Light Source (SSLS), National University of Singapore, 5 Research Link,Singapore 117603, Singapore;

    Metabolites Biology Laboratory, Department of Biological Sciences, National University of Singapore,Singapore 117543, Singapore,NUS Environmental Research Institute (NERI), T-Lab Building, 5A Engineering Drive 1,Singapore 117411, Singapore,Singapore Center for Environmental Life Sciences Engineering (SCELSE), Nanyang Technological University,60 Nanyang Drive, SBS-01N-27, Singapore 637551, Singapore;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biofilm heterogeneity; Aquatic biofilms; Water; Synchrotron;

    机译:生物膜异质性;水生生物膜;水;同步加速器;

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