用于细胞表征、分离和培养的微加工结构

Y. Kikuchi
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引用次数: 0

摘要

真核细胞具有生命的所有基本功能,如新陈代谢、兴奋性、运动和繁殖。生物技术旨在通过控制细胞内和细胞间的生物物理和生化过程,包括基因表达,有效地利用这些细胞功能来实现人工目标。然而,实际使用或可用的技术受到细胞性质的高度可变性和人工处理细胞的脆弱性的限制。技术上的困难也来自于微米尺寸的电池。许多研究人员都认识到,微机械加工在生物技术和相关领域有很大的应用。然而,在这种应用中,工程研究人员似乎存在另一个困难,即了解对微型设备的实际需求或要求以及它们在细胞技术过程中使用的条件。任何错误的设计都将导致与其他程序的不匹配和最终的无用。我们在此报告了微机械通道阵列在血细胞流动特性研究中的成功应用,或者更广泛地说,在通过细胞的机械特性(如可变形性、黏附性和运动性)来表征细胞方面的成功应用,并尝试根据这些特性的差异进一步使用它们来分离细胞。微坑阵列也被描述用于细胞培养,这现在成为细胞科学和生物技术的一个基本过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfabricated structures for cell characterization, separation and culture
Eukaryotic cells have all fundamental functions of life, such as metabolism, excitability, locomotion, and reproduction. Biotechnology aims to effectively use these cellular functions for artificial objectives by controlling intraand intercellular biophysical and biochemical processes including gene expression. However, techniques actually used or usable are very restricted by high variability of cell natures and also fragility of cells with artificial treatments. Technical difficulties also arise from micrometer dimensions of cells. Many researchers would well recognize that micromachining has most useful applications in biotechnology and related fields. In such applications, however, another difficulty appears to exist for engineering researchers to know real needs or requests for microdevices and conditions for their use in the cell technology processes. Any misdesign should lead to mismatch to other procedures and final uselessness. We report here a successful use of micromachined channel arrays in studies of flow properties of blood cells or, more widely, in characterization of cells by their mechanical properties such as deformability, adhesiveness, and motility and an attempt to further use them in separation of cells according to differences in these characters. Micropit arrays are also described for use in cell culture, which now becomes a basic process of cell science and biotechnology.
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