γδ T 细胞调节小细胞肺癌中的抗肿瘤免疫
γδ T cells modulate anti-tumor immunity in small cell lung cancer.
我们的发现表明,活化的γδ T细胞可能是SCLC治疗的有价值靶点。
英文原题:BTN3A1 expressed in cervical cancer cells promotes Vγ9Vδ2 T cells exhaustion through upregulating transcription factors NR4A2/3 downstream of TCR signaling.
通过结合γδ TCR,肿瘤细胞上由IFN-γ诱导表达的BTN3A1可促进Vδ2 T细胞上调转录因子NR4A2/3的表达,从而影响其在肿瘤微环境(TME)中的激活及耗竭相关分子的表达。因此,靶向BTN3A1可能克服TME对CC中Vδ2 T细胞的免疫抑制作用。
临床试验表明,基于Vγ9Vδ2 T细胞(Vδ2 T细胞)的免疫疗法对包括宫颈癌(CC)在内的多种癌症是安全且耐受性良好的,但其整体治疗效果仍然有限。因此,探索Vδ2 T细胞癌症免疫疗法疗效欠佳的机制对于实现其成功的临床转化至关重要。
采用流式细胞术分析CC患者和CC细胞系来源异种移植(CDX)小鼠的肿瘤样本,以检查肿瘤浸润Vδ2 T细胞的耗竭表型。利用癌症基因组图谱(TCGA)数据库的数据,分析CC中BTN3A1表达与Vδ2 T细胞之间的相互关系及其与患者预后的相关性。通过慢病毒转导构建BTN3A1敲除(KO)和过表达(OE)的CC细胞系,然后将其与扩增的Vδ2 T细胞共培养,随后使用流式细胞术检测Vδ2 T细胞的功能。通过RNA-seq分析鉴定与BTN3A1诱导的Vδ2 T细胞耗竭相关的通路和转录因子(TFs)以及影响BTN3A1表达的因素,并通过流式细胞术、Western Blot和基因操作进行验证。
在CC患者和CDX小鼠中,肿瘤浸润性Vδ2 T细胞均表现出耗竭表型。CC中表达的BTN3A1高度增强耗竭标志物,同时减少Vδ2 T细胞中效应分子的分泌。阻断TCR或敲低核受体亚家族4 A组(NR4A)2/3可逆转BTN3A1诱导的Vδ2 T细胞耗竭。另一方面,Vδ2 T细胞分泌的IFN-γ促进了BTN3A1和PD-L1的表达。
BACKGROUND: Clinical trials have shown that immunotherapy based on Vγ9Vδ2 T cells (Vδ2 T cells) is safe and well-tolerated for various cancers including cervical cancer (CC), but its overall treatment efficacy remains limited. Therefore, exploring the mechanisms underlying the suboptimal efficacy of Vδ2 T cell-based cancer immunotherapy is crucial for enabling its successful clinical translation. METHODS: Tumor samples from CC patients and CC cell line-derived xenograft (CDX) mice were analyzed using flow cytometry to examine the exhausted phenotype of tumor-infiltrating Vδ2 T cells. The interrelationship between BTN3A1 expression and Vδ2 T cells in CC, along with their correlation with patient prognosis, was analyzed using data from The Cancer Genome Atlas (TCGA) database. CC cell lines with BTN3A1 knockout (KO) and overexpression (OE) were constructed through lentivirus transduction, which were then co-cultured with expanded Vδ2 T cells, followed by detecting the function of Vδ2 T cells using flow cytometry. The pathways and transcription factors (TFs) related to BTN3A1-induced Vδ2 T cells exhaustion and the factors affecting BTN3A1 expression were identified by RNA-seq analysis, which was confirmed by flow cytometry, Western Blot, and gene manipulation. RESULTS: Tumor-infiltrating Vδ2 T cells exhibited an exhausted phenotype in both CC patients and CDX mice. BTN3A1 expressed in CC is highly enhancing exhaustion markers, while reducing the secretion of effector molecules in Vδ2 T cells. Blocking TCR or knocking down nuclear receptor subfamily 4 group A (NR4A) 2/3 can reverse BTN3A1-induced exhaustion in Vδ2 T cells. On the other hand, IFN-γ secreted by Vδ2 T cells promoted the expression of BTN3A1 and PD-L1. CONCLUSIONS: Through binding γδ TCRs, BTN3A1 expressed on tumor cells, which is induced by IFN-γ, can promote Vδ2 T cells to upregulate the expression of TFs NR4A2/3, thereby affecting their activation and expression of exhaustion-related molecules in the tumor microenvironment (TME). Therefore, targeting BTN3A1 might overcome the immunosuppressive effect of the TME on Vδ2 T cells in CC.
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