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用于同时定量多个靶标的多重数字PCR检测方法的设计、验证及应用

Design, validation, and implementation of multiplex digital PCR assays for simultaneous quantification of multiple targets.

作者信息

de Korne-Elenbaas Jolinda, Caduff Lea, Lison Adrian, McLeod Rachel, Pitton Melissa, Gan Charles, Julian Timothy R

机构信息

Eawag, Swiss Federal Institute of Aquatic Science and Technology, 8600, Dübendorf, Switzerland.

Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland.

出版信息

Lett Appl Microbiol. 2025 Jan 6;78(1). doi: 10.1093/lambio/ovae137.

Abstract

Quantitative polymerase chain reaction (qPCR) and digital PCR (dPCR) are applied for quantifying molecular targets in disease diagnostics, pathogen detection, and ecological monitoring. Uptake of dPCR is increasing due to its higher quantification accuracy relative to qPCR, which stems from its independence from standard curves and its increased resistance to PCR inhibitors. Throughput can be increased through multiplexing, which allows simultaneous quantification of multiple targets. However, multiplexing with dPCR faces unique challenges relative to qPCR. Here, we describe the three-phase development process of non-competing multiplex dPCR assays using target-specific fluorescently labeled hydrolysis probes. We highlight common challenges encountered, along with recommended solutions. Phase 1: In silico assay design; target-specific primers and probes are selected or designed, potential issues with primer and probe interactions are identified, and fluorophores and quenchers are chosen based on dPCR instrumentation. Phase 2: Wet-lab validation; assays are benchmarked using positive controls. Insufficient performance leads to assay redesign, as needed. Phase 3: Assay implementation; assay specificity and sensitivity are validated on relevant sample matrices. Finally, we provide recommendations on the future design and standardization of multiplexed dPCR assays, highlighting the need for better in silico predictions of assay performance, standardizing positive controls, and automating partition classification systems.

摘要

定量聚合酶链反应(qPCR)和数字PCR(dPCR)被应用于疾病诊断、病原体检测和生态监测中的分子靶点定量。由于dPCR相对于qPCR具有更高的定量准确性,其应用正在增加,这源于它不依赖标准曲线以及对PCR抑制剂的抗性增强。通过多重分析可以提高通量,从而能够同时对多个靶点进行定量。然而,与qPCR相比,dPCR的多重分析面临着独特的挑战。在此,我们描述了使用靶点特异性荧光标记水解探针的非竞争性多重dPCR分析的三阶段开发过程。我们强调了遇到的常见挑战以及推荐的解决方案。第一阶段:计算机分析设计;选择或设计靶点特异性引物和探针,识别引物和探针相互作用的潜在问题,并根据dPCR仪器选择荧光团和猝灭剂。第二阶段:湿实验室验证;使用阳性对照对分析进行基准测试。如有必要,性能不足会导致重新设计分析。第三阶段:分析实施;在相关样本基质上验证分析的特异性和灵敏度。最后,我们对多重dPCR分析的未来设计和标准化提出建议,强调需要对分析性能进行更好的计算机预测、标准化阳性对照以及自动化分区分类系统。

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