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通过单细胞测序数据分析鉴定葡萄膜黑色素瘤细胞通讯中涉及的特征基因和分子机制。

Identification of feature genes and molecular mechanisms involved in cell communication in uveal melanoma through analysis of single‑cell sequencing data.

作者信息

Lyu Ning, Wu Jiawen, Dai Yiqin, Fan Yidan, Lyu Zhaoyuan, Gu Jiayu, Cheng Jingyi, Xu Jianjiang

机构信息

Eye Institute and Department of Ophthalmology, Eye & ENT Hospital, Fudan University, Shanghai 200031, P.R. China.

NHC Key Laboratory of Myopia and Related Eye Diseases, Key Laboratory of Myopia and Related Eye Diseases, Chinese Academy of Medical Sciences, Shanghai 200031, P.R. China.

出版信息

Oncol Lett. 2024 Aug 20;28(5):503. doi: 10.3892/ol.2024.14636. eCollection 2024 Nov.

Abstract

Uveal melanoma (UM) is a highly metastatic cancer with resistance to immunotherapy. The present study aimed to identify novel feature genes and molecular mechanisms in UM through analysis of single-cell sequencing data. For this purpose, data were downloaded from The Cancer Genome Atlas and National Center for Biotechnology Information Gene Expression Omnibus public databases. The statistical analysis function of the CellPhoneDB software package was used to analyze the ligand-receptor relationships of the feature genes. The Metascape database was used to perform the functional annotation of notable gene sets. The randomForestSRC package and random survival forest algorithm were applied to screen feature genes. The CIBERSORT algorithm was used to analyze the RNA-sequencing data and infer the relative proportions of the 22 immune-infiltrating cell types. , small interfering RNAs were used to knockdown the expression of target genes in C918 cells. The migration capability and viability of these cells were then assessed by gap closure and Cell Counting Kit-8 assays. In total, 13 single-cell sample subtypes were clustered by t-distributed Stochastic Neighbor Embedding and annotated by the R package, SingleR, into 7 cell categories: Tissue stem cells, epithelial cells, fibroblasts, macrophages, natural killer cells, neurons and endothelial cells. The interactions in NK cells|Endothelial cells, Neurons|Endothelial cells, CD74_APP, and SPP1_PTGER4 were more significant than those in the other subsets. T-Box transcription factor 2, tropomyosin 4, plexin D1 (), G protein subunit α I2 () and SEC14-like lipid binding 1 were identified as the feature genes in UM. These marker genes were found to be significantly enriched in pathways such as vasculature development, focal adhesion and cell adhesion molecule binding. Significant correlations were observed between key genes and immune cells as well as immune factors. Relationships were also observed between the expression levels of the key genes and multiple disease-related genes. Knockdown of and expression led to significantly lower viability and gap closure rates of C918 cells. Therefore, the results of the present study uncovered cell communication between endothelial cells and other cell types, identified innovative key genes and provided potential targets of gene therapy in UM.

摘要

葡萄膜黑色素瘤(UM)是一种具有免疫治疗抗性的高转移性癌症。本研究旨在通过分析单细胞测序数据来鉴定UM中的新特征基因和分子机制。为此,从癌症基因组图谱和国家生物技术信息中心基因表达综合公共数据库下载数据。使用CellPhoneDB软件包的统计分析功能分析特征基因的配体-受体关系。使用Metascape数据库对显著基因集进行功能注释。应用randomForestSRC软件包和随机生存森林算法筛选特征基因。使用CIBERSORT算法分析RNA测序数据并推断22种免疫浸润细胞类型的相对比例。使用小干扰RNA敲低C918细胞中靶基因的表达。然后通过划痕愈合和细胞计数试剂盒-8检测评估这些细胞的迁移能力和活力。总共,通过t分布随机邻域嵌入对13个单细胞样本亚型进行聚类,并通过R包SingleR注释为7种细胞类别:组织干细胞、上皮细胞、成纤维细胞、巨噬细胞、自然杀伤细胞、神经元和内皮细胞。NK细胞|内皮细胞、神经元|内皮细胞、CD74_APP和SPP1_PTGER4中的相互作用比其他亚组中的更显著。T-Box转录因子2、原肌球蛋白4、丛状蛋白D1()、G蛋白亚基α I2()和SEC14样脂质结合蛋白1被鉴定为UM中的特征基因。发现这些标记基因在血管发育、粘着斑和细胞粘附分子结合等途径中显著富集。观察到关键基因与免疫细胞以及免疫因子之间存在显著相关性。还观察到关键基因的表达水平与多个疾病相关基因之间的关系。敲低和的表达导致C918细胞的活力和划痕愈合率显著降低。因此,本研究结果揭示了内皮细胞与其他细胞类型之间的细胞通讯,鉴定了创新的关键基因,并为UM提供了基因治疗的潜在靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a671/11369854/aab4a6aa61a3/ol-28-05-14636-g00.jpg

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