用超声驻波处理凝胶基质中微生物细胞的空间组织的研究。

L Gherardini, S Radel, S Sielemann, O Doblhoff-Dier, M Gröschl, E Benes, A J McLoughlin
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引用次数: 27

摘要

利用超声力保留和操纵微生物细胞已被报道为一种新的细胞固定化技术。在超声驻波场作用下的悬浮液中,首次分析了酵母细胞的空间顺序。开发了一种基于“冻结”空间排列的聚合物凝胶技术。然后将合成的凝胶切片并使用显微技术进行检查。光学显微镜证实了超声场中特定区域的存在,在那里细胞被组织成与驻波压力节面相对应的带。计算机图像分析测量与该细胞分布相关的几个物理参数与理论模型得出的值相匹配。利用扫描电镜分析了各波段细胞间的空间重排和沿节面分布的不均匀性。这些结果补充了正在进行的用超声驻波固定微生物细胞过程的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A study of the spatial organisation of microbial cells in a gel matrix subjected to treatment with ultrasound standing waves.

Retention and manipulation of microbial cells through exploitation of ultrasonic forces has been reported as a novel cell immobilisation technique. The spatial ordering of yeast cells, within suspensions subjected to an ultrasonic standing wave field, was analysed for the first time. A technique, based on 'freezing' the spatial arrangement using polymer gelation was developed. The resultant gel was then sectioned and examined using microscopic techniques. Light Microscopy confirmed the presence of specific regions in the ultrasonic field, where the cells are organised into bands corresponding to the standing waves' pressure nodal planes. Computer Image Analysis measurement of several physical parameters associated with this cell distribution matched the values derived from the theoretical model. The spatial cell-cell re-arrangement within each band and uneven distribution along the nodal planes have been analysed by Scanning Electron Microscopy. These results complement the ongoing study of the process of immobilisation of microbial cells by ultrasound standing waves.

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