Identification of cell surface markers for acute myeloid leukemia prognosis based on multi-model analysis.

IF 2.2 4区 医学 Q3 MEDICINE, RESEARCH & EXPERIMENTAL Journal of Biomedical Research Pub Date : 2024-05-29 DOI:10.7555/JBR.38.20240065
Jiaqi Tang, Lin Luo, Bakwatanisa Bosco, Ning Li, Bin Huang, Rongrong Wu, Zihan Lin, Ming Hong, Wenjie Liu, Lingxiang Wu, Wei Wu, Mengyan Zhu, Quanzhong Liu, Peng Xia, Miao Yu, Diru Yao, Sali Lv, Ruohan Zhang, Wentao Liu, Qianghu Wang, Kening Li
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Abstract

Given the extremely high inter-patient heterogeneity of acute myeloid leukemia (AML), the identification of biomarkers for prognostic assessment and therapeutic guidance is critical. Cell surface markers (CSMs) have been shown to play an important role in AML leukemogenesis and progression. In the current study, we evaluated the prognostic potential of all human CSMs in 130 AML patients from The Cancer Genome Atlas (TCGA) based on differential gene expression analysis and univariable Cox proportional hazards regression analysis. By using multi-model analysis, including Adaptive LASSO regression, LASSO regression, and Elastic Net, we constructed a 9-CSMs prognostic model for risk stratification of the AML patients. The predictive value of the 9-CSMs risk score was further validated at the transcriptome and proteome levels. Multivariable Cox regression analysis showed that the risk score was an independent prognostic factor for the AML patients. The AML patients with high 9-CSMs risk scores had a shorter overall and event-free survival time than those with low scores. Notably, single-cell RNA-sequencing analysis indicated that patients with high 9-CSMs risk scores exhibited chemotherapy resistance. Furthermore, PI3K inhibitors were identified as potential treatments for these high-risk patients. In conclusion, we constructed a 9-CSMs prognostic model that served as an independent prognostic factor for the survival of AML patients and held the potential for guiding drug therapy.

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基于多模型分析鉴定急性髓性白血病预后的细胞表面标志物
鉴于急性髓性白血病(AML)患者间的异质性极高,确定用于预后评估和治疗指导的生物标志物至关重要。细胞表面标志物(CSMs)已被证明在急性髓性白血病的白血病发生和发展过程中起着重要作用。在本研究中,我们根据差异基因表达分析和单变量 Cox 回归分析评估了急性髓细胞性白血病患者所有人类 CSM 的预后潜力。利用多模型分析(包括自适应 LASSO 回归、LASSO 回归和弹性网),我们构建了用于 AML 患者风险分层的 9-CSMs 预后模型。三个独立数据集进一步证实了 9-CSMs 风险评分的预测价值。多变量 Cox 回归分析表明,风险评分是急性髓细胞性白血病患者的一个独立预后因素。9-CSMs 风险评分高的急性髓细胞性白血病患者的总生存期和无事件生存期比评分低的患者短。值得注意的是,我们的单细胞 RNA 序列分析表明,9-CSMs 风险评分高的患者表现出化疗耐药性。此外,PI3K 抑制剂被认为是这些高风险患者的潜在治疗方法。总之,我们构建的 9-CSMs 预后模型是影响急性髓细胞性白血病患者生存的独立预后因素,具有指导药物治疗的潜力。
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来源期刊
Journal of Biomedical Research
Journal of Biomedical Research MEDICINE, RESEARCH & EXPERIMENTAL-
CiteScore
4.60
自引率
0.00%
发文量
69
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