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Building of a flexible microfluidic plasmo-nanomechanical biosensor for live cell analysis

机译:用于活细胞分析的柔性微流控质控纳米生物传感器的构建

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摘要

Biosensor devices can constitute an advanced tool for monitoring and study complex dynamic biological processes, as for example cellular adhesion. Cellular adhesion is a multipart process with crucial implications in physiology (i.e. immune response, tissue nature, architecture maintenance, or behaviour and expansion of tumor cells). This work focuses on offering a controlled methodology in order to fabricate a flexible plasmo-nanomechanical biosensor placed within a microfluidic channel as a new tool for future cell adhesion studies. We designed, fabricated, and optically and mechanically characterized this novel optical biosensor. As a proof-of-concept of its functionality, the biosensor was employed to observe fibroblasts adhesion in a cell culture. The device is configured by an hexagonal array of flexible rigid/soft polymeric nanopillars capped with plasmonic gold nanodisks integrated inside a microfluidic channel. The fabrication employs low-cost and large-scale replica molding techniques using two different polymers materials (EPOTECK OG142 and 310 M). By using those materials the spring constant of the polymer nanopillars (k) can be fabricated from 1.19E-02 [N/m] to 5.35E + 00 [N/m] indicating different mechanical sensitivities to shear stress. Therefore, the biosensor has the feasibility to mimic soft and rigid tissues important for the description of cellular nanoscale behaviours. The biosensor exhibits a suitable bulk sensitivity of 164 nm or 206 nm/refractive index unit respectively, depending on the base material. The range of calculated forces goes from approximate to 1.98 nN to approximate to.942 mu N. This supports that the plasmo-nanomechanical biosensors could be employed as novel tool to study living cells behavior.
机译:生物传感器设备可以构成用于监视和研究复杂的动态生物过程(例如细胞粘附)的高级工具。细胞粘附是一个多部分过程,对生理学具有至关重要的意义(即免疫反应,组织性质,结构维持或肿瘤细胞的行为和扩增)。这项工作的重点是提供一种可控制的方法,以制造放置在微流体通道内的灵活的等离子体-纳米机械生物传感器,作为未来细胞粘附研究的新工具。我们设计,制造了这种新型光学生物传感器,并对其进行了光学和机械表征。作为其功能的概念证明,该生物传感器用于观察细胞培养物中成纤维细胞的粘附。该设备由柔性刚性/软聚合物纳米柱的六边形阵列配置,该刚性刚性/软聚合物纳米柱被集成在微流体通道内部的等离激元金纳米盘覆盖。使用两种不同的聚合物材料(EPOTECK OG142和310 M)采用低成本且大规模的复制成型技术。通过使用这些材料,聚合物纳米柱(k)的弹簧常数可以从1.19E-02 [N / m]到5.35E + 00 [N / m]制成,表明对剪切应力的机械敏感性不同。因此,该生物传感器具有模拟对于描述细胞纳米级行为重要的软组织和硬组织的可行性。取决于基础材料,生物传感器分别显示合适的体敏度为164 nm或206 nm /折射率单位。计算出的力范围从大约1.98 nN到大约0.942 NN。这证明了质子-纳米机械生物传感器可以用作研究活细胞行为的新型工具。

著录项

  • 来源
    《Sensors and Actuators》 |2019年第7期|48-57|共10页
  • 作者单位

    CSIC, CIBER BBN, Catalan Inst Nanosci & Nanotechnol ICN2, Nanobiosensors & Bioanalyt Applicat Grp NanoB2A, Campus UAB, Barcelona 08193, Spain|BIST, Campus UAB, Barcelona 08193, Spain;

    CSIC, CIBER BBN, Catalan Inst Nanosci & Nanotechnol ICN2, Nanobiosensors & Bioanalyt Applicat Grp NanoB2A, Campus UAB, Barcelona 08193, Spain|BIST, Campus UAB, Barcelona 08193, Spain;

    Univ Barcelona, Inst Biomed IBUB, Dept Biochem & Mol Biomed, CIBER Fisiopatol Obesidad & Nutr, Barcelona, Spain;

    Univ Barcelona, Inst Biomed IBUB, Dept Biochem & Mol Biomed, CIBER Fisiopatol Obesidad & Nutr, Barcelona, Spain;

    CSIC, CIBER BBN, Catalan Inst Nanosci & Nanotechnol ICN2, Nanobiosensors & Bioanalyt Applicat Grp NanoB2A, Campus UAB, Barcelona 08193, Spain|BIST, Campus UAB, Barcelona 08193, Spain;

    CSIC, CIBER BBN, Catalan Inst Nanosci & Nanotechnol ICN2, Nanobiosensors & Bioanalyt Applicat Grp NanoB2A, Campus UAB, Barcelona 08193, Spain|BIST, Campus UAB, Barcelona 08193, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanofabrication; Lab-on-a-chip; Optical biosensor; Tissue engineering; Cell growth;

    机译:纳米加工;芯片实验室;光学生物传感器;组织工程;细胞生长;

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