CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
我们的工作确立了CD81作为连接放射抵抗与免疫逃逸的关键桥梁,其通过维持GBM中CD274的丰度发挥作用,并突显CD81作为优化放射免疫治疗的有前景的治疗靶点。
英文原题:Bioinformatic Analysis of C1GALT1 in Cancer: Insights Into Prognosis, Metastasis and Therapeutic Potential.
我们的泛癌分析表明,C1GALT1在不同肿瘤类型中差异表达并受表观遗传调控,可能参与肿瘤增殖、转移和免疫调节。尽管这些发现支持C1GALT1作为潜在的生物标志物和治疗靶点,但仍需进一步的体外和体内研究来验证其机制作用和临床实用性。
本研究评估了C1GALT1在广泛人类癌症中的表达、调控及临床相关性。C1GALT1是黏蛋白型O-糖基化的关键酶。异常糖基化是恶性肿瘤已确立的标志,促进肿瘤生长、免疫逃逸和转移。C1GALT1,也称为核心1 β1,3-半乳糖基转移酶或T-合酶,催化核心1 O-聚糖结构的形成,并需要分子伴侣Cosmc来实现正确折叠和活性。虽然先前的研究已将C1GALT1与癌症进展相关联,但探索其基因表达模式、表观遗传调控、免疫相互作用和预后意义的系统性泛癌分析尚未完全阐明。
本研究旨在利用TCGA数据集,通过计算学方法探讨C1GALT1在多种癌症中的表达、调控及临床相关性,以评估其作为生物标志物和治疗靶点的潜力。
我们利用癌症基因组图谱(TCGA)的公开数据集对C1GALT1进行了全面的生物信息学分析。通过转录组学网络平台,进行了基因表达、DNA甲基化和生存分析,以及C1GALT1与增殖或转移相关基因、Cosmc表达和免疫细胞浸润(特别是调节性T细胞[Tregs]和髓源性抑制细胞[MDSCs])之间的相关性分析。
C1GALT1 表达在胃肠道和泌尿生殖系统肿瘤中较正常组织显著上调,而在甲状腺癌、乳腺癌和前列腺癌中下调。其表达升高与肺癌、膀胱癌、肝癌和胶质瘤/胶质母细胞瘤的总生存期缩短相关。DNA 甲基化分析显示,在多种癌症类型中甲基化与表达水平呈负相关。C1GALT1 表达与 Cosmc、增殖标志物(MKI67、PCNA、MCM 家族、PLK1)以及若干转移相关基因呈正相关。免疫谱分析揭示了情境依赖性相关性:在胃肠道肿瘤中,C1GALT1 与 Tregs 和 MDSCs 呈负相关,但在肺癌、乳腺癌和前列腺癌中呈正相关。
BACKGROUND: This study evaluates the expression, regulation, and clinical relevance of C1GALT1, a key enzyme in mucin-type O-glycosylation, across a broad spectrum of human cancers. Aberrant glycosylation is a well-established hallmark of malignancy, contributing to tumor growth, immune evasion, and metastasis. C1GALT1, also known as core 1 β1,3-galactosyltransferase or T-synthase, catalyzes the formation of the core 1 O-glycan structure and requires the chaperone Cosmc for proper folding and activity. While previous studies have implicated C1GALT1 in cancer progression, a systematic pan-cancer analysis exploring its gene expression patterns, epigenetic regulation, immune interactions, and prognostic significance has not been fully elucidated. AIMS: This study aims to computationally investigate C1GALT1 expression, regulation, and clinical relevance across multiple cancers using TCGA datasets to evaluate its potential as a biomarker and therapeutic target. METHODS: We conducted a comprehensive bioinformatic analysis of C1GALT1 using publicly available datasets from The Cancer Genome Atlas (TCGA). Gene expression, DNA methylation, and survival analyses were performed, along with correlation analyses between C1GALT1 and proliferation- or metastasis-related genes, Cosmc expression, and immune cell infiltration (specifically, regulatory T-cells [Tregs] and myeloid-derived suppressor cells [MDSCs]), using transcriptomic web platforms. RESULTS: C1GALT1 expression was significantly upregulated in gastrointestinal and genitourinary cancers compared to normal tissues, while downregulated in thyroid, breast, and prostate cancers. Elevated expression correlated with reduced overall survival in lung, bladder, liver, and glioma/glioblastoma. DNA methylation analysis showed an inverse correlation between methylation and expression levels in multiple cancer types. C1GALT1 expression positively correlated with Cosmc, proliferation markers (MKI67, PCNA, MCM family, PLK1), and several metastasis-associated genes. Immune profiling revealed context-dependent correlations: C1GALT1 negatively correlated with Tregs and MDSCs in gastrointestinal cancers but positively in lung, breast, and prostate cancers. CONCLUSION: Our pan-cancer analysis suggests that C1GALT1 is differentially expressed and epigenetically regulated across tumor types and may contribute to tumor proliferation, metastasis, and immune modulation. While these findings support C1GALT1 as a potential biomarker and therapeutic target, further in vitro and in vivo studies are necessary to validate its mechanistic roles and clinical utility.
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