一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
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 cytokine-dominated immunosuppressive class in squamous cell lung carcinoma with implications for immunotherapy resistance.
Identification of a cytokine-dominated immunosuppressive class in squamous cell lung carcinoma with implications for immunotherapy resistance.
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我们引入了一种新的 LUSC 免疫抑制类别,其表达高水平 PD-L1,但显示出对 ICB 治疗的潜在耐药性。对 LUSC 中免疫抑制性肿瘤微环境的全面表征,为进一步探索耐药机制和优化免疫治疗策略提供了新的见解。
免疫检查点阻断(ICB)疗法已经彻底改变了肺鳞状细胞癌(LUSC)的治疗。然而,相当一部分肿瘤PD-L1高表达的患者仍然对免疫检查点抑制剂耐药。为了理解潜在的耐药机制,迫切需要表征免疫抑制性肿瘤微环境并识别可预测患者耐药的生物标志物。
我们的研究回顾性分析了624例LUSC样本的RNA测序数据。我们通过无监督聚类分析了肿瘤微环境中的基因表达模式。我们将这些表达模式与一组T细胞耗竭特征、免疫抑制细胞、临床特征及免疫治疗反应进行了相关性分析。内部和外部测试数据集用于验证耗竭免疫状态的存在。
约28%至36%的LUSC患者被发现表现出T细胞耗竭特征的显著富集、高比例的免疫抑制细胞(M2巨噬细胞和CD4 Treg)、9种抑制性检查点(CTLA4、PDCD1、LAG3、BTLA、TIGIT、HAVCR2、IDO1、SIGLEC7和VISTA)的共同上调,以及抗炎细胞因子(如TGFβ和CCL18)表达的增强。我们将这一免疫抑制患者群体定义为耗竭免疫类(EIC)。尽管EIC显示出高密度的TIL(肿瘤浸润淋巴细胞),但这些与不良预后相关。EIC的PD-L1表达相对升高,但显示出对ICB治疗的潜在耐药性。用于EIC预测的167个基因特征在具有ICB治疗耐药的黑色素瘤患者中显著富集。EIC的特征是较低的染色体改变负荷和独特的甲基化模式。我们开发了一个网络应用程序(http://lilab2.sysu.edu.cn/tex & http://liwzlab.cn/tex),供研究人员基于我们的多组学分析数据进一步研究ICB耐药的潜在关联。
Immune checkpoint blockade (ICB) therapy has revolutionized the treatment of lung squamous cell carcinoma (LUSC). However, a significant proportion of patients with high tumour PD-L1 expression remain resistant to immune checkpoint inhibitors. To understand the underlying resistance mechanisms, characterization of the immunosuppressive tumour microenvironment and identification of biomarkers to predict resistance in patients are urgently needed.
Our study retrospectively analysed RNA sequencing data of 624 LUSC samples. We analysed gene expression patterns from tumour microenvironment by unsupervised clustering. We correlated the expression patterns with a set of T cell exhaustion signatures, immunosuppressive cells, clinical characteristics, and immunotherapeutic responses. Internal and external testing datasets were used to validate the presence of exhausted immune status.
Approximately 28 to 36% of LUSC patients were found to exhibit significant enrichments of T cell exhaustion signatures, high fraction of immunosuppressive cells (M2 macrophage and CD4 Treg), co-upregulation of 9 inhibitory checkpoints (CTLA4, PDCD1, LAG3, BTLA, TIGIT, HAVCR2, IDO1, SIGLEC7, and VISTA), and enhanced expression of anti-inflammatory cytokines (e.g. TGFβ and CCL18). We defined this immunosuppressive group of patients as exhausted immune class (EIC). Although EIC showed a high density of tumour-infiltrating lymphocytes, these were associated with poor prognosis. EIC had relatively elevated PD-L1 expression, but showed potential resistance to ICB therapy. The signature of 167 genes for EIC prediction was significantly enriched in melanoma patients with ICB therapy resistance. EIC was characterized by a lower chromosomal alteration burden and a unique methylation pattern. We developed a web application ( http://lilab2.sysu.edu.cn/tex & http://liwzlab.cn/tex ) for researchers to further investigate potential association of ICB resistance based on our multi-omics analysis data.
We introduced a novel LUSC immunosuppressive class which expressed high PD-L1 but showed potential resistance to ICB therapy. This comprehensive characterization of immunosuppressive tumour microenvironment in LUSC provided new insights for further exploration of resistance mechanisms and optimization of immunotherapy strategies.
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