Immunofluorescence detection of Ecytonucleospora hepatopenaei (EHP) in Penaeus vannamei

IF 1.7 4区 生物学 Q4 BIOCHEMICAL RESEARCH METHODS Journal of microbiological methods Pub Date : 2024-09-12 DOI:10.1016/j.mimet.2024.107039
Sungman Cho , Deborah A. Schaefer , Hung N. Mai , Michael W. Riggs , Arun K. Dhar
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Abstract

Hepatopancreatic microsporidiosis (HPM), caused by the microsporidium Ecytonucleospora hepatopenaei (EHP) leads to retarded growth and enhanced susceptibility to other diseases in shrimp resulting in a major loss for the shrimp industry worldwide. It is little understood how EHP infects its host and hijacks its cellular machinery to replicate and exert clinical manifestations in infected shrimp. Since the initial record of HPM, histopathology and polymerase chain reaction (PCR)-based assays were developed for the detection of EHP to prevent spread of the disease. Availability of an antibody-based detection method would complement these existing diagnostic tools and be useful in studying EHP pathogenesis. We describe here an immunofluorescence assay (IFA) for detecting EHP using monoclonal antibodies (mAbs) that were originally developed against Cryptosporidium parvum, a coccidian parasite that infects calves (Bos taurus), other agriculturally important animals, and humans. Forty-one mAbs were screened and two mAbs, 3E2 and 3A12, were found to detect EHP successfully. The utility of these mAbs in detecting EHP was further assessed by testing 36 experimentally challenged EHP-infected shrimp (Penaeus vannamei). EHP-detection data from infected shrimp were compared by Hematoxylin and Eosin (H&E) histology, real-time PCR, and immunofluorescence. The data show IFA using mAbs 3E2 and 3A12 could successfully detect EHP and that the sensitivity of detection is comparable to H&E histology and quantitative PCR. Availability of mAbs that can detect EHP is expected to be immensely beneficial in HPM diagnosis. Since the pathobiology of C. parvum has been so widely studied, these cross-reactive mAbs may also aid in gaining some insight into EHP pathogenesis and disease.

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免疫荧光检测万年青中的肝包虫(EHP)
由 Ecytonucleospora hepatopenaei(EHP)微孢子虫引起的肝胰腺微孢子虫病(HPM)会导致对虾生长迟缓,并增加对其他疾病的易感性,给全球对虾产业造成重大损失。人们对 EHP 如何感染宿主并劫持宿主的细胞机制进行复制并在受感染的对虾中产生临床表现知之甚少。自最初记录 HPM 以来,已开发出基于组织病理学和聚合酶链反应(PCR)的检测方法来检测 EHP,以防止疾病传播。抗体检测方法的出现将补充这些现有的诊断工具,并有助于研究 EHP 的致病机理。我们在此介绍一种使用单克隆抗体(mAbs)检测 EHP 的免疫荧光检测法(IFA),这种单克隆抗体最初是针对副猪隐孢子虫开发的,副猪隐孢子虫是一种球虫寄生虫,会感染小牛(金牛)、其他重要的农业动物和人类。对 41 种 mAbs 进行了筛选,发现 3E2 和 3A12 这两种 mAbs 能成功检测出 EHP。通过检测 36 只受到实验性 EHP 感染的对虾(Penaeus vannamei),进一步评估了这些 mAbs 检测 EHP 的实用性。通过血沉和伊红(H&E)组织学、实时 PCR 和免疫荧光对感染虾的 EHP 检测数据进行了比较。数据显示,使用 mAbs 3E2 和 3A12 的 IFA 能成功检测出 EHP,而且检测灵敏度与 H&E 组织学和定量 PCR 相当。可以检测 EHP 的 mAbs 的出现有望极大地促进 HPM 的诊断。由于对副猪嗜血杆菌病理生物学的研究非常广泛,这些交叉反应的 mAbs 也可能有助于深入了解 EHP 的发病机制和疾病。
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来源期刊
Journal of microbiological methods
Journal of microbiological methods 生物-生化研究方法
CiteScore
4.30
自引率
4.50%
发文量
151
审稿时长
29 days
期刊介绍: The Journal of Microbiological Methods publishes scholarly and original articles, notes and review articles. These articles must include novel and/or state-of-the-art methods, or significant improvements to existing methods. Novel and innovative applications of current methods that are validated and useful will also be published. JMM strives for scholarship, innovation and excellence. This demands scientific rigour, the best available methods and technologies, correctly replicated experiments/tests, the inclusion of proper controls, calibrations, and the correct statistical analysis. The presentation of the data must support the interpretation of the method/approach. All aspects of microbiology are covered, except virology. These include agricultural microbiology, applied and environmental microbiology, bioassays, bioinformatics, biotechnology, biochemical microbiology, clinical microbiology, diagnostics, food monitoring and quality control microbiology, microbial genetics and genomics, geomicrobiology, microbiome methods regardless of habitat, high through-put sequencing methods and analysis, microbial pathogenesis and host responses, metabolomics, metagenomics, metaproteomics, microbial ecology and diversity, microbial physiology, microbial ultra-structure, microscopic and imaging methods, molecular microbiology, mycology, novel mathematical microbiology and modelling, parasitology, plant-microbe interactions, protein markers/profiles, proteomics, pyrosequencing, public health microbiology, radioisotopes applied to microbiology, robotics applied to microbiological methods,rumen microbiology, microbiological methods for space missions and extreme environments, sampling methods and samplers, soil and sediment microbiology, transcriptomics, veterinary microbiology, sero-diagnostics and typing/identification.
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