Anoikis‐related signature in liver hepatocellular carcinoma defines the YBX1/SPP1 axis by machine learning strategies and valid experiments

失巢 肝细胞癌 免疫疗法 恶性肿瘤 癌症研究 医学 肿瘤科 生物 生物信息学 癌症 内科学 癌细胞
作者
Ying Ma,Xingguo She,Jie Zhao,Shu Liu,Li Cai,Qiang Wang
出处
期刊:Journal of Gene Medicine [Wiley]
卷期号:25 (10): e3516-e3516 被引量:1
标识
DOI:10.1002/jgm.3516
摘要

Abstract Background Liver hepatocellular carcinoma (LIHC) remains a malignant malignancy with a low cure rate. Anoikis is a newly recognized cancer hallmark. However, an Anoikis‐related model has not been clarified in LIHC. Methods The Anoikis‐related score in the present study was created using Survival Random Forest and least absolute shrinkage and selection operator (LASSO) machine learning algorithms. Anoikis‐related scores with respect to mutation analysis, immunological analysis, function annotation, and medication prediction were all thoroughly investigated. Results The Anoikis‐related score accurately predicted the patients' immunological activity, altered genes, and medication sensitivity. SPP1 immunological analysis, function annotation, medication prediction, and immunotherapy prediction were systematically investigated. SPP1 may effectively predict the outcomes of immunotherapy. SPP1 was revealed to be a mediator of LIHC cell proliferation and migration. A putative axis in LIHC was YBX1/SPP1. Conclusions Clinical care and the treatment plan for patients with LIHC were anticipated to benefit significantly from the established Anoikis‐related score.
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