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IBPGNET:基于神经网络可解释性的肺腺癌复发预测。

IBPGNET: lung adenocarcinoma recurrence prediction based on neural network interpretability.

机构信息

Department of Thoracic and Cardiovascular Surgery, The First Affiliated Hospital of Guangxi Medical University, Nanning, Guangxi Zhuang Autonomous Region 530021, China.

School of computer, Electronic and Information, Guangxi University, Nanning, Guangxi Zhuang Autonomous Region 530021, China.

出版信息

Brief Bioinform. 2024 Mar 27;25(3). doi: 10.1093/bib/bbae080.

Abstract

Lung adenocarcinoma (LUAD) is the most common histologic subtype of lung cancer. Early-stage patients have a 30-50% probability of metastatic recurrence after surgical treatment. Here, we propose a new computational framework, Interpretable Biological Pathway Graph Neural Networks (IBPGNET), based on pathway hierarchy relationships to predict LUAD recurrence and explore the internal regulatory mechanisms of LUAD. IBPGNET can integrate different omics data efficiently and provide global interpretability. In addition, our experimental results show that IBPGNET outperforms other classification methods in 5-fold cross-validation. IBPGNET identified PSMC1 and PSMD11 as genes associated with LUAD recurrence, and their expression levels were significantly higher in LUAD cells than in normal cells. The knockdown of PSMC1 and PSMD11 in LUAD cells increased their sensitivity to afatinib and decreased cell migration, invasion and proliferation. In addition, the cells showed significantly lower EGFR expression, indicating that PSMC1 and PSMD11 may mediate therapeutic sensitivity through EGFR expression.

摘要

肺腺癌 (LUAD) 是肺癌最常见的组织学亚型。手术后,早期患者有 30-50%的转移复发概率。在这里,我们提出了一种新的基于通路层次关系的计算框架——可解释生物通路图神经网络 (IBPGNET),用于预测 LUAD 复发并探索 LUAD 的内部调节机制。IBPGNET 可以有效地整合不同的组学数据,并提供全局可解释性。此外,我们的实验结果表明,IBPGNET 在 5 折交叉验证中优于其他分类方法。IBPGNET 鉴定出 PSMC1 和 PSMD11 是与 LUAD 复发相关的基因,它们在 LUAD 细胞中的表达水平明显高于正常细胞。在 LUAD 细胞中敲低 PSMC1 和 PSMD11 会增加它们对阿法替尼的敏感性,并降低细胞迁移、侵袭和增殖。此外,细胞中 EGFR 表达明显降低,表明 PSMC1 和 PSMD11 可能通过 EGFR 表达介导治疗敏感性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3249/10982951/490e5b281d3a/bbae080f1.jpg

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