台式流体流动生物反应器对体外生物工程组织等效物的设计考虑

Q3 Biochemistry, Genetics and Molecular Biology Biomaterials and biosystems Pub Date : 2022-12-01 DOI:10.1016/j.bbiosy.2022.100063
H.W. Hoyle , C.M.L. Stenger , S.A. Przyborski
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引用次数: 4

摘要

体外生物工程组织等效物的主要目的之一是创造生理上相关的培养条件,以准确地重建细胞微环境。这通常包括细胞外基质、多种细胞类型的共培养和三维培养技术等因素的结合。这些先进的技术可以概括体内组织的一些特性,但是流体流动是一个经常缺失的关键方面。流体流动可以使用生物反应器引入细胞和组织培养,随着我们寻求产生越来越准确的组织模型,生物反应器正变得越来越普遍。定制技术不断发展,为特定应用量身定制系统,并允许与一系列培养技术兼容。为了组织培养物的有效灌注,可以控制许多参数,范围从流体流动的影响,如增加的剪切应力和质量传输,到潜在的不希望的副作用,如温度波动。彻底理解这些属性及其对文化模型的影响有助于更准确地解释结果。生物反应器特性的改进和更完整的表征也将导致在方案中报告培养条件时更准确,有助于实验可重复性,并允许更精确地比较不同系统之间的结果。在这篇综述中,我们分析了台式流动生物反应器开发中涉及的不同因素及其在一系列应用中的潜在生物学影响。
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Design considerations of benchtop fluid flow bioreactors for bio-engineered tissue equivalents in vitro

One of the major aims of bio-engineering tissue equivalents in vitro is to create physiologically relevant culture conditions to accurately recreate the cellular microenvironment. This often includes incorporation of factors such as the extracellular matrix, co-culture of multiple cell types and three-dimensional culture techniques. These advanced techniques can recapitulate some of the properties of tissue in vivo, however fluid flow is a key aspect that is often absent. Fluid flow can be introduced into cell and tissue culture using bioreactors, which are becoming increasingly common as we seek to produce increasingly accurate tissue models. Bespoke technology is continuously being developed to tailor systems for specific applications and to allow compatibility with a range of culture techniques. For effective perfusion of a tissue culture many parameters can be controlled, ranging from impacts of the fluid flow such as increased shear stress and mass transport, to potentially unwanted side effects such as temperature fluctuations. A thorough understanding of these properties and their implications on the culture model can aid with a more accurate interpretation of results. Improved and more complete characterisation of bioreactor properties will also lead to greater accuracy when reporting culture conditions in protocols, aiding experimental reproducibility, and allowing more precise comparison of results between different systems. In this review we provide an analysis of the different factors involved in the development of benchtop flow bioreactors and their potential biological impacts across a range of applications.

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