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A portable chemical toxicity biochip based on electronic enzymatic monitoring of cytotoxic effects on fish cells

机译:基于电子酶促监测对鱼类细胞的细胞毒性作用的便携式化学毒性生物芯片

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摘要

Herein we describe a miniaturised chemical toxicity analyser with capacity to assess water quality without intervention of laboratory equipment. The device, as presented, integrates living cells and electrode-based sensors to monitor cell viability upon exposure to toxic chemicals. The methodology involved cultured fish cells Poeciliopsis lucidia hepatocellular carcinoma (PLHC-1) and Oncorhynchus mykiss rainbow trout gonad (RTG-2) cells, exposed to toxic chemicals (CdCl_2 and pentachlorophenol (PCP)) after which the activity of a cellular enzyme, acid phosphatase (AP) was measured. Reduced AP activity was quantified electrochemically, allowing IC_(50) values (50% reduction in AP activity) to be determined. Fish cells are a relevant model of the toxicity risks posed by contaminated water to aquatic health. Such cells are relatively slow growing and do not require a source of CO_2 for incubation, thus ensuring portability for single-use point of site applications. The 24 hour IC_(50) values determined for CdCl_2 in the fish cell lines ( 16.2 ± 0.7 and 91 ± 11 μM for PLHC and RTG-2, respectively) were in agreement with those found using the MTT assay ( 16.3 ± 1.6 and 164 ± 96 μM). In the case of PCP, the IC_(50) value in PHLC cells (127 ± 22 μM) suggested enhanced sensitivity towards PCP compared with the MTT assay (IC_(50) > 160 μM). The optimised electronic assay was transferred to a prototype integrated assay cartridge with associated fluidic and transducer elements. This device (TOXOR) monitored changes in the metabolic state of fish cells, realising high-value toxicity information as a potential early warning on-site screening system.
机译:在这里,我们描述了一种微型化学毒性分析仪,能够在不干预实验室设备的情况下评估水质。如图所示,该设备集成了活细胞和基于电极的传感器,可在暴露于有毒化学物质时监测细胞活力。该方法涉及培养的鱼细胞黄疸性肝细胞肝癌(PLHC-1)和Oncorhynchus mykiss虹鳟鱼性腺(RTG-2)细胞,暴露于有毒化学物质(CdCl_2和五氯酚(PCP))之后,细胞酶酸的活性测量磷酸酶(AP)。降低的AP活性通过电化学方法定量,可以确定IC_(50)值(AP活性降低50%)。鱼细胞是受污染的水对水生健康构成毒性风险的相关模型。这样的细胞生长相对缓慢,并且不需要用于培养的CO_2来源,从而确保了一次性使用现场应用的便携性。鱼细胞系中CdCl_2测定的24小时IC_(50)值(PLHC和RTG-2分别为16.2±0.7和91±11μM)与MTT分析发现的结果一致(16.3±1.6和164) ±96μM)。对于PCP,与MTT分析相比,PHLC细胞中的IC_(50)值(127±22μM)表明对PCP的敏感性更高(IC_(50)> 160μM)。将优化的电子测定转移到带有相关流体和换能器元件的原型集成化验盒中。该设备(TOXOR)监视鱼细胞代谢状态的变化,实现高价值的毒性信息,作为潜在的预警现场筛选系统。

著录项

  • 来源
    《Sensors and Actuators》 |2017年第5期|271-278|共8页
  • 作者单位

    Centre for Research in Electroanalytical Technology (CREATE), Department of Science, Institute of Technology, Tallaght, Dublin 24, Ireland;

    Microsensors for Clinical Research and Analysis - MiCRA Biodiagnostics, Centre of Applied Science for Health, Institute of Technology, Tallaght, Dublin 24, Ireland;

    Centre for Microbial Host Interactions (СМHI), Department of Science. Institute of Technology Tallaght, Dublin 24, Ireland;

    Centre for Research in Electroanalytical Technology (CREATE), Department of Science, Institute of Technology, Tallaght, Dublin 24, Ireland,Microsensors for Clinical Research and Analysis - MiCRA Biodiagnostics, Centre of Applied Science for Health, Institute of Technology, Tallaght, Dublin 24, Ireland;

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

    Electrochemical assay; Cytotoxicity; Fish cells; Biosensor;

    机译:电化学分析;细胞毒性;鱼细胞;生物传感器;

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