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用于便捷、高通量电化学检测的触控式可逆微流控超密集芯片

Touch-Enabled Reversible Microfluidic Ultradense Chips for Convenient, High-Throughput Electrochemical Assays.

作者信息

da Silva Pedro H N, Corsato Paula C R, Silva Christian O, Pimentel Gabriel J C, Hryniewicz Bruna M, Bragantin Bruna, Costa Rodrigo S, Shimizu Flávio M, Sousa Ribeiro Iris R, Lima Renato S

机构信息

Brazilian Nanotechnology National Laboratory,Brazilian Center for Research in Energy and Materials,Campinas, São Paulo 13083-970, Brazil.

Institute of Chemistry, University of Campinas, Campinas, São Paulo 13083-970, Brazil.

出版信息

ACS Appl Mater Interfaces. 2025 Aug 13;17(32):45847-45858. doi: 10.1021/acsami.5c08760. Epub 2025 Jul 21.

Abstract

Here, we present a new approach to reversibly bond microfluidic polydimethylsiloxane (PDMS) channels on low-cost, reproducible, scalable, compact, and ultradense multisensor SU-8-coated chips toward high-throughput electrochemical assays. Based on putting the outlets at the bottom of PDMS, the method only needs manually attaching this substrate on a flat surface, thus offering simplicity, throughput, and reversibility. While a plasma-mediated approach failed to provide leakage-free bonding, the reversibly bonded devices presented a high adhesion strength, withstanding a pressure of at least 5.1 MPa. Because the approach is high-pressure tolerant and reversible, it can deliver both long-term analyses and ease of sampling in-channel material for posterior manipulation/characterization and even sensor regeneration. Importantly, the bonding also delivers long-term shelf life and reusability. Three proof-of-concept applications are presented: (i) the electrodeposition of different nanostructured microelectrodes, followed by their downstream characterization and electrochemical tests, (ii) the long-term proliferation and monitoring of colorectal and breast cancer cells through electrochemical cell adhesion assays, along with the following regeneration of sensors and drug susceptibility testing, and (iii) the electrode fouling-amenable determination of phosphate in synthetic body fluids (urine and saliva) for health assessment purposes. High-throughput assays were provided by the chips from fast analyses in series utilizing a hand-held one-channel potentiostat. For instance, 45 analyses could be completed within ∼135 s. One should also note that the approach is compatible with different materials. Hence, future studies can explore this generalizable dry bonding to produce other microfluidic systems for diverse applications.

摘要

在此,我们提出了一种新方法,用于在低成本、可重复、可扩展、紧凑且超密集的多传感器SU-8涂层芯片上可逆地连接微流控聚二甲基硅氧烷(PDMS)通道,以实现高通量电化学检测。基于将PDMS的出口置于底部,该方法仅需手动将此基板附着在平面上,从而具备简便性、通量和可逆性。虽然等离子体介导的方法无法实现无泄漏连接,但可逆连接的器件呈现出高粘附强度,可承受至少5.1 MPa的压力。由于该方法耐高压且可逆,它既能进行长期分析,又便于对通道内材料进行采样以用于后续操作/表征,甚至传感器再生。重要的是,这种连接还具有长期保质期和可重复使用性。展示了三个概念验证应用:(i)不同纳米结构微电极的电沉积,随后进行其下游表征和电化学测试;(ii)通过电化学细胞粘附测定对结肠直肠癌和乳腺癌细胞进行长期增殖和监测,以及随后的传感器再生和药物敏感性测试;(iii)用于健康评估目的的合成体液(尿液和唾液)中磷酸盐的电极污垢适应性测定。利用手持式单通道恒电位仪通过快速串联分析,芯片实现了高通量检测。例如,在约135秒内可完成45次分析。还应注意的是,该方法与不同材料兼容。因此,未来的研究可以探索这种可推广的干式连接,以生产用于各种应用的其他微流控系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1894/12356537/499d78127f60/am5c08760_0001.jpg

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