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本文引用的文献

1
Pandemic H1N1 and seasonal H3N2 influenza infection in the human population show different distributions of viral loads, which substantially affect the performance of rapid influenza tests.人群中感染大流行 H1N1 和季节性 H3N2 流感病毒的载量分布不同,这极大地影响了快速流感检测的性能。
Virus Res. 2011 Jan;155(1):163-7. doi: 10.1016/j.virusres.2010.09.015. Epub 2010 Sep 25.
2
Distribution of airborne influenza virus and respiratory syncytial virus in an urgent care medical clinic.在一家紧急护理医疗诊所中,空气传播流感病毒和呼吸道合胞病毒的分布情况。
Clin Infect Dis. 2010 Mar 1;50(5):693-8. doi: 10.1086/650457.
3
Calculating the potential for within-flight transmission of influenza A (H1N1).计算甲型 H1N1 流感在飞行过程中的传播潜力。
BMC Med. 2009 Dec 24;7:81. doi: 10.1186/1741-7015-7-81.
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Evaluation of a rapid molecular algorithm for detection of pandemic influenza A (H1N1) 2009 virus and screening for a key oseltamivir resistance (H275Y) substitution in neuraminidase.评估一种用于检测大流行性流感 A(H1N1)2009 病毒的快速分子算法,以及筛选神经氨酸酶中的关键奥司他韦耐药(H275Y)取代。
J Clin Virol. 2010 Jan;47(1):34-7. doi: 10.1016/j.jcv.2009.09.030. Epub 2009 Oct 25.
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Airborne influenza virus detection with four aerosol samplers using molecular and infectivity assays: considerations for a new infectious virus aerosol sampler.使用分子和感染性检测方法通过四种气溶胶采样器检测空气传播的流感病毒:新型传染性病毒气溶胶采样器的考量因素
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Molecular detection of a novel human influenza (H1N1) of pandemic potential by conventional and real-time quantitative RT-PCR assays.通过常规和实时定量逆转录聚合酶链反应检测具有大流行潜力的新型人类甲型流感(H1N1)病毒
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An optimized method to detect influenza virus and human rhinovirus from exhaled breath and the airborne environment.一种从呼出气体和空气环境中检测流感病毒和人鼻病毒的优化方法。
J Environ Monit. 2009 Feb;11(2):314-7. doi: 10.1039/b813520g. Epub 2008 Dec 1.
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Practical considerations for high-throughput influenza A virus surveillance studies of wild birds by use of molecular diagnostic tests.利用分子诊断检测对野生鸟类进行甲型流感病毒高通量监测研究的实际考量
J Clin Microbiol. 2009 Mar;47(3):666-73. doi: 10.1128/JCM.01625-08. Epub 2008 Dec 24.

在一家健康中心、一家日托中心和飞机上测量到的室内空气中甲型流感病毒的浓度和粒径分布。

Concentrations and size distributions of airborne influenza A viruses measured indoors at a health centre, a day-care centre and on aeroplanes.

机构信息

Department of Civil and Environmental Engineering, Virginia Tech, 418 Durham Hall, Blacksburg, VA 24061, USA.

出版信息

J R Soc Interface. 2011 Aug 7;8(61):1176-84. doi: 10.1098/rsif.2010.0686. Epub 2011 Feb 7.

DOI:10.1098/rsif.2010.0686
PMID:21300628
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3119883/
Abstract

The relative importance of the aerosol transmission route for influenza remains contentious. To determine the potential for influenza to spread via the aerosol route, we measured the size distribution of airborne influenza A viruses. We collected size-segregated aerosol samples during the 2009-2010 flu season in a health centre, a day-care facility and onboard aeroplanes. Filter extracts were analysed using quantitative reverse transcriptase polymerase chain reaction. Half of the 16 samples were positive, and their total virus concentrations ranged from 5800 to 37,000 genome copies m(-3). On average, 64 per cent of the viral genome copies were associated with fine particles smaller than 2.5 µm, which can remain suspended for hours. Modelling of virus concentrations indoors suggested a source strength of 1.6±1.2×10(5) genome copies m(-3) air h(-1) and a deposition flux onto surfaces of 13±7 genome copies m(-2) h(-1) by Brownian motion. Over 1 hour, the inhalation dose was estimated to be 30±18 median tissue culture infectious dose (TCID50), adequate to induce infection. These results provide quantitative support for the idea that the aerosol route could be an important mode of influenza transmission.

摘要

流感病毒气溶胶传播途径的相对重要性仍存在争议。为了确定流感通过气溶胶途径传播的可能性,我们测量了空气中甲型流感病毒的粒径分布。我们在一个医疗中心、一个日托设施和飞机上收集了 2009-2010 流感季节的按粒径分级的气溶胶样本。使用定量逆转录聚合酶链反应对滤器提取物进行分析。16 个样本中有一半呈阳性,其总病毒浓度范围为 5800 至 37000 基因组拷贝/立方米。平均而言,64%的病毒基因组拷贝与小于 2.5μm 的细颗粒有关,这些颗粒可以悬浮数小时。室内病毒浓度的建模表明,每小时空气源强为 1.6±1.2×10(5)基因组拷贝/立方米,布朗运动使病毒沉积到表面的通量为 13±7 基因组拷贝/平方米·小时。在 1 小时内,吸入剂量估计为 30±18 中位组织培养感染剂量(TCID50),足以引起感染。这些结果为气溶胶途径可能是流感传播的一种重要方式的观点提供了定量支持。