靶向巨噬细胞的癌症治疗策略
Macrophage-directed therapeutic strategies in cancer.
肿瘤相关巨噬细胞(TAMs)是肿瘤微环境的主要组成部分,具有显著的功能可塑性,根据所处的微环境信号,既可表现为促进肿瘤进展的免疫抑制细胞,也可表现为支持抗肿瘤免疫的免疫刺激细胞。
英文原题:PD-L1 directed bispecific Vδ2-T cell engager combines lysis of PD-L1 expressing tumor cells with PD-1 immune checkpoint inhibition and modulation of the tumor immune microenvironment.
生成了一种PD-L1xVδ2 bsTCE,其作为PD-1/PD-L1免疫检查点抑制剂,增强Vγ9Vδ2-T细胞活化、浸润和肿瘤裂解,并将肿瘤微环境重塑为更促炎的状态。通过同时靶向表达PD-L1的肿瘤细胞和髓系细胞,它解决了当前疗法的关键挑战,从而提供了一种有前景的新型治疗策略。
尽管程序性死亡配体1(PD-L1)/程序性死亡1(PD-1)免疫检查点阻断在癌症治疗中取得了显著成功,但耐药性仍然是一个重大挑战。将免疫检查点阻断与效应T细胞直接靶向肿瘤细胞相结合,可能改善更广泛癌症患者群体的治疗结局。磷酸抗原反应性Vγ9Vδ2-T细胞是强效免疫细胞,在肿瘤免疫监视中发挥关键作用,并能协调下游免疫活动。在此,我们探讨了针对PD-L1的Vδ2双特异性T细胞衔接器(bsTCE)是否能够将PD-L1+肿瘤细胞的裂解与PD-L1免疫检查点阻断相结合。
PD-L1特异性单域抗体(VHH)被测试了与PD-L1的结合能力及其干扰PD-1结合和功能的能力。选择了一种PD-L1 VHH与Vδ2-T细胞受体特异性VHH融合(PD-L1xVδ2 bsTCE),并测试了其激活Vγ9Vδ2-T细胞和裂解黑色素瘤细胞系以及患者来源的肾细胞癌(RCC)和转移性黑色素瘤细胞的能力。这些患者来源的肿瘤悬液也被用于探索对CD4+和CD8+T细胞以及髓系细胞的影响。在三维肿瘤球体黑色素瘤模型中测试了Vγ9Vδ2-T细胞的浸润和肿瘤杀伤。
生成了一种 PD-L1xVδ2 bsTCE,并显示其可阻断 PD-1 结合,从而导致 PD-1 + 细胞从 PD-L1 介导的抑制中释放。PD-L1xVδ2 bsTCE 还介导了强烈的 Vγ9Vδ2-T 细胞激活、对 RCC 和黑色素瘤细胞系和/或患者来源肿瘤细胞的有效裂解,以及 Vγ9Vδ2-T 细胞向三维黑色素瘤球体模型中的浸润。值得注意的是,将 Vγ9Vδ2-T 细胞与患者来源肿瘤悬液的共培养物暴露于 PD-L1xVδ2 bsTCE 后,导致肿瘤浸润的 CD4 + 和 CD8 + T 细胞上激活标志物上调,并裂解 PD-L1 + 髓系细胞,同时髓系区室从巨噬细胞样细胞向表达共刺激分子的更成熟树突状细胞转变。
BACKGROUND: Despite the notable success of programmed death ligand 1 (PD-L1)/programmed death 1 (PD-1) immune checkpoint blockade in cancer, resistance remains a substantial challenge. Combining immune checkpoint blockade with direct targeting of effector T cells to tumor cells might improve outcome for a broader spectrum of patients with cancer. Phosphoantigen-responsive Vγ9Vδ2-T cells are potent immune cells that play a pivotal role in tumor immunosurveillance and can coordinate downstream immune activity. Here, we explored whether a Vδ2 bispecific T cell engager (bsTCE) directed against PD-L1 could combine lysis of PD-L1 + tumor cells with PD-L1 immune checkpoint blockade. METHODS: PD-L1 specific single domain antibodies (VHHs) were tested for binding to PD-L1 and their ability to interfere with PD-1 binding and function. One PD-L1 VHH was selected for fusion to a Vδ2-T cell receptor specific VHH (PD-L1xVδ2 bsTCE) and tested for its ability to activate Vγ9Vδ2-T cells and lyse melanoma cell lines, as well as patient-derived renal cell carcinoma (RCC) and metastatic melanoma cells. These patient-derived tumor suspensions were also used to explore effects on CD4 + and CD8 + T cells and myeloid cells. Infiltration of Vγ9Vδ2-T cells and tumor kill was tested in a three-dimensional tumor spheroid melanoma model. RESULTS: A PD-L1xVδ2 bsTCE was generated and shown to block PD-1 binding resulting in the release of PD-1 + cells from PD-L1 mediated inhibition. The PD-L1xVδ2 bsTCE also mediated robust Vγ9Vδ2-T cell activation, efficient lysis of RCC and melanoma cell lines and/or patient-derived tumor cells, and infiltration of Vγ9Vδ2-T cells into a three-dimensional melanoma spheroid model. Of interest, exposure of co-cultures of Vγ9Vδ2-T cells and patient-derived tumor suspensions to the PD-L1xVδ2 bsTCE resulted in upregulation of activation markers on tumor-infiltrated CD4 + and CD8 + T cells and lysis of PD-L1 + myeloid cells with a shift in the myeloid compartment from macrophage-like cells to more mature dendritic cells with costimulatory molecule expression. CONCLUSIONS: A PD-L1xVδ2 bsTCE was generated that acts as PD-1/PD-L1 immune checkpoint inhibitor, enhances Vγ9Vδ2-T cell activation, infiltration and tumor lysis and reshapes the tumor microenvironment towards a more proinflammatory state. By targeting both PD-L1 expressing tumor and myeloid cells, it addresses key challenges of current therapies and thereby offers a promising novel therapeutic strategy.
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