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In situ nuclear magnetic resonance microimaging of live biofilms in a microchannel

机译:在微通道中的Live Biofilms的原位核磁共振显微镜

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Biofilms are comprised of microbial cells and an extracellular polymeric substance (EPS) matrix that supports interactions between community members and with the local environment. The highly hydrated EPS matrix makes the application of many biofilm visualization techniques difficult. Hence, to better visualize how biofilms interact with their environment, there is a need for imaging techniques to monitor hydrated state biofilm dynamics. We employed an in situ dynamic approach to construct label-free images of biofilms. In situ imaging was conducted using a vacuum compatible microfluidic reactor, SALVI (System for Analysis at the Liquid Vacuum Interface), for biofilm growth; real-time confocal laser scanning microscopy analysis; and nuclear magnetic resonance (NMR) microimaging and spectroscopy. We integrated SALVI microchannel fluids and live biofilms to demonstrate in situ measurement capabilities, including velocity mapping, diffusion coefficient mapping, relaxometry, localized spectroscopy, T-2* relaxation times, porosity, and two- and three-dimensional imaging within the microchannel at high spatial resolution. We monitored organic acids adjacent to biofilms, suggesting that kinetic rate and substrate-product yield ratio studies are possible using the SALVI microfluidic reactor for growth characterizations. The integration of NMR microimaging studies into the SALVI platform demonstrates that a multimodal microfluidic platform can serve as an avenue to explore complex biological phenomena, such as biofilm attachment to surfaces, with detailed quantitative physical and chemical mapping. The further incorporation of other SALVI-compatible technologies, such as liquid time-of-flight secondary ion mass spectrometry imaging, with NMR microimaging will produce a powerful correlative approach to monitor in situ biofilm chemistry and dynamics at different spatial scales.
机译:生物膜由微生物细胞和细胞外聚合物物质(EPS)基质组成,其支持社区成员与当地环境之间的相互作用。高度水合的EPS基质使得许多生物膜可视化技术的应用困难。因此,为了更好地可视化生物膜如何与其环境相互作用,需要进行成像技术来监测水合状态生物膜动力学。我们采用了一种原位的动态方法来构建自由的生物膜的无标签图像。使用真空相容的微流体反应器,Salvi(液体真空界面的分析系统)进行原位成像,用于生物膜生长;实时共聚焦激光扫描显微镜分析;和核磁共振(NMR)微观和光谱。我们集成了Salvi微通道液体和活生物膜,以便以原位测量能力展示,包括速度映射,扩散系数映射,放松程度,局部光谱,T-2 *放松时间,孔隙率和在高通道内的孔隙率和三维成像空间分辨率。我们监测与生物膜相邻的有机酸,表明使用Salvi微流体反应器用于生长表征的动力学率和基质 - 产率比例。 NMR微观研究进入萨尔维平台的整合表明,多模式微流体平台可以作为探索复杂生物现象的途径,例如生物膜附着到表面,具有详细的定量物理和化学映射。通过NMR Micropimage的其他Salvi兼容技术的进一步掺入其他SALVI兼容技术,例如液体飞行时间二次离子质谱成像,将产生强大的相关方法,以在不同空间尺度处于原位生物膜化学和动力学监测。

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