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新型融合超因子 IL-24S/IL-15 增强脑癌免疫治疗

英文原题:Novel fusion superkine, IL-24S/IL-15, enhances immunotherapy of brain cancer.

PubMed 2025/06/22(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

研究概要

使用FSK(由IL-24S与IL-15融合而成)进行治疗,可促进GBM细胞杀伤,并通过招募和激活免疫细胞重塑TME,这支持了开发安全有效的癌症免疫治疗融合蛋白以及在脑内选择性递送用于GBM治疗的可行性。

研究思路结论见上方概要

胶质母细胞瘤(GBM)是一种快速生长、侵袭性的脑肿瘤,目前缺乏有效疗法,预后极差。GBM 中肿瘤微环境(TME)的免疫抑制性质阻碍了有效根除肿瘤的免疫疗法的发展。这种不利的 TME 可以通过给予免疫激活性细胞因子联合诱导肿瘤细胞死亡的药物来调节。为了实现这些目标,我们试图利用增强型“Superkine”版本的黑色素瘤分化相关基因-7/白细胞介素-24,IL-24S 的癌症选择性细胞死亡诱导特性,以及 IL-15 的免疫激活性特性,来调节 GBM 的 TME,以最大化治疗效果。

一种融合“Superkine”(FSK)由IL-24S与IL-15连接而成,在GBM免疫活性小鼠肿瘤模型中,通过5型腺病毒(Ad.5)转导后评估了其抗肿瘤效果。为了系统性靶向递送Ad.5 FSK,我们采用了一种创新方法,即聚焦超声(FUS)联合微泡(MBs),FUS-DMB(FUS加双MB),以安全地将FSK工程化的Ad.5构建体运输到小鼠大脑中,从而克服系统性病毒递送的局限性和血脑屏障的选择性。

在GBM癌症模型中,FSK比单独的“Superkine”或细胞因子刺激产生更高的肿瘤消退并增强体内生存。诱导了GBM细胞凋亡,以及增加了T细胞、树突状细胞、巨噬细胞和自然杀伤(NK)细胞的肿瘤浸润。FSK的抗肿瘤诱导活性是诱导癌症特异性生长抑制和诱导凋亡(IL-24S)以及对免疫细胞(IL-15和IL-24S)多种效应的结果。抗体中和表明,FSK抗癌活性的主要免疫介质是通过招募和激活NK细胞。全局细胞因子分析表明治疗期间炎症细胞因子没有变化,表明该策略将是安全的。

展开英文摘要原文

BACKGROUND: Glioblastoma (GBM) is a rapidly growing, aggressive brain tumor with very poor prognosis without currently effective therapies. The immunosuppressive nature of the tumor microenvironment (TME) in GBM hinders the development of effective tumor-eradicating immunotherapies. This hostile TME can be modulated by administering immune-activating cytokines in combination with agents inducing tumor cell death. To achieve these objectives, we sought to harness the cancer-selective cell death-inducing properties of an enhanced "Superkine" version of melanoma differentiation associated gene-7/interleukin-24, IL-24S , and the immune-activating properties of IL-15 to modulate the TME of GBM to maximize therapeutic outcomes. METHODS: A fusion "Superkine" ( FSK ) comprised of IL-24S linked to IL-15 was generated, and antitumor effects were evaluated when transduced by a type 5 adenovirus (Ad.5) in a GBM immunocompetent mouse tumor model. To target the delivery of Ad.5 FSK systemically, we employed an innovative approach of focused ultrasound (FUS) paired with microbubbles (MBs), FUS-DMB (FUS plus double MB), to safely transport the FSK engineered Ad.5 construct into mouse brain to overcome limitations of systemic viral delivery and selectivity of the blood-brain barrier. RESULTS: The FSK stimulated higher tumor regression and enhanced survival in vivo than the individual "Superkine" or cytokine in GBM cancer models. Apoptosis of GBM cells was induced, as well as increased tumor infiltration of T cells, dendritic cells, macrophages and natural killer (NK) cells. The antitumor-inducing activity of FSK is a consequence of induction of cancer-specific growth suppression and induction of apoptosis (IL-24S) as well as diverse effects on immune cells (IL-15 and IL-24S). Antibody neutralization indicates that a primary immune mediator of anticancer activity of FSK is through recruitment and activation of NK cells. Global cytokine analyses indicated no changes in inflammatory cytokines during therapy, suggesting that this strategy will be safe. CONCLUSION: In summary, treatment with an FSK , consisting of a fusion of IL-24S to IL-15 , promotes GBM cell killing and remodeling of the TME by recruiting and activating immune cells supporting the feasibility of developing safe and effective cancer immunotherapeutic fusion proteins and selective delivery in the brain for the therapy of GBM.

论文信息

作者
Kumar A、Bhoopathi P、Mannangatti P、Maji S、Pradhan AK、Madan E、Klibanov AL、Gogna R
第一作者单位
VCU Institute of Molecular Medicine, Virginia Commonwealth University, School of Medicine, Richmond, Virginia, USA.United States
通讯作者单位
VCU Institute of Molecular Medicine, Virginia Commonwealth University, School of Medicine, Richmond, Virginia, USA paul.fisher@vcuhealth.org swadesh.das@vcuhealth.org.United States
期刊
Journal for immunotherapy of cancer2025 Jun 22
原文标识
PubMed 40550563 · DOI 10.1136/jitc-2024-011198