The single‐cell evolution trajectory presented different hypoxia heterogeneity to reveal the carcinogenesis of genes in clear cell renal cell carcinoma: Based on multiple omics and real experimental verification

生物 肾透明细胞癌 癌症研究 细胞 流式细胞术 细胞周期 细胞生长 癌变 细胞毒性T细胞 CD8型 肾细胞癌 病理 癌症 免疫学 体外 医学 遗传学 免疫系统
作者
Baoluo Ma,Linghui Qin,Zhou Sun,Jingyu Wang,Lisa Tran,Jing Zhang,Fangdie Ye,Yan Liu,Min Chen
出处
期刊:Environmental Toxicology [Wiley]
卷期号:39 (2): 869-881 被引量:9
标识
DOI:10.1002/tox.24009
摘要

Abstract Introduction Clear cell renal cell carcinoma (ccRCC) is the most prevalent and aggressive subtype of renal cell carcinoma, originating from renal tubular epithelial cells in the kidney. Hypoxia proves to be a feature commonly observed in solid tumors, leading to increased resistance to treatment and tumor progression. Methods scRNA‐seq data were procured from GSE159115 data set. We utilized UMAP and NMF algorithm for clustering and dimensionality reduction. The FindAllMarkers function was used to compare various groups and identify potential hypoxia marker genes. A series of in vitro experiments, including CFA, flow cytometry targeting cell cycle, CCK‐8, and EDU, was applied to investigate how ANGPTL4 regulated the ccRCC progression. Two cell lines of ccRCC cells, 786‐O and Caki, were used for si‐ANGPTL4 transfection. Results We annotated a total of a total of 6 cell clusters, namely ccRCC malignant cells, T cells, endothelial cells, myeloid cells, smooth muscle cells, and B cells. We observed higher levels of hypoxia‐score in the ccRCC malignant cells, while lowest hypoxia‐score in T and B cells. We detected multiple hypoxia‐related subclusters of TME cells in ccRCC, among which S100A4 CD8+ T cells and nonhypoxia CD8+ T cells were found with a marked elevation of T cell inhibitory gene score. We identified that ANGPTL4+ endothelial cells might function as an integrative role in tumor angiogenesis. Multiple TME subclusters showed high potency in stratification of the prognosis of ccRCC patients. Moreover, by a series of in vitro experiment, we found ANGPTL4 regulated the ccRCC cell proliferation, probably through ERK/P38 pathway. Conclusion We discerned multiple hypoxia‐related subclusters of TME cells in ccRCC, which displayed distinct functional features and great potency in predicting prognosis of ccRCC patients. We identified the role of ANGPTL4 in regulating ccRCC proliferation via ERK/p38 pathway.
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