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首页> 外文期刊>Transplantation: Official Journal of the Transplantation Society >Advanced Morphologic Analysis for Diagnosing Allograft Rejection: The Case of Cardiac Transplant Rejection
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Advanced Morphologic Analysis for Diagnosing Allograft Rejection: The Case of Cardiac Transplant Rejection

机译:诊断同种异体移植排斥的先进形态学分析:心脏移植排斥的情况

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Allograft rejection remains a significant concern after all solid organ transplants. Although qualitative morphologic analysis with histologic grading of biopsy samples is the main tool employed for diagnosing allograft rejection, this standard has significant limitations in precision and accuracy that affect patient care. The use of endomyocardial biopsy to diagnose cardiac allograft rejection illustrates the significant shortcomings of current approaches for diagnosing allograft rejection. Despite disappointing interobserver variability, concerns about discordance with clinical trajectories, attempts at revising the histologic criteria and efforts to establish new diagnostic tools with imaging and gene expression profiling, no method has yet supplanted endomyocardial biopsy as the diagnostic gold standard. In this context, automated approaches to complex data analysis problemsoften referred to as machine learningrepresent promising strategies to improve overall diagnostic accuracy. By focusing on cardiac allograft rejection, where tissue sampling is relatively frequent, this review highlights the limitations of the current approach to diagnosing allograft rejection, introduces the basic methodology behind machine learning and automated image feature detection, and highlights the initial successes of these approaches within cardiovascular medicine.
机译:在所有固体器官移植后,同种异体移植排斥仍然是一个重要的问题。虽然具有活检样品的组织学分级的定性形态学分析是用于诊断同种异体移植抑制的主要工具,但该标准在影响患者护理的精度和准确性方面具有显着的局限性。使用子宫内膜活组织检查诊断心脏同种异体移植物抑制的方法说明了当前诊断同种异体移植排斥反应的方法的显着缺点。尽管令人失望的Interobserver变异性,关于与临床轨迹的不间断的担忧,但在修改组织学标准和努力时,可以进行成像和基因表达分析建立新的诊断工具,没有任何方法尚未被涂覆的子宫内膜活组织检查作为诊断金标准。在这种情况下,复杂数据分析问题的自动化方法称为机器学习的有希望的策略,以提高整体诊断准确性。通过专注于心脏异种移植抑制,在组织采样相对频繁的情况下,该综述突出了当前诊断同种异体移植抑制方法的局限性,介绍了机器学习和自动图像特征检测后的基本方法,并突出了这些方法的初始成功心血管医学。

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