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本文引用的文献

1
A novel one-day phage-based test for rapid detection and enumeration of viable Mycobacterium avium subsp. paratuberculosis in cows' milk.一种新型的基于噬菌体的检测方法,用于快速检测和计数牛奶中活的牛分枝杆菌亚种副结核分枝杆菌。
Appl Microbiol Biotechnol. 2020 Nov;104(21):9399-9412. doi: 10.1007/s00253-020-10909-0. Epub 2020 Sep 24.
2
Reporter Phage-Based Detection of Bacterial Pathogens: Design Guidelines and Recent Developments.基于噬菌体的细菌病原体检测:设计准则和最新进展。
Viruses. 2020 Aug 26;12(9):944. doi: 10.3390/v12090944.
3
Rapid detection of Escherichia coli using bacteriophage-induced lysis and image analysis.利用噬菌体诱导裂解和图像分析快速检测大肠杆菌。
PLoS One. 2020 Jun 5;15(6):e0233853. doi: 10.1371/journal.pone.0233853. eCollection 2020.
4
Phage-based forensic tool for spatial visualization of bacterial contaminants in cheese.基于噬菌体的法医工具,用于可视化奶酪中的细菌污染物的空间分布。
J Dairy Sci. 2020 Jul;103(7):5964-5971. doi: 10.3168/jds.2019-17807. Epub 2020 May 14.
5
Engineered Reporter Phages for Rapid Bioluminescence-Based Detection and Differentiation of Viable Cells.工程化报告噬菌体用于快速基于生物发光的活细胞检测和区分。
Appl Environ Microbiol. 2020 May 19;86(11). doi: 10.1128/AEM.00442-20.
6
Methods for detection of viable foodborne pathogens: current state-of-art and future prospects.检测食源性致病菌的方法:现状与未来展望。
Appl Microbiol Biotechnol. 2020 May;104(10):4281-4288. doi: 10.1007/s00253-020-10542-x. Epub 2020 Mar 26.
7
The development and use of Actiphage to detect viable mycobacteria from bovine tuberculosis and Johne's disease-infected animals.利用 Actiphage 检测牛结核病和副结核病感染动物中的活分枝杆菌。
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Rapid detection of Escherichia coli in beverages using genetically engineered bacteriophage T7.利用基因工程噬菌体T7快速检测饮料中的大肠杆菌。
AMB Express. 2019 Apr 19;9(1):55. doi: 10.1186/s13568-019-0776-7.
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A New Pathovar, Pseudomonas syringae pv. alisalensis pv. nov., Proposed for the Causal Agent of Bacterial Blight of Broccoli and Broccoli Raab.一种新致病变种,丁香假单胞菌葱蒜致病变种(Pseudomonas syringae pv. alisalensis),被提议作为西兰花和青花菜细菌性叶斑病的病原菌。
Plant Dis. 2002 Sep;86(9):992-998. doi: 10.1094/PDIS.2002.86.9.992.

噬菌体诊断技术在农业供应链中对细菌病原体的应用:从农场到餐桌

The Application of Bacteriophage Diagnostics for Bacterial Pathogens in the Agricultural Supply Chain: From Farm-to-Fork.

作者信息

Jones Helen J, Shield Christopher G, Swift Benjamin M C

机构信息

Pathobiology and Population Sciences, Royal Veterinary College, Hatfield, United Kingdom.

出版信息

Phage (New Rochelle). 2020 Dec 1;1(4):176-188. doi: 10.1089/phage.2020.0042. Epub 2020 Dec 16.

DOI:10.1089/phage.2020.0042
PMID:36147287
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9041468/
Abstract

Bacteriophages (phages) have great potential not only as therapeutics but as diagnostics. Indeed, they have been developed and used to diagnose and detect bacterial infections, primarily in human clinical settings. The ability to rapidly detect and control bacterial pathogens in agriculture is of primary importance to maintain food security, improve animal health, and prevent the passage of zoonotic pathogens into the human population. Culture-based detection methods are often labor-intensive, and require further confirmatory tests, increasing costs and processing times needed for diagnostics. Molecular detection methods such as polymerase chain reaction are commonly used to determine the safety of food, however, a major drawback is their inability to differentiate between viable and nonviable bacterial pathogens in food. Phage diagnostics have been proven to be rapid, capable of identifying viable pathogens and do not require cultivation to detect bacteria. Phage detection takes advantage of the specificity of interaction between phage and their hosts. Furthermore, phage detection is cost effective, which is vitally important in agricultural supply chains where there is a drive to keep costs down to ensure that the cost of food does not increase. The full potential of phage detection/diagnostics is not wholly realized or commercialized. This review explores the current use and potential future scope of phage diagnostics and their application to various bacterial pathogens across agriculture and food supply chains.

摘要

噬菌体不仅作为治疗手段,而且作为诊断工具都具有巨大潜力。事实上,它们已被开发并用于诊断和检测细菌感染,主要应用于人类临床环境。在农业中快速检测和控制细菌病原体的能力对于维护粮食安全、改善动物健康以及防止人畜共患病原体传播给人类至关重要。基于培养的检测方法通常 labor-intensive,并且需要进一步的确认测试,这增加了诊断所需的成本和处理时间。诸如聚合酶链反应等分子检测方法通常用于确定食品的安全性,然而,一个主要缺点是它们无法区分食品中活的和非活的细菌病原体。噬菌体诊断已被证明是快速的,能够识别活的病原体,并且不需要培养来检测细菌。噬菌体检测利用了噬菌体与其宿主之间相互作用的特异性。此外,噬菌体检测具有成本效益,这在农业供应链中至关重要,因为在农业供应链中有降低成本的需求,以确保食品成本不会增加。噬菌体检测/诊断的全部潜力尚未完全实现或商业化。本综述探讨了噬菌体诊断的当前应用和未来潜在范围,以及它们在农业和食品供应链中对各种细菌病原体的应用。 (注:原文中“labor-intensive”未翻译,可能是输入有误,其常见释义为“劳动密集型的” )