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首页> 外文期刊>Lab on a chip >User-defined local stimulation of live tissue through a movable microfluidic port
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User-defined local stimulation of live tissue through a movable microfluidic port

机译:通过可移动的微流体端口,用户定义了对直播组织的局部刺激

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Many in vivo tissue responses begin locally, yet most in vitro stimuli are delivered globally. Microfluidics has a unique ability to provide focal stimulation to tissue samples with precise control over fluid location, flow rate, and composition. However, previous devices utilizing fixed ports beneath the tissue required manual alignment of the tissue over the ports, increasing the risk of mechanical damage. Here we present a novel microfluidic device that allows the user to define the location of fluid delivery to a living tissue slice without manipulating the tissue itself. The device utilized a two-component SlipChip design to create a mobile port beneath the tissue slice. A culture chamber perforated by an array of ports housed a tissue slice and was separated by a layer of fluorocarbon oil from a single delivery port, fed by a microfluidic channel in the movable layer below. We derived and validated a physical model, based on interfacial tension and flow resistance, to predict the conditions under which fluid delivery occurred without leakage into the gap between layers. Aqueous solution was delivered reproducibly to samples of tissue and gel, and the width of the delivery region was controlled primarily by convection. Tissue slice viability was not affected by stimulation on the device. As a proof-of-principle, we showed that live slices of lymph node tissue could be sequentially targeted for precise stimulation. In the future this device may serve as a platform to study the effects of fluid flow in tissues and to perform local drug screening.
机译:许多体内组织反应在本地开始,但大多数体外刺激都在全球送出。微流体具有独特的能力,可以对组织样品提供局灶性刺激,以精确控制流体位置,流速和组成。然而,在组织下面利用固定端口的先前设备需要手动对齐组织对端口的对准,提高机械损坏的风险。这里我们提出了一种新型微流体装置,其允许用户将流体输送的位置定义到活组织切片而不操纵组织本身。该装置利用双组分滑坡设计来在组织切片下方创建移动口。由端口阵列穿孔的培养室容纳了一种组织切片,并由由单个输送口的一层氟碳油分离,通过下面可动层中的微流体通道进料。我们基于界面张力和流动阻力来衍生和验证了物理模型,以预测流体输送而不会泄漏到层之间的间隙中的条件。将水溶液可重复地送到组织和凝胶样品上,并且递送区域的宽度主要通过对流控制。组织切片活力不受器件刺激的影响。作为原则上的原则,我们表明淋巴结组织的活面积可以依次靶向精确刺激。在未来,该装置可以作为研究流体流动在组织中的影响和进行局部药物筛选的平台。

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