RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Identification of Hepatocellular Carcinoma Subtypes Based on Global Gene Expression Profiling to Predict the Prognosis and Potential Therapeutic Drugs.
Identification of Hepatocellular Carcinoma Subtypes Based on Global Gene Expression Profiling to Predict the Prognosis and Potential Therapeutic Drugs.
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肝细胞癌(HCC)是一种高度异质性的肿瘤,区分其亚型对诊断、治疗和预后具有重要价值。
采用无监督聚类分析对HCC亚型进行分类。使用LASSO、SVM和logistic回归识别亚型特征基因。使用Cox回归识别生存相关基因,并通过qPCR和基因干扰验证其表达和功能。使用GO、KEGG、GSVA和GSEA确定富集的信号通路。使用ESTIMATE和CIBERSORT计算基质评分、肿瘤纯度和免疫细胞浸润。采用TIDE预测患者对免疫治疗的反应。最后,使用oncoPredict算法分析药物敏感性。
识别出两个具有不同基因表达谱的HCC亚型,其中亚型S1表现出显著更短的生存时间。构建了亚型评分公式和列线图,两者均显示出优异的预测性能。COL11A1和ACTL8被确定为特征基因中的生存相关基因,且COL11A1的下调可抑制HepG2细胞的侵袭和迁移。亚型S1的特征是胶原和细胞外基质相关通路上调,以及外源物代谢过程和脂肪酸降解相关通路下调。亚型S1表现出更高的基质评分、免疫评分和ESTIMATE评分以及巨噬细胞M0和浆细胞的浸润,同时肿瘤纯度更低,NK细胞(静息/活化)和静息肥大细胞的浸润更低。亚型S2更可能从免疫治疗中获益。亚型S1对BMS-754807、JQ1和阿昔替尼更敏感,而亚型S2对SB505124、Pevonedistat和他莫昔芬更敏感。
HCC患者可根据其基因表达谱分为两种亚型,这两种亚型在信号通路、免疫微环境和药物敏感性方面存在差异。
Background: Hepatocellular carcinoma (HCC) is a highly heterogeneous tumor, and distinguishing its subtypes holds significant value for diagnosis, treatment, and the prognosis. Methods: Unsupervised clustering analysis was conducted to classify HCC subtypes. Subtype signature genes were identified using LASSO, SVM, and logistic regression.
Survival-related genes were identified using Cox regression, and their expression and function were validated via qPCR and gene interference. GO, KEGG, GSVA, and GSEA were used to determine enriched signaling pathways. ESTIMATE and CIBERSORT were used to calculate the stromal score, tumor purity, and immune cell infiltration. TIDE was employed to predict the patient response to immunotherapy.
Finally, drug sensitivity was analyzed using the oncoPredict algorithm. Results: Two HCC subtypes with different gene expression profiles were identified, where subtype S1 exhibited a significantly shorter survival time. A subtype scoring formula and a nomogram were constructed, both of which showed an excellent predictive performance. COL11A1 and ACTL8 were identified as survival-related genes among the signature genes, and the downregulation of COL11A1 could suppress the invasion and migration of HepG2 cells. Subtype S1 was characterized by the upregulation of pathways related to collagen and the extracellular matrix, as well as downregulation associated with the xenobiotic metabolic process and fatty acid degradation.
Subtype S1 showed higher stromal scores, immune scores, and ESTIMATE scores and infiltration of macrophages M0 and plasma cells, as well as lower tumor purity and infiltration of NK cells (resting/activated) and resting mast cells. Subtype S2 was more likely to benefit from immunotherapy.
Subtype S1 appeared to be more sensitive to BMS-754807, JQ1, and Axitinib, while subtype S2 was more sensitive to SB505124, Pevonedistat, and Tamoxifen. Conclusions: HCC patients can be classified into two subtypes based on their gene expression profiles, which exhibit distinctions in terms of signaling pathways, the immune microenvironment, and drug sensitivity.
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