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Nanoarray Digital Polymerase Chain Reaction with High-Resolution Melt for Enabling Broad Bacteria Identification and Pheno-Molecular Antimicrobial Susceptibility Test

机译:纳米阵列数字聚合酶链反应,具有高分辨率熔体,可实现宽菌鉴定和苯分子抗微生物易感测试

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摘要

Toward combating infectious diseases caused by pathogenic bacteria, there remains an unmet need for diagnostic tools that can broadly identify the causative bacteria and determine their antimicrobial susceptibilities from complex and even polymicrobial samples in a timely manner. To address this need, a microfluidic and machine-learning-based platform that performs broad bacteria identification (ID) and rapid yet reliable antimicrobial susceptibility testing (AST) is developed. Specifically, this platform builds on "pheno-molecular AST", a strategy that transforms nucleic acid amplification tests (NAATs) into phenotypic AST through quantitative detection of bacterial genomic replication, and utilizes digital polymerase chain reaction (PCR) and digital high-resolution melt (HRM) to quantify and identify bacterial DNA molecules. Bacterial species are identified using integrated experiment-machine learning algorithm via HRM profiles. Digital DNA quantification allows for rapid growth measurement that reflects susceptibility profiles of each bacterial species within only 30 min of antibiotic exposure. As a demonstration, multiple bacterial species and their susceptibility profiles in a spiked-in polymicrobial urine specimen were correctly identified with a total turnaround time of similar to 4h. With further development and clinical validation, this platform holds the potential for improving clinical diagnostics and enabling targeted antibiotic treatments.
机译:为了打击由致病细菌引起的传染病,仍然需要诊断工具的诊断工具,这些工具可以广泛鉴定致病细菌,并及时确定它们的抗微生物敏感性。为了解决这种需求,开发了一种用于进行宽细菌鉴定(ID)和快速但可靠的抗微生物敏感性测试(AST)的微流体和机器学习的平台。具体而言,该平台在“苯分子AST”上构建,通过定量检测细菌基因组复制来将核酸扩增试验(NAATS)转化为表型AST的策略,并利用数字聚合酶链式反应(PCR)和数字高分辨率熔体(HRM)量化和鉴定细菌DNA分子。通过HRM配置文件使用集成实验机学习算法识别细菌物种。数字DNA定量允许快速生长测量,反映每种细菌种类的易感性谱,仅在30分钟内抗生素暴露。作为示范,使用与4h类似的周转时间正确鉴定出尖刺多发性尿液标本中的多种细菌种类及其敏感性谱。随着进一步的开发和临床验证,该平台具有改善临床诊断和有针对性的抗生素治疗的可能性。

著录项

  • 来源
    《Analytical chemistry》 |2019年第20期|共9页
  • 作者单位

    Johns Hopkins Sch Med Dept Biomed Engn Baltimore MD 21205 USA;

    Johns Hopkins Univ Dept Mech Engn Baltimore MD 21218 USA;

    Johns Hopkins Sch Med Dept Biomed Engn Baltimore MD 21205 USA;

    Johns Hopkins Sch Med Dept Biomed Engn Baltimore MD 21205 USA;

    Stanford Univ Dept Emergency Med Stanford CA 94304 USA;

    Johns Hopkins Sch Med Dept Biomed Engn Baltimore MD 21205 USA;

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