一种转移多孔PDMS膜的新方法,用于高通量芯片上器官和芯片上实验室组装

W. F. Quirós-Solano, N. Gaio, C. Silvestri, Yusuf B Arık, Oscar Stassen, A. D. V. D. Meer, C. Bouten, A. V. D. Berg, Ronald Dekker, P. M. Sarro
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引用次数: 2

摘要

我们提出了一种新的方法,可以轻松可靠地在芯片实验室(LOC)和芯片器官(OOC)设备上转移高孔、大面积、薄的微加工聚二甲基硅氧烷(PDMS)多孔膜。使用硅作为载体衬底和水溶性牺牲层,可以将膜简单且可重复地转移到任何基于pdms的OOC和LOC设备。集成电路和MEMS兼容技术的使用大大减少了制造时间和人工处理的需要。我们的方法适用于自动装配系统,如拾取和放置,这对于显著提高OOC和LOC设备装配的吞吐量至关重要。孔径为8 μm、厚度为4 μm的膜成功转移。通过在带有转移的多孔PDMS膜的OOC上培养两种不同的细胞系来评估转移的活力和生物相容性。
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A novel method to transfer porous PDMS membranes for high throughput Organ-on-Chip and Lab-on-Chip assembly
We present a novel method to easily and reliably transfer highly porous, large area, thin microfabricated Polydimethylsiloxane (PDMS) porous membranes on Lab-on-Chip (LOC) and Organ-on-Chip (OOC) devices. The use of silicon as carrier substrate and a water-soluble sacrificial layer allows a simple and reproducible transfer of the membranes to any PDMS-based OOC and LOC device. The use of IC and MEMS compatible techniques reduces significantly the fabrication time and the need of manual handling. Our method is suitable for automatic assembling systems, such as pick-and-place, crucial to significantly increase the throughput of OOC and LOC devices assembling. Membranes with 8 μm pore size and as thin as 4 μm are successfully transferred. The viability and biocompatibility of the transfer was assessed by culturing two different cell lines on an OOC with transferred porous PDMS membranes.
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