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首页> 外文期刊>Analytical methods >Microprofiling real time nitric oxide flux for field studies using a stratified nanohybrid carbon-metal electrode
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Microprofiling real time nitric oxide flux for field studies using a stratified nanohybrid carbon-metal electrode

机译:微型roping实时一氧化氮通量,用于使用分层纳米碳 - 金属电极的现场研究

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摘要

Nitric oxide (NO) is an important signaling molecule that is involved in stress response, homeostasis, host defense, and cell development. In most cells, NO levels are in the femtomolar to micromolar range, with extracellular concentrations being much lower. Thus, real time measurement of spatiotemporal NO dynamics near the surface of living cells/tissues is a major challenge. Here, we report the development, application, and validation of a self referencing (i.e., oscillating) NO microelectrode for field studies of biological cells and tissues. The durable microelectrode is based on a hybrid nanomaterial composed of nanoceria, reduced graphene oxide and nanoplatinum and is intended for field use. One of the main focuses was to address the common pitfall of high overpotential through use of hydrophobic, and size/charge-selective materials in a thin film coated on top of the nanocatalyst sensor. The sensitivity (0.95 +/- 0.03 pA nM(-1)), response time (1.1 +/- 0.1 s), operating potential (+720 mV), and selectivity of the nanomaterial-modified microelectrode are similar to laboratory microelectrode designs, enabling studies of NO flux in field studies. NO efflux was first measured from chitosan and alginate polymers in abiotic studies, and a deterministic model used to determine the effective diffusion coefficient for each polymer composite. To demonstrate the practicality of the sensor, NO flux was quantified in three model organisms with known NO pathways, including: bacteria, plant, and an invertebrate animal. For each organism, an established hypothesis was validated based on NO flux measurement and the results confirm data collected using standard analytical techniques. The sensor can be used to expand our fundamental knowledge of NO transport by facilitating field experiments which are not possible with standard techniques.
机译:一氧化氮(NO)是一种重要的信号分子,其参与应力反应,稳态,宿主防御和细胞发育。在大多数细胞中,没有水平对微摩尔范围内没有水平,细胞外浓度远低得多。因此,在活细胞/组织表面附近的时空测量时空测量的动态是一个重大挑战。在这里,我们报告了自我引用的开发,应用和验证(即,振荡)没有微电极,用于生物细胞和组织的现场研究。耐用的微电极基于由纳米钙,还原的氧化石油和纳米植物组成的杂化纳米材料,并且用于现场使用。主要重点之一是通过在涂覆在纳米催化剂传感器顶部的薄膜中使用疏水性和尺寸/电荷选择性材料来解决高过电位的常见缺陷。灵敏度(0.95 +/- 0.03Pa nm(-1)),响应时间(1.1 +/- 0.1 s),操作电位(+720mV)和纳米材料改性微电极的选择性类似于实验室微电极设计,在现场研究中能够实现无助焊剂。首先从壳聚糖和藻酸盐聚合物中测量脱氨酸和藻酸盐研究中的任何渗出,以及用于确定每个聚合物复合材料的有效扩散系数的确定性模型。为了证明传感器的实用性,在三种模型生物中没有助焊剂量化,没有已知的途径,包括:细菌,植物和无脊椎动物。对于每个生物体,基于无通量测量验证了建立的假设,结果确认使用标准分析技术收集的数据。传感器可用于扩大我们通过促进具有标准技术不可能的现场实验的无线传输的基本知识。

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  • 来源
    《Analytical methods》 |2017年第42期|共12页
  • 作者单位

    Univ Florida Inst Food &

    Agr Sci Agr &

    Biol Engn Dept Gainesville FL 32611 USA;

    Univ Valle Food Engn Dept Cali Colombia;

    Univ Florida Dept Biol Gainesville FL USA;

    Univ Florida Space Life Sci Lab Dept Microbiol &

    Cell Sci Merritt Isl FL USA;

    Purdue Univ Dept Forestry &

    Nat Resources W Lafayette IN 47907 USA;

    Univ Florida Inst Food &

    Agr Sci Agr &

    Biol Engn Dept Gainesville FL 32611 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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