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无洁净室制造的大型阀门的系统特性分析,展示了针对芯片上器官应用进行优化的用于自动流体处理的泵和混合器。

Systematic characterization of cleanroom-free fabricated macrovalves, demonstrating pumps and mixers for automated fluid handling tuned for organ-on-chip applications.

作者信息

Bossink Elsbeth G B M, Vollertsen Anke R, Loessberg-Zahl Joshua T, van der Meer Andries D, Segerink Loes I, Odijk Mathieu

机构信息

BIOS Lab on a Chip Group, MESA+Institute, Technical Medical Center, Max Planck Institute for Complex Fluid Dynamics, University of Twente, Enschede, The Netherlands.

Applied Stem Cell Technologies Group, Technical Medical Center, University of Twente, Enschede, The Netherlands.

出版信息

Microsyst Nanoeng. 2022 May 23;8:54. doi: 10.1038/s41378-022-00378-y. eCollection 2022.

Abstract

Integrated valves enable automated control in microfluidic systems, as they can be applied for mixing, pumping and compartmentalization purposes. Such automation would be highly valuable for applications in organ-on-chip (OoC) systems. However, OoC systems typically have channel dimensions in the range of hundreds of micrometers, which is an order of magnitude larger than those of typical microfluidic valves. The most-used fabrication process for integrated, normally open polydimethylsiloxane (PDMS) valves requires a reflow photoresist that limits the achievable channel height. In addition, the low stroke volumes of these valves make it challenging to achieve flow rates of microliters per minute, which are typically required in OoC systems. Herein, we present a mechanical 'macrovalve' fabricated by multilayer soft lithography using micromilled direct molds. We demonstrate that these valves can close off rounded channels of up to 700 µm high and 1000 µm wide. Furthermore, we used these macrovalves to create a peristaltic pump with a pumping rate of up to 48 µL/min and a mixing and metering device that can achieve the complete mixing of a volume of 6.4 µL within only 17 s. An initial cell culture experiment demonstrated that a device with integrated macrovalves is biocompatible and allows the cell culture of endothelial cells over multiple days under continuous perfusion and automated medium refreshment.

摘要

集成阀可实现微流控系统中的自动化控制,因为它们可用于混合、泵送和分隔等目的。这种自动化对于器官芯片(OoC)系统中的应用将非常有价值。然而,OoC系统的通道尺寸通常在数百微米范围内,这比典型的微流控阀大一个数量级。用于集成常开聚二甲基硅氧烷(PDMS)阀的最常用制造工艺需要回流光刻胶,这限制了可实现的通道高度。此外,这些阀的低冲程体积使得实现每分钟微升的流速具有挑战性,而这在OoC系统中通常是需要的。在此,我们展示了一种通过使用微铣直接模具的多层软光刻制造的机械“宏阀”。我们证明这些阀可以关闭高达700μm高、1000μm宽的圆形通道。此外,我们使用这些宏阀创建了一个蠕动泵,其泵送速率高达48μL/min,以及一个混合和计量装置,该装置可以在仅17秒内实现6.4μL体积的完全混合。初步的细胞培养实验表明,带有集成宏阀的装置具有生物相容性,并且可以在连续灌注和自动更换培养基的情况下,使内皮细胞进行多天的细胞培养。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c7f/9124669/3cbc6d8cb2ae/41378_2022_378_Fig1_HTML.jpg

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