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:Synergistic efficacy of simultaneous anti-TGF-β/VEGF bispecific antibody and PD-1 blockade in cancer therapy.
Y332D可同时阻断TGF-β和VEGF信号通路。与单药治疗相比,Y332D联合PD-1阻断通过改善免疫微环境发挥更优的抗肿瘤效果。
近年来,针对程序性细胞死亡1(PD-1)及其配体(PD-L1)的治疗性抗体在多种肿瘤中发挥了强大的抗癌作用。然而,仅阻断PD-1/PD-L1轴不足以恢复正常的免疫应答。其他抗肿瘤免疫的负性调节因子,如TGF-β和VEGFA,也参与肿瘤细胞的免疫逃逸并诱导免疫治疗耐药。
我们基于Nano-YBODY™技术平台开发了一种新型抗TGF-β/VEGF双特异性抗体Y332D。采用CCK-8、流式细胞术、SBE4荧光素酶报告基因实验、western blotting和transwell实验检测抗TGF-β部分的生物学活性。采用NFAT荧光素酶报告基因实验、发光细胞活力实验和管形成实验检测抗VEGF部分的生物学活性。在H22、EMT-6、4T1和AKT/Ras驱动的鼠肝细胞癌肿瘤模型中评估了Y332D单用或联合PD-1阻断的体内抗癌疗效。采用免疫荧光染色、流式细胞术、RNA-seq和定量RT-PCR分析肿瘤微环境的变化。
Y332D 能够维持对 TGF-β 和 VEGFA 的特异性结合亲和力。Y332D 几乎完全抵消了 TGF-β 和 VEGFA 的体外生物学功能,包括免疫抑制、激活的 TGF-β 信号传导、上皮-间质转化(EMT)、激活的 VEGF/VEGFR 信号传导、HUVEC 增殖和管形成。体内实验数据表明,Y332D 在抑制肿瘤生长和转移方面比抗 TGF-β 和抗 VEGF 单药治疗更有效。在联合治疗中,Y332D 联合 PD-1 阻断表现出最强效且持久的抗癌效果。在机制上,Y332D 联合 PD-1 阻断上调了TIL(肿瘤浸润淋巴细胞)的密度和功能,并发挥了重新激活的抗肿瘤免疫。
BACKGROUND: Recently, therapeutic antibodies against programmed cell death 1 (PD-1) and its ligand (PD-L1) have exerted potent anticancer effect in a variety of tumors. However, blocking the PD-1/PD-L1 axis alone is not sufficient to restore normal immune response. Other negative regulators of antitumor immunity, like TGF-β and VEGFA, are also involved in immune escape of tumor cells and induce immunotherapy resistance. METHODS: We developed a novel anti-TGF-β/VEGF bispecific antibody Y332D based on the Nano-YBODY™ technology platform. The CCK-8, flow cytometry, SBE4 luciferase reporter assay, western blotting and transwell assays were used to measure the biological activities of the anti-TGF-β moiety. The NFAT luciferase reporter assay, luminescent cell viability assay and tube formation assay were used to measure the biological activities of the anti-VEGF moiety. The in vivo anticancer efficacy of Y332D alone or in combination with PD-1 blockade was evaluated in H22, EMT-6, 4T1, and AKT/Ras-driven murine hepatocellular carcinoma tumor models. Immunofluorescent staining, flow cytometry, RNA-seq and quantitative RT-PCR were adopted to analyze the alterations in the tumor microenvironment. RESULTS: Y332D could maintain specific binding affinities for TGF-β and VEGFA. Y332D almost entirely counteracted the in vitro biological functions of TGF-β and VEGFA, including immunosuppression, activated TGF-β signaling, epithelial-mesenchymal transition (EMT), activated VEGF/VEGFR signaling, HUVEC proliferation and tube formation. The in vivo experiment data demonstrated that Y332D was more effective in inhibiting tumor growth and metastasis than anti-TGF-β and anti-VEGF monotherapies. In combination therapies, Y332D plus PD-1 blockade exhibited the most potent and durable anticancer effect. Mechanistically, Y332D plus PD-1 blockade upregulated the density and function of tumor-infiltrating lymphocytes and exerted reinvigorated antitumor immunity. CONCLUSION: Y332D could simultaneously block TGF-β and VEGF signalings. In comparison with the monotherapies, Y332D combined with PD-1 blockade exerts superior antitumor effect through improving immune microenvironment.
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