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代谢相关脂肪性肝病预后风险分型:数据驱动下的探索与展望

王莹 赵雨晴 刘津津 邓优 尤红 赵静洁

引用本文:
Citation:

代谢相关脂肪性肝病预后风险分型:数据驱动下的探索与展望

DOI: 10.12449/JCH260224
基金项目: 

国家科技重大专项-四大慢病重大专项 (2023ZD0508702);

北京市卫生健康委高层次公共卫生技术人才建设项目 (Discipline Backbone-03-40)

利益冲突声明:本文不存在任何利益冲突。
作者贡献声明:王莹负责文献整理及论文撰写;赵雨晴、刘津津负责文献收集及筛选;邓优负责论文内容指导与修订;赵静洁、尤红负责拟定写作思路并最终定稿。
详细信息
    通信作者:

    赵静洁, zhaojj@ccmu.edu.cn (ORCID: 0000-0001-7763-1351)

Prognostic risk classification of metabolic dysfunction-associated fatty liver disease: Data-driven exploration and prospect

Research funding: 

Noncommunicable Chronic Diseases-National Science and Technology Major Project (2023ZD0508702);

Beijing High-level Public Health Technical Personnel Construction Project (Discipline Backbone-03-40)

More Information
    Corresponding author: ZHAO Jingjie, zhaojj@ccmu.edu.cn (ORCID: 0000-0001-7763-1351)
  • 摘要: 代谢相关脂肪性肝病是全球最常见的慢性肝病之一,因疾病的复杂性和疾病进展的异质性对精准诊疗提出了严峻挑战。目前常用的临床分型无法满足全面解析该疾病复杂性和不良预后异质性的需求。近年来,基于数据驱动的预后风险分型逐渐涌现,显著优化了不良预后的风险预测能力,提升了不同终点结局的识别精度。然而,这种先分型、后关联结局的模式,存在数据“黑箱”问题,且分型指标各异,临床应用尚不稳定。未来需整合或建立大规模人群队列,以不同临床结局为导向构建预后风险分型模型,整合动态数据,优化分型算法,并通过多人群验证其普适性,为代谢相关脂肪性肝病的精准诊疗提供可靠支撑。

     

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出版历程
  • 收稿日期:  2025-06-04
  • 录用日期:  2025-08-18
  • 出版日期:  2026-02-25
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