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一项评估高通量测序用于病毒检测性能的多中心研究。

A Multicenter Study To Evaluate the Performance of High-Throughput Sequencing for Virus Detection.

作者信息

Khan Arifa S, Ng Siemon H S, Vandeputte Olivier, Aljanahi Aisha, Deyati Avisek, Cassart Jean-Pol, Charlebois Robert L, Taliaferro Lanyn P

机构信息

Division of Viral Products, Office of Vaccines Research and Review, Center for Biologics Evaluation and Research, U.S. Food and Drug Administration, Silver Spring, Maryland, USA.

Analytical Research and Development North America, Sanofi Pasteur, Toronto, Ontario, Canada.

出版信息

mSphere. 2017 Sep 13;2(5). doi: 10.1128/mSphere.00307-17. eCollection 2017 Sep-Oct.

Abstract

The capability of high-throughput sequencing (HTS) for detection of known and unknown viruses makes it a powerful tool for broad microbial investigations, such as evaluation of novel cell substrates that may be used for the development of new biological products. However, like any new assay, regulatory applications of HTS need method standardization. Therefore, our three laboratories initiated a study to evaluate performance of HTS for potential detection of viral adventitious agents by spiking model viruses in different cellular matrices to mimic putative materials for manufacturing of biologics. Four model viruses were selected based upon different physical and biochemical properties and commercial availability: human respiratory syncytial virus (RSV), Epstein-Barr virus (EBV), feline leukemia virus (FeLV), and human reovirus (REO). Additionally, porcine circovirus (PCV) was tested by one laboratory. Independent samples were prepared for HTS by spiking intact viruses or extracted viral nucleic acids, singly or mixed, into different HeLa cell matrices (resuspended whole cells, cell lysate, or total cellular RNA). Data were obtained using different sequencing platforms (Roche 454, Illumina HiSeq1500 or HiSeq2500). Bioinformatic analyses were performed independently by each laboratory using available tools, pipelines, and databases. The results showed that comparable virus detection was obtained in the three laboratories regardless of sample processing, library preparation, sequencing platform, and bioinformatic analysis: between 0.1 and 3 viral genome copies per cell were detected for all of the model viruses used. This study highlights the potential for using HTS for sensitive detection of adventitious viruses in complex biological samples containing cellular background. Recent high-throughput sequencing (HTS) investigations have resulted in unexpected discoveries of known and novel viruses in a variety of sample types, including research materials, clinical materials, and biological products. Therefore, HTS can be a powerful tool for supplementing current methods for demonstrating the absence of adventitious or unwanted viruses in biological products, particularly when using a new cell line. However, HTS is a complex technology with different platforms, which needs standardization for evaluation of biologics. This collaborative study was undertaken to investigate detection of different virus types using two different HTS platforms. The results of the independently performed studies demonstrated a similar sensitivity of virus detection, regardless of the different sample preparation and processing procedures and bioinformatic analyses done in the three laboratories. Comparable HTS detection of different virus types supports future development of reference virus materials for standardization and validation of different HTS platforms.

摘要

高通量测序(HTS)检测已知和未知病毒的能力使其成为广泛微生物研究的有力工具,例如评估可用于开发新生物制品的新型细胞底物。然而,与任何新检测方法一样,HTS的监管应用需要方法标准化。因此,我们三个实验室启动了一项研究,通过在不同细胞基质中加入模型病毒来模拟生物制品生产的假定材料,以评估HTS对潜在病毒外来因子的检测性能。根据不同的物理和生化特性以及商业可得性选择了四种模型病毒:人呼吸道合胞病毒(RSV)、爱泼斯坦 - 巴尔病毒(EBV)、猫白血病病毒(FeLV)和人呼肠孤病毒(REO)。另外,一个实验室还检测了猪圆环病毒(PCV)。通过将完整病毒或提取的病毒核酸单独或混合加入不同的HeLa细胞基质(重悬的全细胞、细胞裂解物或总细胞RNA)中制备用于HTS的独立样本。使用不同的测序平台(罗氏454、Illumina HiSeq1500或HiSeq2500)获得数据。每个实验室使用可用的工具、流程和数据库独立进行生物信息学分析。结果表明,无论样本处理、文库制备、测序平台和生物信息学分析如何,三个实验室均获得了可比的病毒检测结果:对于所有使用的模型病毒,每细胞检测到0.1至3个病毒基因组拷贝。这项研究突出了使用HTS灵敏检测含有细胞背景的复杂生物样本中病毒外来因子的潜力。最近的高通量测序(HTS)研究在包括研究材料、临床材料和生物制品在内的各种样本类型中意外发现了已知和新型病毒。因此,HTS可以成为补充当前证明生物制品中不存在外来或不需要病毒的方法的有力工具,特别是在使用新细胞系时。然而,HTS是一种具有不同平台的复杂技术,其用于生物制品评估需要标准化。这项合作研究旨在使用两种不同的HTS平台研究不同病毒类型的检测。独立进行的研究结果表明,无论三个实验室中进行的不同样本制备和处理程序以及生物信息学分析如何,病毒检测的灵敏度相似。不同病毒类型的可比HTS检测支持未来开发用于不同HTS平台标准化和验证的参考病毒材料。

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