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利用微流控电化学池研究生物界面生物膜的流体动力学效应:以铜绿假单胞菌为例

Hydrodynamic Effects on Biofilms at the Biointerface Using a Microfluidic Electrochemical Cell: Case Study of Pseudomonas sp.

机构信息

Centre de recherche de l'Institut universitaire de cardiologie et de pneumologie de Québec , Québec City, Québec G1V 4G5, Canada.

出版信息

Langmuir. 2017 Feb 28;33(8):2041-2049. doi: 10.1021/acs.langmuir.6b03889. Epub 2017 Feb 14.

Abstract

The anchoring biofilm layer is expected to exhibit a different response to environmental stresses than for portions in the bulk, due to the protection from other strata and the proximity to the attachment surface. The effect of hydrodynamic stress on surface-adhered biofilm layers was tested using a specially designed microfluidic bio flow cell with an embedded three-electrode detection system. In situ electrochemical impedance spectroscopy (EIS) measurements of biocapacitance and bioresistance of Pseudomonas sp. biofilms were conducted during the growth phase and under different shear flow conditions with verification by other surface sensitive techniques. Distinct, but reversible changes to the amount of biofilm and its structure at the attachment surface were observed during the application of elevated shear stress. In contrast, regular microscopy revealed permanent distortion to the biofilm bulk, in the form of streamers and ripples. Following the application of extreme shear stresses, complete removal of significant portions of biofilm outer layers occurred, but this did not change the measured quantity of biofilm at the electrode attachment surface. The structure of the remaining biofilm, however, appeared to be modified and susceptible to further changes following application of shear stress directly to the unprotected biofilm layers at the attachment surface.

摘要

锚定生物膜层预计会表现出与整体部分不同的环境压力响应,因为它受到其他地层的保护以及靠近附着表面。使用专门设计的带有嵌入式三电极检测系统的微流体生物流动池,测试了水动力对表面附着生物膜层的影响。在生长阶段和不同剪切流条件下,通过原位电化学阻抗谱(EIS)测量了 Pseudomonas sp.生物膜的生物电容和生物电阻,并通过其他表面敏感技术进行了验证。在施加高剪切应力期间,在附着表面观察到生物膜数量及其结构的明显但可恢复的变化。相比之下,常规显微镜显示生物膜整体发生了永久性变形,形成了流纹和波纹。在施加极端剪切应力之后,生物膜外层的大部分会被完全去除,但这不会改变电极附着表面处测量的生物膜量。然而,剩余生物膜的结构似乎发生了变化,并且在直接向附着表面未受保护的生物膜层施加剪切应力后,容易进一步发生变化。

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