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:B2M gene expression shapes the immune landscape of lung adenocarcinoma and determines the response to immunotherapy.
B2M gene expression shapes the immune landscape of lung adenocarcinoma and determines the response to immunotherapy.
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B2M基因缺失与肿瘤免疫逃逸和免疫治疗耐药相关。然而,B2M基因的遗传改变较为罕见。我们对大型非小细胞肺癌(NSCLC)患者队列的突变和转录谱进行了整合分析,发现B2M的表观遗传下调是常见的。B2M低表达肿瘤表现出抑制性免疫微环境,其特征是各种谱系免疫细胞浸润减少;在B2M高表达肿瘤中,存在更多的T细胞和NK 细胞,但其活性受到免疫检查点分子的约束,表明免疫逃逸机制的多样性。高水平的B2M mRNA,而非PD-L1,与PD-1为基础免疫治疗的增强应答相关,提示其在实体瘤免疫治疗应答预测中的价值。
值得注意的是,高肿瘤突变负荷(TMB)与低B2M表达相关,这可能解释了TMB在某些情况下预测价值不佳的原因。在同系小鼠模型中,肿瘤细胞中B2M的基因敲除导致对PD-1为基础免疫治疗的耐药,B2M敲低也削弱了治疗效果。
此外,在肿瘤模型中强制表达B2M改善了对免疫治疗的应答,表明B2M水平对治疗结局有显著影响。最后,我们提供了关于转录因子和KRAS突变在B2M表达及抗癌免疫应答中作用的见解。
总之,B2M的遗传和表观遗传调控从根本上塑造了NSCLC免疫微环境,并可能决定对检查点阻断为基础免疫治疗的应答。
Loss of the B2M gene is associated with tumour immune escape and resistance to immunotherapy.
However, genetic alterations of the B2M gene are rare. We performed an integrative analysis of the mutational and transcriptional profiles of large cohorts of non-small-cell lung cancer (NSCLC) patients and found that epigenetic downregulation of B2M is common.
B2M-low tumours exhibit a suppressive immune microenvironment characterized by reduced infiltration of immune cells of various lineages; in B2M-high tumours, more T and natural killer cells are present, but their activities are constrained by immune checkpoint molecules, indicating the diverse mechanisms of immune evasion. High levels of B2M mRNA, but not PD-L1, are correlated with an enhanced response to PD-1-based immunotherapy, suggesting its value for immunotherapy response prediction in solid tumours.
Notably, a high tumour mutation burden (TMB) is associated with low B2M expression, which may explain the poor predictive value of the TMB in some situations. In syngeneic mouse models, genetic ablation of B2M in tumour cells causes resistance to PD-1-based immunotherapy, and B2M knockdown also diminishes the therapeutic efficacy.
Moreover, forced expression of B2M in tumour models improves the response to immunotherapy, suggesting that B2M levels have significant impacts on treatment outcomes.
Finally, we provide insight into the roles of transcription factors and KRAS mutations in B2M expression and the anticancer immune response.
In conclusion, genetic and epigenetic regulation of B2M fundamentally shapes the NSCLC immune microenvironment and may determine the response to checkpoint blockade-based immunotherapy.
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