Department of Biomedical Engineering, University of Wisconsin, Madison, WI 53706-1609, USA.
IEEE Rev Biomed Eng. 2008;1(1):75-93. doi: 10.1109/RBME.2008.2008241. Epub 2008 Nov 5.
The cellular microenvironment is an increasingly discussed topic in cell biology as it has been implicated in the progression of cancer and the maintenance of stem cells. The microenvironment of a cell is an organized combination of extracellular matrix (ECM), cells, and interstitial fluid that influence cellular phenotype through physical, mechanical, and biochemical mechanisms. Screening can be used to map combinations of cells and microenvironments to phenotypic outcomes in a way that can help develop more predictive in vitro models and to better understand phenotypic mechanisms from a systems biology perspective. This paper examines microenvironmental screening in terms of outcomes and benefits, key elements of the screening process, challenges for implementation, and a possible role for microfluidics as the screening platform. To assess microfluidics for use in microenvironmental screening, examples and categories of micro-scale and microfluidic technology are highlighted. Microfluidic technology shows promise for simultaneous control of multiple parameters of the microenvironment and can provide a base for scaling advanced cell-based experiments into automated high-throughput formats.
细胞微环境是细胞生物学中一个日益讨论的话题,因为它与癌症的进展和干细胞的维持有关。细胞的微环境是细胞外基质(ECM)、细胞和间质液的有组织组合,通过物理、机械和生化机制影响细胞表型。筛选可以用于以帮助开发更具预测性的体外模型和从系统生物学角度更好地理解表型机制的方式来绘制细胞和微环境的组合与表型结果之间的关系。本文从结果和益处、筛选过程的关键要素、实施的挑战以及微流控作为筛选平台的可能作用等方面检查了微环境筛选。为了评估微流控在微环境筛选中的应用,突出了微尺度和微流控技术的示例和类别。微流控技术有望同时控制微环境的多个参数,并为将先进的基于细胞的实验扩展到自动化高通量格式提供基础。