Department of Biomedical Engineering, University of Michigan, Ann Arbor, MI, USA.
Biomed Microdevices. 2011 Dec;13(6):1043-51. doi: 10.1007/s10544-011-9574-y.
Laminar and pulsatile flow of aqueous solutions in microfluidic channels can be useful for controlled delivery of cells and molecules. Dispersion effects resulting from diffusion and convective disturbances, however, result in reagent delivery profiles becoming blurred over the length of the channels. This issue is addressed partially by using oil-in-water phase systems. However, there are limitations in terms of the biocompatibility of these systems for adherent cell culture. Here we present a fully biocompatible aqueous two-phase flow system that can be used to pattern cells within simple microfluidic channel designs, as well as to deliver biochemical treatments to cells according to discrete boundaries. We demonstrate that aqueous two-phase systems are capable of precisely delivering cells as laminar patterns, or as islands by way of forced droplet formation. We also demonstrate that these systems can be used to precisely control chemical delivery to preformed monolayers of cells growing within channels. Treatments containing trypsin were localized more reliably using aqueous two-phase delivery than using conventional delivery in aqueous medium.
层流和脉冲流动的水溶液在微流控通道中可以用于细胞和分子的控制传递。然而,由于扩散和对流干扰引起的分散效应,导致试剂输送分布在通道长度上变得模糊。通过使用油包水相系统可以部分解决这个问题。然而,这些系统在用于贴壁细胞培养的生物相容性方面存在限制。在这里,我们提出了一种完全生物相容的双水相流系统,可用于在简单的微流控通道设计中对细胞进行图案化,以及根据离散边界向细胞输送生化处理。我们证明,双水相系统能够精确地输送细胞,形成层流模式或通过强制液滴形成形成岛状。我们还证明,这些系统可用于精确控制化学物质输送到在通道内生长的预成型单层细胞。与在水性介质中使用传统输送相比,使用双水相输送可以更可靠地定位含有胰蛋白酶的处理物。