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基于蛋白质组学联合转录组学的肺腺癌预后模型和标志物研究

严循东 张先稳

实用临床医药杂志2025,Vol.29Issue(3):30-37,8.
实用临床医药杂志2025,Vol.29Issue(3):30-37,8.DOI:10.7619/jcmp.20240963

基于蛋白质组学联合转录组学的肺腺癌预后模型和标志物研究

Research on prognostic models and biomarkers of lung adenocarcinoma using integrated proteomics and transcriptomics

严循东 1张先稳2

作者信息

  • 1. 扬州大学医学院,江苏扬州,225003||江苏省扬州洪泉医院放疗科,江苏扬州,225200
  • 2. 扬州大学附属苏北人民医院肿瘤科,江苏扬州,225009
  • 折叠

摘要

Abstract

Objective To screen prognostic biomarkers for lung adenocarcinoma by integrating proteomics and transcriptomics.Methods Proteomics,transcriptomics and clinical characteristics da-ta of lung adenocarcinoma patients were downloaded from the TCGA public database.The dataset was split into training set and validation set at a ratio of 7∶3.Univariate prognostic analysis of protein ex-pression was conducted in the training set based on patients'clinical survival time,survival status,and protein expression data.A prognostic model for lung adenocarcinoma patients was constructed using the lasso-step cox method,and risk scores were calculated.Patients were divided into high-risk and low-risk groups based on the median risk score,and the prognosis of the two groups was analyzed.A prog-nostic nomogram model and calibration curves were constructed to clinically validate and correlate the model.The protein expression of the model was analyzed based on the HPA database,and enrichment analysis was performed on the risk proteins.Immunohistochemical and clinical characteristic analyses were conducted in 20 newly diagnosed lung adenocarcinoma patients from our hospital.Results Five proteins associated with prognosis were screened out,and a risk protein model was constructed.The risk score had a predictive effect on the prognosis of lung adenocarcinoma patients.The risk model demonstrated strong and independent prognostic predictive ability.The nomogram model showed high accuracy in predicting individual prognosis.Furthermore,there were intrinsic relationship of the risk model and its calculated risk scores with clinical staging characteristics.HPA database anal-ysis revealed significant overexpression of CD38,CD49B,ADAR1,and cdc25C4 in lung adenocar-cinoma tissues.The 20 clinical specimens from our hospital validated the high expression of CD49B in newly diagnosed lung adenocarcinoma patients with distant metastasis and its sensitivity to treat-ment.Conclusion The combined analysis of proteomics and transcriptomics for prognostic biomar-kers of lung adenocarcinoma yields reliable results.CD49B plays a crucial role in lung adenocarci-noma,and the prognostic prediction model based on this gene is expected to provide important refer-ences for clinical treatment of lung adenocarcinoma.

关键词

蛋白质组学/转录组学/肺腺癌/CD49B蛋白/TCGA公共数据

Key words

proteomics/transcriptomics/lung adenocarcinoma/CD49B protein/TCGA public data

分类

临床医学

引用本文复制引用

严循东,张先稳..基于蛋白质组学联合转录组学的肺腺癌预后模型和标志物研究[J].实用临床医药杂志,2025,29(3):30-37,8.

基金项目

江苏省扬州市十三五科教强卫重点人才项目(RCC201821) (RCC201821)

实用临床医药杂志

1672-2353

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