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Point-of-Care Testing of Pathogenic Bacteria at the Single-Colony Level via Gas Pressure Readout Using Aptamer-Coated Magnetic CuFe2O4 and Vancomycin-Capped Platinum Nanoparticles

机译:通过使用适体涂覆的磁性Cufe2O4和万古霉素封端的铂纳米粒子通过气压读出通过气压读出的单落区水平的病原细菌的护理点测试

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摘要

Pressure measurements are performed everyday with simple devices, and in the field of analytical chemistry the pressure-based signaling strategy offers two important advantages, signal amplification and particular applicability in point-of-care settings. Herein, by using vancomycin (Van)-functionalized platinum nanoparticles (PtNPs@Van) and aptamer-coated magnetic CuFe2O4 nanoprobes dual-recognition units integrated with a catalyzed breakdown of H2O2 for O-2 generation, we demonstrated that gas pressure can be used as a readout means for highly sensitive pathogenic bacteria identification and quantification. Using Staphylococcus aureus (S. aureus) as a test case, integration of the molecular dual-recognition component with the catalyzed gas generation reaction leads to a significant pressure change (Delta P), and the correlation between the concentration of S. aureus and the Delta P signal was found to be linear from 5.0 to 1.0 x 10(4) cfu/mL with a detection limit of 1.0 cfu/mL. Other nontarget bacteria show negative results, verifying the high specificity of the present strategy. When employed to assay S. aureus in saliva and milk samples, the approach shows recoveries from 93.3% to 107.1% with relative standard derivation (RSD) less than 8.8%. By the integration of catalyzed gas-generation reaction with the designed molecular recognition event, obviously the pressure-based signaling strategy could facilitate pathogenic bacteria identification and quantification not only in the laboratory but also in point-of-care settings, which could have great potential in the application of food safety and infectious disease diagnosis.
机译:每天使用简单的设备进行压力测量,并且在分析化学领域,基于压力的信令策略提供了两个重要的优势,信号放大和在护理点设置中的特殊适用性。在此,通过使用万古霉素(van) - 官能化铂纳米颗粒(PTNPS @ VAN)和适体涂覆的磁性CuF2O4纳米软化物,与催化的H2O2催化分解为O-2代,我们证明了气体压力可用作读出装置,用于高敏感性致病菌鉴定和量化。使用金黄色葡萄球菌(金黄色葡萄球菌)作为测试用例,将分子双识别组分与催化的气体发生反应的整合导致显着的压力变化(Delta P),以及S.金黄色葡萄球菌浓度之间的相关性发现Delta P信号从5.0至1.0×10(4)CFU / ml的线性,检测限为1.0 cfu / ml。其他Nontarget细菌显示出负面结果,验证目前策略的高特异性。当用于在唾液和牛奶样中测定Aryus,该方法显示93.3%至107.1%的回收率,相对标准衍生(RSD)小于8.8%。通过与设计的分子识别事件的催化气体发生反应的整合,显然,基于压力的信号传导策略可以促进病原细菌鉴定和量化,而且不仅在实验室中,还可以在护理点设置中进行巨大潜力在食品安全和传染病诊断中的应用。

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  • 来源
    《Analytical chemistry》 |2019年第2期|共7页
  • 作者单位

    Southwest Univ Key Lab Luminescent &

    Real Time Analyt Chem Minist Educ Coll Pharmaceut Sci Chongqing 400715 Peoples R China;

    Southwest Univ Key Lab Luminescent &

    Real Time Analyt Chem Minist Educ Coll Pharmaceut Sci Chongqing 400715 Peoples R China;

    Southwest Univ Key Lab Luminescent &

    Real Time Analyt Chem Minist Educ Coll Pharmaceut Sci Chongqing 400715 Peoples R China;

    Southwest Univ Key Lab Luminescent &

    Real Time Analyt Chem Minist Educ Coll Pharmaceut Sci Chongqing 400715 Peoples R China;

    Southwest Univ Coll Life Sci Chongqing 400715 Peoples R China;

    Southwest Univ Coll Life Sci Chongqing 400715 Peoples R China;

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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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