免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Co-delivery of IL-12/IL-15/IL-18 engineered DC vaccines with anti-IL-10R and nanoconjugated methotrexate in melanoma.
Co-delivery of IL-12/IL-15/IL-18 engineered DC vaccines with anti-IL-10R and nanoconjugated methotrexate in melanoma.
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在黑色素瘤细胞形成的免疫抑制微环境中,IL-10可促进肿瘤生长并损害抗原呈递细胞尤其是树突状细胞的功能。对抗IL-10作用的主要策略之一是给予针对其受体的抗体。肿瘤微环境还可通过细胞因子和/或细胞疫苗(如过表达IL-12、IL-15/IL-15Rα和IL-18的修饰树突状细胞)进行调节。这些细胞疫苗作为细胞因子来源,并通过向淋巴细胞呈递肿瘤抗原来刺激免疫系统。此外,树突状细胞疫苗的疗效可通过甲氨蝶呤与羟乙基淀粉的纳米偶联物(HES-MTX)实现,该偶联物可降低IL-10活性并清除免疫抑制细胞。
进行了两项实验:一项聚焦于免疫治疗,另一项聚焦于化学免疫治疗。免疫治疗包括两次细胞疫苗给药,在此之前进行抗IL-10R抗体治疗。化学免疫治疗还额外包括一次HES-MTX纳米偶联物给药。通过肿瘤生长抑制测量以及肿瘤组织中淋系和髓系细胞群分析,评估了两种疗法的有效性。此外,分析了再刺激脾细胞的亚群,并评估了干扰素γ(IFN-γ)、IL-10和IL-4的产生水平。
携带促炎细胞因子的修饰树突状细胞被用于免疫治疗和化学免疫治疗实验。所开发的疗法有效抑制了肿瘤生长,但肿瘤生长速率取决于所用疫苗的类型。在免疫治疗前加入纳米偶联物主要减少了抑制性细胞群体。在两种情况下观察到最有效的治疗:一是采用包含双组分疫苗 DC/IL-12/TAg + DC/IL-18/TAg 的免疫治疗(TGI 62.3%),二是给予 HES-MTX 纳米偶联物后采用三组分疫苗——DC/IL-12/TAg + DC/IL-15/IL-15Rα/TAg + DC/IL-18/TAg 进行免疫治疗(TGI 59.1%)。
In an immunosuppressive microenvironment created by melanoma cells, interleukin (IL)-10 can promote tumor growth and impair the function of antigen-presenting cells, particularly dendritic cells. One of the leading strategies to counteract IL-10's action is the administration of antibodies against its receptor. The tumor microenvironment can also be modulated by cytokines and/or cellular vaccines such as modified dendritic cells that overproduce IL-12, IL-15/IL-15Rα, and IL-18. These cellular vaccines serve as a source of cytokines and stimulate the immune system by presenting tumor antigens to lymphocytes. Furthermore, the efficacy of the dendritic cell vaccine can be achieved through the nanoconjugate of methotrexate and hydroxyethyl starch (HES-MTX), which reduces the activity of IL-10 and eliminates immunosuppressive cells.
Two experiments were conducted: one focusing on immunotherapy and the other on chemoimmunotherapy. The immunotherapy involved two administrations of cellular vaccines, preceded by anti-IL-10R antibody treatment. The chemoimmunotherapy additionally included a single administration of the HES-MTX nanoconjugate. The effectiveness of both therapies was evaluated through tumor growth inhibition measurements and analysis of lymphoid and myeloid cell populations in tumor tissues. Additionally, subpopulations of restimulated splenocytes were analyzed, and the production levels of interferon gamma (IFN-γ), IL-10, and IL-4 were evaluated.
Modified dendritic cells, which carry proinflammatory cytokines, were used in immuno- and chemoimmunotherapeutic experiments. The developed therapies effectively inhibited tumor growth, but the rate of tumor growth depended on the type of vaccine used. Incorporating the nanoconjugate prior to immunological treatment primarily reduced the population of suppressor cells. The most effective treatment was observed in two cases: as a result of immunotherapy including the use of a two-component vaccine DC/IL-12/TAg + DC/IL-18/TAg (TGI 62.3%) or after administration of HES-MTX nanoconjugate followed by immunotherapy with three-component vaccine - DC/IL-12/TAg + DC/IL-15/IL-15Rα/TAg + DC/IL-18/TAg (TGI 59.1%).
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