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人工智能在肝脏疾病管理中的作用。

The role of artificial intelligence in the management of liver diseases.

机构信息

Division of Hepatobiliary, Department of Internal Medicine, Kaohsiung Medical University Hospital, Kaohsiung Medical University, Kaohsiung, Taiwan.

School of Medicine and Hepatitis Research Center, College of Medicine and Center for Liquid Biopsy and Cohort Research, Kaohsiung Medical University, Kaohsiung, Taiwan.

出版信息

Kaohsiung J Med Sci. 2024 Nov;40(11):962-971. doi: 10.1002/kjm2.12901. Epub 2024 Oct 23.

Abstract

Universal neonatal hepatitis B virus (HBV) vaccination and the advent of direct-acting antivirals (DAA) against hepatitis C virus (HCV) have reshaped the epidemiology of chronic liver diseases. However, some aspects of the management of chronic liver diseases remain unresolved. Nucleotide analogs can achieve sustained HBV DNA suppression but rarely lead to a functional cure. Despite the high efficacy of DAAs, successful antiviral therapy does not eliminate the risk of hepatocellular carcinoma (HCC), highlighted the need for cost-effective identification of high-risk populations for HCC surveillance and tailored HCC treatment strategies for these populations. The accessibility of high-throughput genomic data has accelerated the development of precision medicine, and the emergence of artificial intelligence (AI) has led to a new era of precision medicine. AI can learn from complex, non-linear data and identify hidden patterns within real-world datasets. The combination of AI and multi-omics approaches can facilitate disease diagnosis, biomarker discovery, and the prediction of treatment efficacy and prognosis. AI algorithms have been implemented in various aspects, including non-invasive tests, predictive models, image diagnosis, and the interpretation of histopathology findings. AI can support clinicians in decision-making, alleviate clinical burdens, and curtail healthcare expenses. In this review, we introduce the fundamental concepts of machine learning and review the role of AI in the management of chronic liver diseases.

摘要

乙型肝炎病毒(HBV)在新生儿中的普遍接种以及直接作用抗病毒药物(DAA)的出现,改变了慢性肝脏疾病的流行病学。然而,慢性肝脏疾病的某些管理方面仍然没有得到解决。核苷酸类似物可以实现持续的 HBV DNA 抑制,但很少能导致功能性治愈。尽管 DAA 的疗效很高,但成功的抗病毒治疗并不能消除肝细胞癌(HCC)的风险,这突出表明需要进行具有成本效益的 HCC 监测高危人群的识别,并为这些人群制定个体化的 HCC 治疗策略。高通量基因组数据的可及性加速了精准医学的发展,人工智能(AI)的出现则引领了精准医学的新纪元。AI 可以从复杂的非线性数据中学习,并在真实世界的数据集中识别隐藏的模式。AI 和多组学方法的结合可以促进疾病诊断、生物标志物发现以及治疗效果和预后的预测。AI 算法已经在多个方面得到了应用,包括非侵入性检测、预测模型、图像诊断以及组织病理学发现的解释。AI 可以帮助临床医生做出决策,减轻临床负担并控制医疗保健费用。在这篇综述中,我们介绍了机器学习的基本概念,并回顾了 AI 在慢性肝脏疾病管理中的作用。

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