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Development and Applications of In Vitro-Microdialysis: A Sampling Platform for Fast Analysis of Non-Electroactive Analytes.

机译:体外微透析的开发和应用:一种用于快速分析非电活性分析物的采样平台。

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摘要

When considering the measurement of release events from cells, it can be done at levels as small as the single cell and performed in systems increasingly larger and more complex up to in vivo studies. Though in vitro systems lack the physiological relevance of in vivo, their simple and controlled environment is highly advantageous in preliminary mechanistic studies. In spite of this, there exists a serious gap in our ability to perform in vitro measurements on a wide array of analytes within a meaningful time frame. While electrochemical techniques are unparalleled in their ability to temporally resolve minute signals in biological systems, there is only a small class of targets which are suitable for this type of analysis. When analyzing non-electroactive analytes, measurements are often plagued by slow temporal responses (5+ minutes). Fluorescent imaging offers opportunities to monitor faster dynamics of non-electroactive analytes, but the target analyte must be either natively fluorescent or labeled, which can result in nonspecific binding and cytotoxicity. In both of these cases fast dynamics can be observed, but the array of analytes is small and only a few can be monitored simultaneously.;In this work, a novel in vitro sampling platform is described which is capable of simultaneously monitoring approximately 15 non-electroactive analytes with 20 second temporal resolution. Cells were cultured on the surface of a microdialysis probe coupled with an analytical system for analysis. Small molecules released from the cells upon stimulation diffuse across the porous membrane because of the close proximity. A high-speed CE, built in house, enabled analysis of the collected dialysate. The ability of our platform to detect basal and stimulated release of amines was confirmed by transferring the probe between artificial cerebrospinal fluid (aCSF) and a potassium-spiked (100 mM K+-aCSF) stimulant solution. A variety of cell models were tested for compatibility with the in vitro-microdialysis platform, both single cell type and co-cultures were initiated. Adherence of viable cells was confirmed by labeling cells with either fluorescein diacetate (FDA) or specific antibody labelling, followed by imaging under a microscope. As a step towards continuously monitoring the change of non-electroactive analytes released from cultured cells, microdialysis was coupled directly to micro free flow electrophoresis (microFFE) device instead of the high-speed CE instrument.
机译:当考虑对细胞释放事件的测量时,可以在与单个细胞一样小的水平上完成,并且可以在越来越大,越来越复杂的系统中进行,直到进行体内研究为止。尽管体外系统缺乏体内的生理相关性,但其简单可控的环境在初步的机理研究中具有很高的优势。尽管如此,我们在有意义的时间范围内对各种分析物进行体外测量的能力仍然存在严重差距。尽管电化学技术在时间上解析生物系统中微小信号的能力无与伦比,但只有一小类目标适合此类分析。在分析非电活性分析物时,通常会因缓慢的时间响应(5分钟以上)而困扰测量。荧光成像提供了监视非电活性分析物更快动态的机会,但是目标分析物必须是天然荧光的或标记的,这可能导致非特异性结合和细胞毒性。在这两种情况下,都可以观察到快速的动态变化,但是分析物的阵列很小,只能同时监视少数几种。在这项工作中,我们描述了一种新型的体外采样平台,该平台能够同时监视大约15种非具有20秒时间分辨率的电活性分析物。将细胞培养在与分析系统耦合的微透析探针的表面上进行分析。由于紧密接近,刺激后从细胞释放的小分子扩散穿过多孔膜。内置于内部的高速CE可以分析收集到的透析液。通过在人工脑脊髓液(aCSF)和加钾(100 mM K + -aCSF)刺激剂溶液之间转移探针,可以确认我们平台检测胺的基础释放和刺激释放的能力。测试了各种细胞模型与体外微透析平台的兼容性,同时启动了单细胞类型和共培养。通过用双乙酸荧光素(FDA)或特异性抗体标记标记细胞,然后在显微镜下成像,确认活细胞的粘附。作为持续监控从培养细胞释放的非电活性分析物变化的一步,微透析直接与微自由流电泳(microFFE)设备耦合,而不是与高速CE仪器耦合。

著录项

  • 作者

    Stading, Amy Louise.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Analytical chemistry.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 142 p.
  • 总页数 142
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:54

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