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使用HALO数字图像分析技术自动检测耳缺标本中的牛病毒性腹泻病毒抗原。

Using HALO digital image analysis for automated detection of bovine viral diarrhea virus antigen in ear-notch specimens.

作者信息

Lin Susanne Je-Han, Magstadt Drew R, Derscheid Rachel J, Burrough Eric R

机构信息

Veterinary Diagnostic Laboratory, Iowa State University, Ames, IA, USA.

出版信息

J Vet Diagn Invest. 2025 Mar;37(2):354-357. doi: 10.1177/10406387241307643. Epub 2025 Jan 7.

Abstract

Detecting calves that are persistently infected with bovine viral diarrhea virus (BVDV) is essential to disease prevention. Immunohistochemistry (IHC) performed on formalin-fixed, paraffin-embedded ear-notch samples is commonly used for surveillance detection of BVDV antigens. However, due to the low percentage of positive samples in most submissions, the current workflow often entails considerable time reviewing negative results. Herein we aimed to utilize digital pathology and whole-slide imaging, coupled with advanced image analysis software, to enhance the efficiency of positive IHC detection in surveillance. Despite some challenges encountered during the implementation phase, the benefits of the reduced potential for human error and significant time savings for technicians and pathologists are evident. The screening of 518 slides, containing 2,884 ear notches, reached 97.4% sensitivity and 89.4% specificity compared to the gold standard of direct human assessment. The time taken for the personnel to operate the software and organize results was significantly shorter than the time needed for technicians and pathologists to manually examine the slides. Future refinements in software integration, staining protocols, and QC measures promise to further optimize this approach.

摘要

检测持续感染牛病毒性腹泻病毒(BVDV)的犊牛对于疾病预防至关重要。对福尔马林固定、石蜡包埋的耳缺样本进行免疫组织化学(IHC)检测常用于BVDV抗原的监测。然而,由于大多数送检样本中阳性样本的比例较低,当前的工作流程往往需要花费大量时间审查阴性结果。在此,我们旨在利用数字病理学和全切片成像技术,并结合先进的图像分析软件,提高监测中免疫组化阳性检测的效率。尽管在实施阶段遇到了一些挑战,但减少人为误差的可能性以及为技术人员和病理学家节省大量时间的好处是显而易见的。与直接人工评估的金标准相比,对包含2884个耳缺的518张玻片进行筛查,灵敏度达到97.4%,特异性达到89.4%。人员操作软件和整理结果所花费的时间明显短于技术人员和病理学家手动检查玻片所需的时间。软件集成、染色方案和质量控制措施方面的未来改进有望进一步优化这种方法。

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