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优化基于杂交的肽核酸探针用于细菌病原体的检测和鉴定。

Optimizing peptide nucleic acid probes for hybridization-based detection and identification of bacterial pathogens.

机构信息

Department of Urology, Stanford University School of Medicine, Stanford, CA, USA.

出版信息

Analyst. 2019 Feb 25;144(5):1565-1574. doi: 10.1039/c8an02194e.

DOI:10.1039/c8an02194e
PMID:30656297
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7039532/
Abstract

Point-of-care (POC) diagnostics for infectious diseases have the potential to improve patient care and antibiotic stewardship. Nucleic acid hybridization is at the core of many amplification-free molecular diagnostics and detection probe configuration is key to diagnostic performance. Modified nucleic acids such as peptide nucleic acid (PNA) offer advantages compared to conventional DNA probes allowing for faster hybridization, better stability and minimal sample preparation for direct detection of pathogens. Probes with tethered fluorophore and quencher allow for solution-based assays and eliminate the need for washing steps thereby facilitating integration into microfluidic devices. Here, we compared the sensitivity and specificity of double stranded PNA probes (dsPNA) and PNA molecular beacons targeting E. coli and P. aeruginosa for direct detection of bacterial pathogens. In bulk fluid assays, the dsPNAs had an overall higher fluorescent signal and better sensitivity and specificity than the PNA beacons for pathogen detection. We further designed and tested an expanded panel of dsPNA probes for detection of a wide variety of pathogenic bacteria including probes for universal detection of eubacteria, Enterobacteriaceae family, and P. mirablis. To confirm that the advantage translated to other assay types we compared the PNA beacon and dsPNA in a prototype droplet microfluidic device. Beyond the bulk fluid assay and droplet devices, use of dsPNA probes may be advantageous in a wide variety of assays that employ homogenous nucleic acid hybridization.

摘要

即时检测(POC)诊断传染病具有改善患者护理和抗生素管理的潜力。核酸杂交是许多无扩增分子诊断的核心,而检测探针的配置是诊断性能的关键。与传统 DNA 探针相比,修饰的核酸(如肽核酸(PNA))具有优势,允许更快的杂交、更好的稳定性和最小的样本制备,可直接检测病原体。带有连接荧光团和猝灭剂的探针可用于基于溶液的测定,并且不需要洗涤步骤,从而便于集成到微流控设备中。在这里,我们比较了靶向大肠杆菌和铜绿假单胞菌的双链 PNA 探针(dsPNA)和 PNA 分子信标的敏感性和特异性,用于直接检测细菌病原体。在体相流体测定中,dsPNA 的荧光信号总体上更高,对病原体的检测灵敏度和特异性也优于 PNA 分子信标。我们进一步设计和测试了一组扩展的 dsPNA 探针,用于检测各种致病性细菌,包括用于检测真细菌、肠杆菌科和奇异变形杆菌的通用探针。为了确认这一优势转化为其他测定类型,我们在原型液滴微流控装置中比较了 PNA 分子信标和 dsPNA。除了体相流体测定和液滴装置之外,dsPNA 探针在使用均相核酸杂交的各种测定中可能具有优势。

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