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:FLT3L-secreting cDC1 in situ vaccination enhances antitumor immunity and synergizes with PD-1 blockade in murine non-small cell lung cancer.
FLT3L-cDC1 ISV是一种合理的细胞因子增强型细胞免疫疗法,旨在克服TME内的免疫抑制并恢复DC功能,从而促进肿瘤特异性适应性免疫应答并增强对ICB的响应性。
非小细胞肺癌(NSCLC)常通过抗原呈递缺陷和抑制性肿瘤微环境(TME)逃避免疫监视,从而限制免疫检查点阻断(ICB)的疗效。传统1型树突状细胞(cDC1s)对于启动抗肿瘤CD8+ T细胞应答至关重要;然而,其在NSCLC中的丰度和功能常减少,导致不良预后和免疫治疗耐药。我们假设,使用经基因修饰以分泌FMS样酪氨酸激酶3配体(FLT3L)的cDC1s进行原位疫苗接种(ISV),将增强TME内cDC1功能,促进抗肿瘤免疫,并改善对ICB的应答。
采用具有不同肿瘤突变负荷的同源小鼠NSCLC模型(Kras G12D/P53-/-/Lkb1-/-;Kras G12D/P53-/-;以及Kras G12D),连同MC38模型,评估FLT3L-cDC1 ISV的治疗疗效。使用流式细胞术和多重免疫荧光评估免疫应答机制。为评估转化相关性,在The Cancer Genome Atlas(TCGA)NSCLC数据集中分析免疫和三级淋巴结构(TLS)特征,并使用重新训练的xCell2框架对TLS特征进行优化,该框架整合了精心整理的TLS和高内皮微静脉(HEV)显微切割数据集。
FLT3L-cDC1 ISV 在多种 NSCLC 模型中重塑了 TME,诱导 T 淋巴细胞浸润并扩增细胞溶解性 CD8 + T 细胞。FLT3L-cDC1 ISV 与 TME 内具有初级滤泡样特征的未成熟 TLS 形成增加相关。TCGA 分析显示,FLT3L 表达与活化 DC、T 细胞和 B 细胞特征以及 HEV 富集的 TLS 相关程序相关。与 PD-1 阻断联合进一步增强了 FLT3L-cDC1 ISV 的抗肿瘤免疫,导致强烈的局部和全身性 T 细胞活化,以及 TME 内活化 CCR7 + PD-L1 + cDC1 和干细胞样 TCF1 + PD-1 + CD8 + 祖细胞的扩增。在 LKB1 缺陷型 NSCLC 模型中,FLT3L-cDC1 ISV 联合 PD-1 阻断在 85% 的肿瘤中诱导了完全且持久的消退,导致持久的全身性肿瘤特异性免疫记忆,与有效的肿瘤疫苗接种一致。
BACKGROUND: Non-small cell lung cancer (NSCLC) frequently evades immune surveillance through defective antigen presentation and a suppressive tumor microenvironment (TME), limiting the efficacy of immune checkpoint blockade (ICB). Conventional type 1 dendritic cells (cDC1s) are essential for initiating antitumor CD8 + T-cell responses; however, their abundance and function are often diminished in NSCLC, contributing to poor outcomes and resistance to immunotherapy. We hypothesized that in situ vaccination (ISV) using gene-modified cDC1s engineered to secrete FMS-like tyrosine kinase 3 ligand (FLT3L) would enhance cDC1 function within the TME, promote antitumor immunity, and improve responses to ICB. METHODS: Syngeneic murine models of NSCLC ( Kras G12D /P53 -/- /Lkb1 -/- ; Kras G12D /P53 -/- ; and Kras G12D ) with varying tumor mutational burden, along with the MC38 model, were used to assess the therapeutic efficacy of FLT3L-cDC1 ISV. Flow cytometry and multiplex immunofluorescence were used to evaluate immune mechanisms of response. To assess translational relevance, immune and tertiary lymphoid structure (TLS) signatures were analyzed in The Cancer Genome Atlas (TCGA) NSCLC datasets, with TLS signatures refined using a retrained xCell2 framework incorporating curated TLS and high endothelial venule (HEV) microdissection datasets. RESULTS: FLT3L-cDC1 ISV remodeled the TME across multiple NSCLC models, inducing T lymphocyte infiltration and expanding cytolytic CD8 + T cells. FLT3L-cDC1 ISV was associated with increased formation of immature TLS with primary follicle-like features within the TME. TCGA analyses revealed that FLT3L expression correlates with activated DC, T cell, and B cell signatures, as well as HEV-enriched TLS-associated programs. Combination with PD-1 blockade further enhanced the antitumor immunity of FLT3L-cDC1 ISV, resulting in robust local and systemic T-cell activation and the expansion of activated CCR7 + PD-L1 + cDC1s and stem-like TCF1 + PD-1 + CD8 + progenitors within the TME. In an LKB1-deficient NSCLC model, FLT3L-cDC1 ISV plus PD-1 blockade induced complete and durable regression in 85% of tumors, leading to long-lasting systemic tumor-specific immune memory, consistent with effective tumor vaccination. CONCLUSIONS: FLT3L-cDC1 ISV represents a rational cytokine-enhanced cellular immunotherapy designed to overcome immunosuppression and restore DC function within the TME, thereby promoting tumor-specific adaptive immune responses and enhancing responsiveness to ICB.
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