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用于内皮细胞生物学的宏观和微观流体流动系统。

Macro- and microscale fluid flow systems for endothelial cell biology.

机构信息

Department of Biomedical Engineering, Wisconsin Institutes for Medical Research, University of Wisconsin-Madison, 1111 Highland Avenue, Madison, WI 53705, USA.

出版信息

Lab Chip. 2010 Jan 21;10(2):143-60. doi: 10.1039/b913390a. Epub 2009 Oct 9.

Abstract

Recent advances in microfluidics have brought forth new tools for studying flow-induced effects on mammalian cells, with important applications in cardiovascular, bone and cancer biology. The plethora of microscale systems developed to date demonstrate the flexibility of microfluidic designs, and showcase advantages of the microscale that are simply not available at the macroscale. However, the majority of these systems will likely not achieve widespread use in the biological laboratory due to their complexity and lack of user-friendliness. To gain widespread acceptance in the biological research community, microfluidics engineers must understand the needs of cell biologists, while biologists must be made aware of available technology. This review provides a critical evaluation of cell culture flow (CCF) systems used to study the effects of mechanical forces on endothelial cells (ECs) in vitro. To help understand the need for various designs of CCF systems, we first briefly summarize main properties of ECs and their native environments. Basic principles of various macro- and microscale systems are described and evaluated. New opportunities are uncovered for developing technologies that have potential to both improve efficiency of experimentation as well as answer important biological questions that otherwise cannot be tackled with existing systems. Finally, we discuss some of the unresolved issues related to microfluidic cell culture, suggest possible avenues of investigation that could resolve these issues, and provide an outlook for the future of microfluidics in biological research.

摘要

微流控技术的最新进展为研究流动对哺乳动物细胞的影响提供了新工具,在心血管、骨骼和癌症生物学等领域具有重要的应用。迄今为止,已经开发出了大量的微尺度系统,这些系统展示了微流控设计的灵活性,并展示了微尺度的优势,而这些优势在宏观尺度上是无法实现的。然而,由于这些系统的复杂性和缺乏用户友好性,它们可能不会在生物实验室中得到广泛应用。为了在生物研究界得到广泛接受,微流控工程师必须了解细胞生物学家的需求,而生物学家也必须了解可用的技术。本综述对用于研究机械力对体外内皮细胞(EC)影响的细胞培养流动(CCF)系统进行了批判性评估。为了帮助理解各种 CCF 系统设计的必要性,我们首先简要总结了 EC 的主要特性及其天然环境。描述并评估了各种宏观和微观系统的基本原理。为开发具有提高实验效率以及回答重要生物学问题潜力的技术提供了新的机会,而这些问题是现有系统无法解决的。最后,我们讨论了与微流控细胞培养相关的一些未解决的问题,提出了可能解决这些问题的途径,并展望了微流控技术在生物研究中的未来。

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