Occhetta Paola, Visone Roberta, Rasponi Marco
Department of Electronics, Information and Bioengineering, Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133, Milano, Italy.
Department of Biomedicine, University Hospital Basel, University Basel, Hebelstrasse 20, 4056, Basel, Switzerland.
Methods Mol Biol. 2017;1612:303-323. doi: 10.1007/978-1-4939-7021-6_23.
The design of innovative tools for generating physiologically relevant three-dimensional (3D) in vitro models has been recently recognized as a fundamental step to study cell responses and long-term tissue functionalities thanks to its ability to recapitulate the complexity and the dimensional scale of the cellular microenvironment, while directly integrating high-throughput and automatic screening capabilities.This chapter addresses the development of a poly(dimethylsiloxane)-based microfluidic platform to (1) generate and culture 3D cellular microaggregates under continuous flow perfusion while (2) conditioning them with different combinations/concentrations of soluble factors (i.e., growth factors, morphogens or drug molecules), in a high-throughput fashion. The proposed microfluidic system thus represents a promising tool for establishing innovative high-throughput models for drug screening, investigation of tissues morphogenesis, and optimization of tissue engineering protocols.
最近,设计用于生成生理相关三维(3D)体外模型的创新工具已被视为研究细胞反应和长期组织功能的基本步骤,这得益于其能够重现细胞微环境的复杂性和尺寸规模,同时直接整合高通量和自动筛选能力。本章介绍了一种基于聚二甲基硅氧烷的微流控平台的开发,该平台能够(1)在连续流动灌注下生成和培养3D细胞微聚集体,同时(2)以高通量方式用不同组合/浓度的可溶性因子(即生长因子、形态发生素或药物分子)对其进行处理。因此,所提出的微流控系统是建立用于药物筛选、组织形态发生研究和组织工程方案优化的创新高通量模型的有前途的工具。