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便携式芯片实验室平台可实现对H5/H7/H10禽流感病毒亚型的多重重组酶聚合酶扩增检测。

Portable lab-on-a-chip platform enabling multiplex recombinant enzyme polymerase amplification detection of H5/H7/H10 avian influenza virus subtypes.

作者信息

Liang Li-Guo, Wang Ping, Fu Jiamin, Zhu Linwei, Cheng Linfang, Liu Fumin, Wu Nanping, Xu Lihua, Yao Hangping, Wu Haibo

机构信息

State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, and National Clinical Research Center for Infectious Diseases, the First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, PR China; Centre for Clinical Laboratory, The First Affiliated Hospital of Zhejiang Chinese Medical University, Hangzhou 310006, PR China.

State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, and National Clinical Research Center for Infectious Diseases, the First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, PR China.

出版信息

Poult Sci. 2025 Jun 19;104(9):105463. doi: 10.1016/j.psj.2025.105463.

Abstract

The zoonotic nature of influenza pathogens creates substantial health security risks, jeopardizing the welfare of interconnected human and animal ecosystems. The H5/H7/H10 avian influenza virus (AIV) variants demonstrate persistent endemicity in poultry reservoirs and recurrent zoonotic jumps precipitating fatal human infections. Therefore, the innovation of multiplex diagnostic platforms integrating expedited processing, enhanced sensitivity, and subtype-specific discrimination has emerged as a pivotal strategy to curb epidemiological escalation. This research introduces a temperature-controlled nucleic acid detection platform utilizing microfluidic technology, enabling concurrent differentiation of H5, H7, and H10 AIV subtypes. Based on the conserved sequences of the hemagglutinin (HA) gene of H5, H7, and H10 AIVs, three sets of primers and probes specific to the subtypes were developed. These were then combined with microfluidic microarray technology and recombinant enzyme polymerase amplification. This combination aimed to create a method for the simultaneous detection of H5, H7, and H10 AIVs for differential diagnostic purposes. The method was distinguished by its specificity, sensitivity, accuracy, and its ability to detect these viruses in clinical samples. The specificity of the method showed that it could detect all strains of H5, H7 and H10 AIVs at the same time, with no cross-reactivity with other subtype influenza viruses or other avian pathogens. The sensitivity results showed that the assay could still detect the three AIV target genes simultaneously at a concentration of 2 copies per reaction. The results of this method for 100 clinical samples were consistent with those produced by quantitative PCR. This integrated detection system for H5/H7/H10 AIV differentiation exhibits exceptional specificity, enhanced sensitivity, rapid turnaround, and streamlined operational procedures, representing a viable solution for prompt pathogen identification during outbreaks.

摘要

流感病原体的人畜共患特性带来了重大的健康安全风险,危及相互关联的人类和动物生态系统的福祉。H5/H7/H10禽流感病毒(AIV)变种在家禽宿主中呈现持续的地方性流行,并反复发生人畜共患传播,导致致命的人类感染。因此,创新的多重诊断平台,集成快速处理、更高的灵敏度和亚型特异性鉴别,已成为遏制疫情升级的关键策略。本研究引入了一种利用微流控技术的温控核酸检测平台,能够同时区分H5、H7和H10 AIV亚型。基于H5、H7和H10 AIV血凝素(HA)基因的保守序列,开发了三组亚型特异性引物和探针。然后将这些与微流控微阵列技术和重组酶聚合酶扩增相结合。这种组合旨在创建一种用于同时检测H5、H7和H10 AIVs以进行鉴别诊断的方法。该方法以其特异性、灵敏度、准确性以及在临床样本中检测这些病毒的能力而著称。该方法的特异性表明,它可以同时检测所有H5、H7和H10 AIV毒株,与其他亚型流感病毒或其他禽病原体无交叉反应。灵敏度结果表明,该检测方法在每个反应2个拷贝的浓度下仍能同时检测三个AIV靶基因。该方法对100份临床样本的检测结果与定量PCR的结果一致。这种用于区分H5/H7/H10 AIV的集成检测系统具有卓越的特异性、更高的灵敏度、快速周转和简化的操作程序,是疫情期间快速鉴定病原体的可行解决方案。

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