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首页> 外文期刊>The Journal of Chemical Physics >Removal forces and adhesion properties of Saccharomyces cerevisiae on glass substrates probed by optical tweezer
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Removal forces and adhesion properties of Saccharomyces cerevisiae on glass substrates probed by optical tweezer

机译:光学镊子探测酿酒酵母在玻璃基板上的去除力和粘附特性

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In agroindustry,the hygiene of solid surfaces is of primary importance in order to ensure that products are safe for consumers.To improve safety,one of the major ways consists in identifying and understanding the mechanisms of microbial cell adhesion to nonporous solid surfaces or filtration membranes.In this paper we investigate the adhesion of the yeast cell Saccharomyces cerevisiae(about 5 mu m in diameter)to a model solid surface,using well-defined hydrophihc glass substrates.An optical tweezer device developed by Piau [J.Non-Newtonian Fluid Mech.144,1,(2007)] was applied to yeast cells in contact with well-characterized glass surfaces.Two planes of observation were used to obtain quantitative measurements of removal forces and to characterize the corresponding mechanisms at a micrometer length scale.The results highlight various adhesion mechanisms,depending on the ionic strength,contact time,and type of yeast.The study has allowed to show a considerable increase of adhering cells with the ionic strength and has provided a quantitative measurement of the detachment forces of cultured yeast cells.Force levels are found to grow with ionic strength and differences in mobility are highlighted.The results clearly underline that a microrheological approach is essential for analyzing the adhesion mechanisms of biological systems at the relevant local scales.
机译:在农业工业中,固体表面的卫生对于确保产品对消费者的安全至关重要。要提高安全性,主要方法之一是识别和理解微生物细胞粘附在无孔固体表面或滤膜上的机制。本文研究了酵母细胞酿酒酵母(直径约5微米)在模型固体表面上的粘附,使用了明确的亲水玻璃基板。由Piau开发的光学镊子装置[J.Non-Newtonian Fluid Mech.144,1,(2007)]应用于与特征明确的玻璃表面接触的酵母细胞。使用两个观察平面对脱模力进行定量测量,并在微米长度尺度上表征相应的机理。结果突出显示了各种粘附机制,这取决于离子强度,接触时间和酵母的类型。该研究已显示出粘附细胞的大量增加具有离子强度,并提供了定量测量培养的酵母细胞分离力的方法。发现离子水平会随着离子强度的增加而增长,并且突出了迁移率的差异。结果清楚地表明,微流变方法对于分析粘附机制至关重要有关的地方规模的生物系统。

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