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脂质代谢相关基因标志物用于预测脓毒症患者生存状况的识别与验证

薛珵馨 许欣欣 何思宇 余子寒 侯昊宇 游智茗 李其科 李勇

川北医学院学报2026,Vol.41Issue(6):652-664,13.
川北医学院学报2026,Vol.41Issue(6):652-664,13.DOI:10.3969/j.issn.1005-3697.2026.06.003

脂质代谢相关基因标志物用于预测脓毒症患者生存状况的识别与验证

Identification and validation of a lipid metabolism-associated gene signature for predicting survival in sepsis patients

薛珵馨 1许欣欣 2何思宇 1余子寒 1侯昊宇 1游智茗 1李其科 1李勇3

作者信息

  • 1. 西南医科大学临床医学院
  • 2. 西南医科大学附属医院临床医学研究中心
  • 3. 泸州市人民医院,四川 泸州 646000
  • 折叠

摘要

Abstract

Objective:To develop a lipid metabolism-associated gene signature to stratify sepsis patients for prognostic risk and evaluate their immune function.Methods:Based on the sepsis dataset GSE65682,lipid metabolism-related genes were screened.Univariate Cox regression,LASSO regression,and multivariate Cox regression analyses were integrated to identify hub genes.Patients were divided into high-and low-risk groups based on the median risk score.Kaplan-Meier and ROC curve analyses were used to evaluate predictive performance.Additionally,an independent external dataset,GSE95233,was introduced to further validate the robustness of the model.Immune function differences were analyzed using ssGSEA,CIBERSORT,and correlation network analysis.Results:A 9-gene prognostic signature was constructed,consisting of AHRR,CLN8,FASN,LSS,MED29,PAFAH1B1,PIP5K1C,TRIB3,and UGCG.Patients in the high-risk group showed poorer survival(KM test P=6.75×e-8,area under the ROC curve AUC=0.951),with enrichment of chemokine receptor signaling and parainflammatory responses.The low-risk group exhibited higher levels of tumor-infiltrating lymphocytes,type II interferon response,regulatory T cells,and macrophage infiltration.Immune network analysis revealed synergy between activated NK cells and M1 macrophages(r=0.44)and antagonism with resting NK cells(r=-0.62).CD86 and TNFSF4 were highly expressed in the low-risk group,while the enrichment score of CD200R1 was significantly reduced(P<0.05).The model maintained robust predictive performance in the independent external validation dataset GSE95233(AUC=0.757).Conclusion:The established lipid metabolism-based 9-gene signature effectively predicts sepsis outcomes,revealing significant immune differences between risk groups.It provides a potential tool for risk stratification and personalized clinical intervention.

关键词

脓毒症/脂质代谢相关基因/LASSO-Cox回归分析/基因标志物/预后预测/免疫功能/生物信息学

Key words

Sepsis/Lipid metabolism-associated genes/LASSO-Cox regression analysis/Gene signature/Prediction prognosis/Immune function/Bioinformatics

分类

医药卫生

引用本文复制引用

薛珵馨,许欣欣,何思宇,余子寒,侯昊宇,游智茗,李其科,李勇..脂质代谢相关基因标志物用于预测脓毒症患者生存状况的识别与验证[J].川北医学院学报,2026,41(6):652-664,13.

基金项目

四川省泸州市医学会科研项目(2024-YXXM-111) (2024-YXXM-111)

四川省泸州市医学会科研项目(2024-YXXM-040) (2024-YXXM-040)

川北医学院学报

1005-3697

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