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A pathologist-in-the-loop IHC antibody test selection using the entropy-based probabilistic method

机译:使用基于熵的概率方法进行病理学家在环IHC抗体测试的选择

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Background:Immunohistochemistry (IHC) is an important tool to identify and quantify expression of certain proteins (antigens) to gain insights into the molecular processes in a diseased tissue. However, it is a challenge for pathologists to remember the discriminative characteristics of the growing number of such antigens across multiple diseases. The complexity of their expression patterns, fueled by continuous discoveries in molecular pathology, gives rise to a combinatorial explosion that places an unprecedented burden on a practicing pathologist and therefore increases cost and variability of IHC studies.Materials and Methods:To tackle these issues, we have developed antibody test optimized selection method, a novel informatics tool to help pathologists in improving the IHC antibody selection process. The method uses extensions of Shannon's information entropies and Bayesian probabilities to dynamically build an efficient diagnostic tree.Results:A comparative analysis of our method with the expert and World Health Organization classification guidelines showed that the proposed method brings threefold reduction in number of antibody tests required to reach a diagnostic conclusion.Conclusion:The developed method can significantly streamline the antibody test selection process, decrease associated costs and reduce inter- and intrapathologist variability in IHC decision-making.
机译:背景:免疫组织化学(IHC)是鉴定和定量某些蛋白质(抗原)表达的重要工具,可深入了解患病组织的分子过程。然而,对于病理学家而言,要记住跨多种疾病的此类抗原数量不断增长的区别特征是一个挑战。由于分子病理学的不断发现,其表达模式的复杂性引发了组合爆炸,给实践中的病理学家带来了空前的负担,因此增加了IHC研究的成本和可变性。为解决这些问题,我们已经开发了抗体测试优化选择方法,这是一种新颖的信息学工具,可帮助病理学家改善IHC抗体选择过程。该方法利用Shannon信息熵和贝叶斯概率的扩展来动态构建有效的诊断树。结果:我们的方法与专家和世界卫生组织分类指南的比较分析表明,该方法可将所需的抗体测试次数减少三倍结论:开发的方法可以显着简化抗体测试选择流程,降低相关成本,并减少IHC决策过程中病理学家之间的差异。

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