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首页> 外文期刊>Analytical chemistry >Microarray-to-Microarray Transfer of Reagents by Snapping of Two Chips for Cross-Reactivity-Free Multiplex Immunoassays
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Microarray-to-Microarray Transfer of Reagents by Snapping of Two Chips for Cross-Reactivity-Free Multiplex Immunoassays

机译:通过捕捉两个芯片的无交叉反应的多重免疫分析试剂的微阵列对微阵列的试剂转移。

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Whereas microarray and microfluidic technologies have progressed on many fronts, servicing microchips with minute amounts of reagents still constitutes an important challenge for many applications. Recently, chip-to-chip reagent transfer methods were introduced that simplify the delivery of reagents but required manual, visual alignment, custom-built microwells, and only showed the reaction of a single sample with multiple chemicals. Here, we present the snap chip, which uses common glass slides for transfer, back-side alignment for achieving precise alignment in spite of mirroring, and a snap-apparatus for facile transfer of arrays of chemicals at once by snapping the two slides together. We recently established that cross-reactivity was a significant problem in multiplex assays both theoretically and experimentally and found that it can be eliminated by avoiding mixing, but which necessitates delivering each detection antibody to a single spot with the cognate capture antibody. Using the snap chip, multiplexed sandwich immunoassays without mixing were performed: a slide with multiple arrays of 10 different capture antibodies was incubated with a sample, and then all detection antibodies transferred at once by snapping, each to the single cognate spot. All binding curves were established and limits of detection in the pg/mL range were obtained. Snap chips were stored up to 3 months prior to usage. The snap chip, by dissociating microarray production, which requires expensive equipment, from assay execution, which can be achieved using a hand-held alignment apparatus, will allow for multiplex reactions to be performed using a user-friendly kit. This new liquid handling format can be easily adapted to other applications that require transfer of minute amounts of different reagents in parallel.
机译:尽管微阵列和微流体技术已经在许多方面取得了进步,但是使用微量试剂维修微芯片仍然是许多应用中的重要挑战。最近,引入了芯片间试剂转移方法,该方法简化了试剂的交付,但需要手动,目视对准,定制的微孔,并且仅显示单个样品与多种化学物质的反应。在这里,我们介绍了一种卡扣芯片,该卡扣使用通用的玻璃载玻片进行转移,背面对齐可实现镜面精确对准,而快照设备则可通过将两个载玻片卡合在一起而方便地一次转移一系列化学药品。我们最近建立了交叉反应性,无论是从理论上还是从实验上来说,在多重分析中都是一个重大问题,并且发现可以通过避免混合来消除交叉反应性,但这需要将每种检测抗体与同源捕获抗体一起递送至一个点。使用捕捉芯片,进行不混合的多重夹心免疫分析:将带有10种不同捕获抗体的多个阵列的载玻片与样品一起孵育,然后通过捕捉将所有检测抗体一次性转移到单个同源点。建立所有结合曲线,并获得pg / mL范围内的检测限。 Snap芯片在使用前最多可存储3个月。通过将需要昂贵设备的微阵列生产与检测执行分离开来的快速芯片,可以使用手持式对准装置实现测定,这将允许使用用户友好的试剂盒进行多重反应。这种新的液体处理格式可以轻松地适应需要并行传输微量不同试剂的其他应用。

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