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微流体积聚测定法用于探测形成生物膜的硅藻细胞的附着情况。

Microfluidic accumulation assay probes attachment of biofilm forming diatom cells.

作者信息

Nolte Kim A, Schwarze Jana, Rosenhahn Axel

机构信息

a Analytical Chemistry - Biointerfaces , Ruhr- Universität Bochum , Bochum , Germany.

出版信息

Biofouling. 2017 Aug;33(7):531-543. doi: 10.1080/08927014.2017.1328058. Epub 2017 Jul 4.

DOI:10.1080/08927014.2017.1328058
PMID:28675050
Abstract

Testing of fouling release (FR) technologies is of great relevance for discovery of the next generation of protective marine coatings. In this paper, an accumulation assay to test diatom interaction under laminar flow with the model organism Navicula perminuta is introduced. Using time lapse microscopy with large area sampling allows determination of the accumulation kinetics of the diatom on three model surfaces with different surface properties at different wall shear stresses. The hydrodynamic conditions within the flow cell are described and a suitable shear stress range to perform accumulation experiments is identified at which statistically significant discrimination of surfaces is possible. The observed trends compare well to published adhesion preferences of N. perminuta. Also, previously determined trends of critical wall shear stresses required for cell removal from the same set of functionalized interfaces shows consistent trends. Initial attachment mediated by extracellular polymeric substances (EPS) present outside the diatoms leads to the conclusion that the FR potential of the tested coating candidates can be deducted from dynamic accumulation experiments under well-defined hydrodynamic conditions. As well as testing new coating candidates for their FR properties, monitoring of the adhesion process under flow provides additional information on the mechanism and geometry of attachment and the population kinetics.

摘要

污垢释放(FR)技术的测试对于发现下一代海洋防护涂层具有重要意义。本文介绍了一种在层流条件下测试硅藻与模式生物微小舟形藻相互作用的累积试验。使用具有大面积采样功能的延时显微镜,可以确定硅藻在不同壁面剪应力下在三种具有不同表面性质的模型表面上的累积动力学。描述了流动池内的流体动力学条件,并确定了进行累积实验的合适剪应力范围,在此范围内可以对表面进行具有统计学意义的区分。观察到的趋势与已发表的微小舟形藻的附着偏好比较吻合。此外,先前确定的从同一组功能化界面去除细胞所需的临界壁面剪应力趋势也显示出一致的趋势。硅藻外部存在的细胞外聚合物(EPS)介导的初始附着导致这样的结论:可以在明确的流体动力学条件下通过动态累积实验推断出测试候选涂层的FR潜力。除了测试新的候选涂层的FR性能外,对流动条件下附着过程的监测还提供了有关附着机制、几何形状和种群动力学的额外信息。

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引用本文的文献

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Appl Biochem Biotechnol. 2021 May;193(5):1379-1396. doi: 10.1007/s12010-020-03386-8. Epub 2020 Jul 23.