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 a Novel Nomogram to Predict Progression Based on the Circadian Clock and Insights Into the Tumor Immune Microenvironment in Prostate Cancer.
Identification of a Novel Nomogram to Predict Progression Based on the Circadian Clock and Insights Into the Tumor Immune Microenvironment in Prostate Cancer.
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我们从 CIC 的新视角识别出十个与预后相关的基因,可作为 PCA 患者风险分层的有前景的工具。
目前,昼夜节律对前列腺癌(PCA)发生和进展的影响尚未明确。在本研究中,我们首次建立了一种基于昼夜节律钟(CIC)相关基因的新型列线图来预测PCA进展,并为肿瘤免疫微环境提供了见解。
使用TCGA和Genecards数据库识别潜在的候选基因。应用Lasso和Cox回归分析构建CIC相关基因特征。通过适当的统计方法和GSCALite数据库评估肿瘤免疫微环境。
识别出十个基因用于构建基因特征,以预测PCA患者的进展概率。高风险评分患者比低风险评分患者更易进展(风险比(HR):4.11,95% CI:2.66-6.37;风险评分截断值:1.194)。CLOCK、PER(1、2、3)、CRY2、NPAS2、RORA和ARNTL与抑癌基因相关性较高,而CSNK1D和CSNK1E与癌基因关系更密切。总体而言,风险评分较高的患者PER1、PER2和CRY2的mRNA表达较低,CSNK1E表达较高。一般来说,肿瘤样本的巨噬细胞、T细胞和髓系树突状细胞浸润水平高于正常样本。此外,肿瘤样本的免疫评分较高,基质评分较低,微环境评分低于正常样本。值得注意的是,风险评分较高的患者与中性粒细胞、NK细胞、1型辅助性T细胞和肥大细胞水平显著降低相关。风险评分与肿瘤突变负荷(TMB)评分呈正相关,TMB评分较高的患者比TMB评分较低的患者更易进展。同样,我们在微卫星不稳定性(MSI)评分与风险评分的相关性以及MSI评分对无进展间期的影响方面也观察到了类似结果。我们观察到抑癌基因与PD-L1、PD-L2、TIGIT和SIGLEC15呈显著正相关,尤其是PD-L2。
Currently, the impact of the circadian rhythm on the tumorigenesis and progression of prostate cancer (PCA) has yet to be understood. In this study, we first established a novel nomogram to predict PCA progression based on circadian clock (CIC)-related genes and provided insights into the tumor immune microenvironment.
The TCGA and Genecards databases were used to identify potential candidate genes. Lasso and Cox regression analyses were applied to develop a CIC-related gene signature. The tumor immune microenvironment was evaluated through appropriate statistical methods and the GSCALite database.
Ten genes were identified to construct a gene signature to predict progression probability for patients with PCA. Patients with high-risk scores were more prone to progress than those with low-risk scores (hazard ratio (HR): 4.11, 95% CI: 2.66-6.37; risk score cut-off: 1.194). CLOCK, PER (1, 2, 3), CRY2, NPAS2, RORA, and ARNTL showed a higher correlation with anti-oncogenes, while CSNK1D and CSNK1E presented a greater relationship with oncogenes. Overall, patients with higher risk scores showed lower mRNA expression of PER1, PER2, and CRY2 and higher expression of CSNK1E. In general, tumor samples presented higher infiltration levels of macrophages, T cells and myeloid dendritic cells than normal samples. In addition, tumor samples had higher immune scores, lower stroma scores and lower microenvironment scores than normal samples. Notably, patients with higher risk scores were associated with significantly lower levels of neutrophils, NK cells, T helper type 1, and mast cells. There was a positive correlation between the risk score and the tumor mutation burden (TMB) score, and patients with higher TMB scores were more prone to progress than those with lower TMB scores. Likewise, we observed similar results regarding the correlation between the microsatellite instability (MSI) score and the risk score and the impact of the MSI score on the progression-free interval. We observed that anti-oncogenes presented a significantly positive correlation with PD-L1, PD-L2, TIGIT and SIGLEC15, especially PD-L2.
We identified ten prognosis-related genes as a promising tool for risk stratification in PCA patients from the fresh perspective of CIC.
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