乳房芯片:用于治疗学发展的乳房通道系统的模拟。

IF 1.4
Meggie M G Grafton, Lei Wang, Pierre-Alexandre Vidi, James Leary, Sophie A Lelièvre
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引用次数: 65

摘要

在乳腺导管内移动的纳米装置可能会改善乳腺肿瘤的检测和治疗。然而,分支乳腺导管的缩小阻碍了使用压力驱动的液体为基础的入路进入导管系统的偏远区域。磁场引导超顺磁亚微米粒子(SMPs)在静止液体中可能提供一种可能的替代方案,但关键是首先复制乳腺导管系统,以评估此类装置在未来治疗和诊断(“治疗”)中的应用。本文描述了利用聚二甲基硅氧烷(PDMS)微流控通道的一部分乳腺导管系统的工程设计,其总体积为0.09 μl。使用磁铁使超顺磁/荧光SMPs通过微通道内的静态流体。当层粘连蛋白111存在时,非肿瘤性乳腺上皮S1细胞在PDMS表面形成扁平的单层基顶极性,与SMPs孵育不产生可检测到的毒性。如果在已完成的通道中直接微注射,细胞无法承受流体压力。然而,当在u形“半通道”中培养时,它们在完成通道之前很容易覆盖层粘连蛋白111涂层的PDMS表面。这种乳房芯片模型是朝着模拟乳腺树状导管系统迈出的关键一步,可用于进一步检测和靶向smp。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Breast on-a-chip: mimicry of the channeling system of the breast for development of theranostics.

Improved detection and therapy of breast neoplasia might benefit from nanodevices traveling inside mammary ducts. However, the decreasing size of branched mammary ducts prevents access to remote areas of the ductal system using a pressure-driven fluid-based approach. Magnetic field guidance of superparamagnetic submicron particles (SMPs) in a stationary fluid might provide a possible alternative but it is critical to first reproduce the breast ductal system to assess the use of such devices for future therapeutic & diagnostic ("theranostic") purposes. Here we describe the engineering of a portion of a breast ductal system using polydimethylsiloxane (PDMS) microfluidic channels with a total volume of 0.09 μl. A magnet was used to move superparamagnetic/fluorescent SMPs through a static fluid inside the microchannels. Non-neoplastic mammary epithelial S1 cells developed basoapical polarity as a flat monolayer on the PDMS surface when cultured in the presence of laminin 111, and incubation with SMPs did not result in detectable toxicity. Cells could not withstand the fluid pressure if microinjected directly in completed channels. Whereas, they readily covered laminin 111-coated PDMS surfaces when cultured in U-shaped "hemichannels" before completing the channels. This breast-on-chip model represents a critical step towards the mimicry of the tree-like ductal system of the breast for further testing and targeting of SMPs.

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