通过靶向肿瘤相关巨噬细胞的嵌合受体工程化溶瘤病毒重振内源性抗肿瘤免疫
Rejuvenating endogenous antitumor immunity via a chimeric receptor-engineered oncolytic virus targeting tumor-associated macrophages.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Immunotherapy combining tumor and endothelium cell lysis with immune enforcement by recombinant MIP-3α Newcastle disease virus in a vessel-targeting liposome enhances antitumor immunity.
Immunotherapy combining tumor and endothelium cell lysis with immune enforcement by recombinant MIP-3α Newcastle disease virus in a vessel-targeting liposome enhances antitumor immunity.
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在本研究中,iNDV3α-LP 具有多种功能,如肿瘤和血管溶解、MIP-3α 免疫治疗,以及与表达 αvβ3 的肿瘤及其新生血管结合。iNDV3α-LP 治疗显著抑制了肿瘤血管生成,并逆转了肿瘤免疫抑制微环境。这些发现为进一步临床研究溶瘤免疫治疗的联合策略(如本研究中的 iNDV3α-LP 制剂)提供了强有力的依据。
几种溶瘤免疫治疗药物已获批临床使用,但多数溶瘤药物的单药治疗疗效有限。通过重组和纳米技术将多种治疗策略结合,以工程化多功能溶瘤病毒用于溶瘤免疫治疗,是一种有前景的策略。
构建了一种靶向内皮细胞的 iRGD 脂质体,包裹表达树突状细胞(DC)趋化因子 MIP-3α 的重组新城疫病毒(NDV)(iNDV3α-LP),并构建了三种对照脂质体。通过 western blotting 或 ELISA 检测 MIP-3α、HMGB1、IgG 和 ATP。通过 Transwell 小室检测 DC 的趋化性。通过流式细胞术分析免疫细胞的表型。在 B16 和 4T1 荷瘤小鼠中研究抗肿瘤效果。采用免疫荧光和免疫组织化学观察脂质体的定位、分子表达和血管生成。利用肿瘤体积、肿瘤血管生成和TIL(肿瘤浸润淋巴细胞)的数据计算协同指数。
与NDV-LP相比,iNDV3α-LP和NDV3α-LP处理在B16和4T1肿瘤细胞及人脐静脉内皮细胞(HUVECs)中诱导了更强的病毒复制和细胞裂解,其中iNDV3α-LP处理后的应答最佳。经iNDV3α-LP处理的B16和4T1细胞产生了更多损伤相关分子模式分子,包括分泌型HMGB1、ATP和钙网蛋白。此外,iNDV3α-LP特异性结合表达αvβ3的4T1细胞和HUVECs以及肿瘤新生血管。在iNDV3α-LP处理的B16荷瘤和4T1荷瘤小鼠中,肿瘤生长被显著抑制,生存期延长。一项机制研究表明,iNDV3α-LP处理启动了最强的肿瘤特异性细胞和体液免疫应答。此外,iNDV3α-LP处理可显著抑制B16荷瘤和4T1荷瘤小鼠中的肿瘤血管生成,并逆转肿瘤免疫抑制微环境。
Several agents for oncolytic immunotherapy have been approved for clinical use, but monotherapy is modest for most oncolytic agents. The combination of several therapeutic strategies through recombinant and nanotechnology to engineer multifunctional oncolytic viruses for oncolytic immunotherapy is a promising strategy.
An endothelium-targeting iRGD-liposome encapsulating a recombinant Newcastle disease virus (NDV), which expresses the dendritic cell (DC) chemokine MIP-3α (iNDV3α-LP), and three control liposomes were constructed. MIP-3α, HMGB1, IgG, and ATP were detected by western blotting or ELISA. The chemotaxis of DCs was examined by Transwell chambers. The phenotypes of the immune cells were analyzed by flow cytometry. The antitumor efficiency was investigated in B16 and 4T1 tumor-bearing mice. Immunofluorescence and immunohistochemistry were used to observe the localization of liposomes, molecular expression and angiogenesis. Synergistic index was calculated using the data of tumor volume, tumor angiogenesis and tumor-infiltrating lymphocytes.
Compared with NDV-LP, treatment with iNDV3α-LP and NDV3α-LP induced stronger virus replication and cell lysis in B16 and 4T1 tumor cells and human umbilical vein endothelial cells (HUVECs) with the best response observed following iNDV3α-LP treatment. B16 and 4T1 cells treated with iNDV3α-LP produced more damage-associated molecular pattern molecules, including secreted HMGB1, ATP, and calreticulin. Moreover, iNDV3α-LP specifically bound to αvβ3-expressing 4T1 cells and HUVECs and to tumor neovasculature. Tumor growth was significantly suppressed, and survival was longer in iNDV3α-LP-treated B16-bearing and 4T1-bearing mice. A mechanism study showed that iNDV3α-LP treatment initiated the strongest tumor-specific cellular and humoral immune response. Moreover, iNDV3α-LP treatment could significantly suppress tumor angiogenesis and reverse the tumor immune suppressive microenvironment in both B16-bearing and 4T1-bearing mice.
In this study, iNDV3α-LP had several functions, such as tumor and vessel lysis, MIP-3α immunotherapy, and binding to αvβ3-expressing tumor and its neovasculature. iNDV3α-LP treatment significantly suppressed tumor angiogenesis and reversed the tumor immunosuppressive microenvironment. These findings offer a strong rationale for further clinical investigation into a combination strategy for oncolytic immunotherapy, such as the formulation iNDV3α-LP in this study.
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