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Potent STING activation stimulates immunogenic cell death to enhance antitumor immunity in neuroblastoma

机译:有效的刺痛活化刺激免疫原性细胞死亡,以增强神经母细胞瘤的抗肿瘤免疫力

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Background Neuroblastoma (NB) is a childhood cancer for which new treatment options are needed. The success of immune checkpoint blockade in the treatment of adult solid tumors has prompted the exploration of immunotherapy in NB; however, clinical evidence indicates that the vast majority of NB patients do not respond to single-agent checkpoint inhibitors. This motivates a need for therapeutic strategies to increase NB tumor immunogenicity. The goal of this study was to evaluate a new immunotherapeutic strategy for NB based on potent activation of the stimulator of interferon genes (STING) pathway. Methods To promote STING activation in NB cells and tumors, we utilized STING-activating nanoparticles (STING-NPs) that are designed to mediate efficient cytosolic delivery of the endogenous STING ligand, 2’3’-cGAMP. We investigated tumor-intrinsic responses to STING activation in both MYCN-amplified and non-amplified NB cell lines, evaluating effects on STING signaling, apoptosis, and the induction of immunogenic cell death. The effects of intratumoral administration of STING-NPs on CD8 T cell infiltration, tumor growth, and response to response to PD-L1 checkpoint blockade were evaluated in syngeneic models of MYCN-amplified and non-amplified NB. Results The efficient cytosolic delivery of 2’3’-cGAMP enabled by STING-NPs triggered tumor-intrinsic STING signaling effects in both MYCN-amplified and non-amplified NB cell lines, resulting in increased expression of interferon-stimulated genes and pro-inflammatory cytokines as well as NB cell death at concentrations 2000-fold to 10000-fold lower than free 2’3’-cGAMP. STING-mediated cell death in NB was associated with release or expression of several danger associated molecular patterns that are hallmarks of immunogenic cell death, which was further validated via cell-based vaccination and tumor challenge studies. Intratumoral administration of STING-NPs enhanced STING activation relative to free 2’3’-cGAMP in NB tumor models, converting poorly immunogenic tumors into tumoricidal and T cell-inflamed microenvironments and resulting in inhibition of tumor growth, increased survival, and induction of immunological memory that protected against tumor re-challenge. In a model of MYCN-amplified NB, STING-NPs generated an abscopal response that inhibited distal tumor growth and improved response to PD-L1 immune checkpoint blockade. Conclusions We have demonstrated that activation of the STING pathway, here enabled by a nanomedicine approach, stimulates immunogenic cell death and remodels the tumor immune microenvironment to inhibit NB tumor growth and improve responses to immune checkpoint blockade, providing a multifaceted immunotherapeutic approach with potential to enhance immunotherapy outcomes in NB.
机译:背景技术神经母细胞瘤(NB)是一种儿童癌,需要进行新的治疗选择。免疫检查点阻断治疗成人实体瘤的成功促使对Nb的免疫疗法探索;然而,临床证据表明绝大多数Nb患者不响应单药检查点抑制剂。这激励了需要增加Nb肿瘤免疫原性的治疗策略。本研究的目的是基于干扰素基因刺激器(StING)途径的有效活化来评估Nb的新免疫治疗策略。促进Nb细胞和肿瘤中尖锐活化的方法,我们利用了尖锐活化的纳米颗粒(Sting-nps),该纳米颗粒(Sting-nps)旨在介导内源性刺痛配体,2'3'-cgamp的有效胞质递送。我们研究了对MyCN扩增和非扩增的Nb细胞系中的刺痛激活的肿瘤内在反应,评价对刺绣信号,细胞凋亡和免疫原性细胞死亡的诱导的影响。在MYCN - 扩增和非扩增Nb的同类模型中,评估了在MyCN - 扩增和非扩增NB的同胞模型中评估了静脉内NPS对CD8 T细胞浸润,肿瘤生长和对响应PD-L1检查点延迟的影响。结果刺痛的NPS触发了2'3'-cgamp的有效细胞溶质递送,触发了MYCN扩增和未扩增的Nb细胞系中的肿瘤内在术效应,导致干扰素刺激基因和促炎的表达增加细胞因子以及Nb细胞死亡浓度为2000倍至10000倍,低于Free 2'3'-Cgamp。 Nb中的刺绣细胞死亡与几种危险相关分子模式的释放或表达有关,其是免疫原性细胞死亡的标志,其通过基于细胞的疫苗接种和肿瘤攻击研究进一步验证。脑内施用术术术语相对于Nb肿瘤模型中的Free 2'3'-Cgamp增强刺痛活化,将差不多的免疫原性肿瘤转化为肿瘤和T细胞发炎的微环境,导致抑制肿瘤生长,增加存活率和免疫学诱导保护免受肿瘤重新挑战的记忆。在MyCN扩增Nb的模型中,Sting-NPS产生了抑制远端肿瘤生长和改善对PD-L1免疫检查点延迟的响应的横向响应。结论我们已经证明了垂直途径的激活,通过纳米医生方法使得免疫原性细胞死亡刺激肿瘤免疫微环境,以抑制Nb肿瘤生长,改善对免疫检查点延迟的反应,提供了一种巨大的免疫治疗方法,提供了增强的多方面免疫治疗方法免疫疗法在NB中的结果。

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