Development and Assessment of a Diagnostic DNA Oligonucleotide Microarray for Detection and Typing of Meningitis-Associated Bacterial Species.

Q2 Biochemistry, Genetics and Molecular Biology High-Throughput Pub Date : 2018-10-16 DOI:10.3390/ht7040032
Stephanie A Bannister, Stephen P Kidd, Elizabeth Kirby, Sonal Shah, Anvy Thomas, Richard Vipond, Michael J Elmore, Andrew Telfer Brunton, Peter Marsh, Steve Green, Nigel J Silman, Karen E Kempsell
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引用次数: 4

Abstract

Meningitis is commonly caused by infection with a variety of bacterial or viral pathogens. Acute bacterial meningitis (ABM) can cause severe disease, which can progress rapidly to a critical life-threatening condition. Rapid diagnosis of ABM is critical, as this is most commonly associated with severe sequelae with associated high mortality and morbidity rates compared to viral meningitis, which is less severe and self-limiting. We have designed a microarray for detection and diagnosis of ABM. This has been validated using randomly amplified DNA targets (RADT), comparing buffers with or without formamide, in glass slide format or on the Alere ArrayTubeTM (Alere Technologies GmbH) microarray platform. Pathogen-specific signals were observed using purified bacterial nucleic acids and to a lesser extent using patient cerebral spinal fluid (CSF) samples, with some technical issues observed using RADT and glass slides. Repurposing the array onto the Alere ArrayTubeTM platform and using a targeted amplification system increased specific and reduced nonspecific hybridization signals using both pathogen nucleic and patient CSF DNA targets, better revealing pathogen-specific signals although sensitivity was still reduced in the latter. This diagnostic microarray is useful as a laboratory diagnostic tool for species and strain designation for ABM, rather than for primary diagnosis.

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用于脑膜炎相关细菌种类检测和分型的诊断性DNA寡核苷酸芯片的开发和评估。
脑膜炎通常是由多种细菌或病毒病原体感染引起的。急性细菌性脑膜炎(ABM)可引起严重疾病,并可迅速发展为危及生命的严重疾病。ABM的快速诊断至关重要,因为与病毒性脑膜炎相比,ABM最常伴有严重的后遗症,并伴有高死亡率和发病率,而病毒性脑膜炎较轻且具有自限性。我们设计了一种用于ABM检测和诊断的微阵列。这已经通过随机扩增DNA靶标(RADT)进行验证,比较有或没有甲酰胺的缓冲液,在玻片格式或在Alere ArrayTubeTM (Alere Technologies GmbH)微阵列平台上。使用纯化的细菌核酸观察病原体特异性信号,在较小程度上使用患者脑脊液(CSF)样本,使用RADT和玻璃载玻片观察到一些技术问题。将该阵列重新应用到Alere ArrayTubeTM平台上,并使用靶向扩增系统,利用病原体核酸和患者CSF DNA靶标增加特异性和减少非特异性杂交信号,更好地揭示病原体特异性信号,尽管后者的敏感性仍然降低。这种诊断芯片是有用的,作为一个实验室诊断工具,物种和菌株指定的ABM,而不是初步诊断。
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来源期刊
High-Throughput
High-Throughput Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.60
自引率
0.00%
发文量
0
审稿时长
9 weeks
期刊介绍: High-Throughput (formerly Microarrays, ISSN 2076-3905) is a multidisciplinary peer-reviewed scientific journal that provides an advanced forum for the publication of studies reporting high-dimensional approaches and developments in Life Sciences, Chemistry and related fields. Our aim is to encourage scientists to publish their experimental and theoretical results based on high-throughput techniques as well as computational and statistical tools for data analysis and interpretation. The full experimental or methodological details must be provided so that the results can be reproduced. There is no restriction on the length of the papers. High-Throughput invites submissions covering several topics, including, but not limited to: -Microarrays -DNA Sequencing -RNA Sequencing -Protein Identification and Quantification -Cell-based Approaches -Omics Technologies -Imaging -Bioinformatics -Computational Biology/Chemistry -Statistics -Integrative Omics -Drug Discovery and Development -Microfluidics -Lab-on-a-chip -Data Mining -Databases -Multiplex Assays
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