CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Systemic high-dose dexamethasone treatment may modulate the efficacy of intratumoral viral oncolytic immunotherapy in glioblastoma models.
Systemic high-dose dexamethasone treatment may modulate the efficacy of intratumoral viral oncolytic immunotherapy in glioblastoma models.
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我们的数据表明,同时使用高剂量地塞米松可能会损害溶瘤病毒免疫疗法对 GBM 的疗效,支持了地塞米松的使用应在症状控制和对治疗结果的影响之间取得平衡的观点。
肿瘤内病毒溶瘤免疫治疗是治疗多种实体癌的一种有前景的新方法。CAN-2409 是一种复制缺陷型腺病毒,可将单纯疱疹病毒胸苷激酶递送至癌细胞,导致更昔洛韦或伐昔洛韦在局部转化为毒性代谢物。这引发高度免疫原性的细胞死亡,随后针对多种癌症新抗原产生局部免疫反应,进而针对注射肿瘤和未注射的远处转移灶产生全身性免疫反应。CAN-2409 治疗在胶质母细胞瘤(GBM)的临床研究中已显示出有前景的结果。GBM 患者通常给予皮质类固醇地塞米松以控制水肿。既往工作提示,在 GBM 患者中,同时使用地塞米松治疗可能对接受免疫检查点抑制剂治疗的患者产生负面影响。然而,地塞米松对 CAN-2409 治疗疗效的影响尚未被探索。
体外实验包括细胞活力检测和神经球T细胞杀伤实验。使用同基因小鼠GBM模型检测地塞米松对CAN-2409体内效应;根据Kaplan-Meier法评估生存期;采用质谱流式细胞术(CyTOF——飞行时间流式细胞术)进行TIL(肿瘤浸润淋巴细胞)分析。数据采用一般线性模型分析,继以单因素方差分析及Dunnett多重比较检验、Kruskal-Wallis检验、Dunn多重比较检验或微阵列显著性分析。
在GBM小鼠模型中,我们发现高剂量地塞米松联合CAN-2409相比单用CAN-2409治疗,中位生存期显著缩短(29.0天 vs 39.5天)。对肿瘤浸润免疫细胞的CyTOF分析显示,CAN-2409治疗可诱导强效免疫刺激。使用高剂量地塞米松后,这些效应减弱。功能性免疫细胞表征提示,地塞米松治疗后免疫细胞耗竭增加并呈现促肿瘤特征。
Intratumoral viral oncolytic immunotherapy is a promising new approach for the treatment of a variety of solid cancers. CAN-2409 is a replication-deficient adenovirus that delivers herpes simplex virus thymidine kinase to cancer cells, resulting in local conversion of ganciclovir or valacyclovir into a toxic metabolite. This leads to highly immunogenic cell death, followed by a local immune response against a variety of cancer neoantigens and, next, a systemic immune response against the injected tumor and uninjected distant metastases. CAN-2409 treatment has shown promising results in clinical studies in glioblastoma (GBM). Patients with GBM are usually given the corticosteroid dexamethasone to manage edema. Previous work has suggested that concurrent dexamethasone therapy may have a negative effect in patients treated with immune checkpoint inhibitors in patients with GBM. However, the effects of dexamethasone on the efficacy of CAN-2409 treatment have not been explored.
In vitro experiments included cell viability and neurosphere T-cell killing assays. Effects of dexamethasone on CAN-2409 in vivo were examined using a syngeneic murine GBM model; survival was assessed according to Kaplan-Meier; analyses of tumor-infiltrating lymphocytes were performed with mass cytometry (CyTOF - cytometry by time-of-flight). Data were analyzed using a general linear model, with one-way analysis of variance followed by Dunnett's multiple comparison test, Kruskal-Wallis test, Dunn's multiple comparison test or statistical significance analysis of microarrays.
In a mouse model of GBM, we found that high doses of dexamethasone combined with CAN-2409 led to significantly reduced median survival (29.0 days) compared with CAN-2409 treatment alone (39.5 days). CyTOF analyses of tumor-infiltrating immune cells demonstrated potent immune stimulation induced by CAN-2409 treatment. These effects were diminished when high-dose dexamethasone was used. Functional immune cell characterization suggested increased immune cell exhaustion and tumor promoting profiles after dexamethasone treatment.
Our data suggest that concurrent high-dose dexamethasone treatment may impair the efficacy of oncolytic viral immunotherapy of GBM, supporting the notion that dexamethasone use should be balanced between symptom control and impact on the therapeutic outcome.
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