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Multifunctional Nanoregulator Reshapes Immune Microenvironment and Enhances Immune Memory for Tumor Immunotherapy

机译:多功能纳米螺杆素重塑免疫微环境,增强肿瘤免疫疗法的免疫记忆

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Hypoxia leads to up‐regulation of PD‐L1 and decreases T lymphocyte infiltration, thus boosting immunotherapeutic resistance of tumors. Moreover, tumor‐infiltrating myeloid cells such as myeloid‐derived suppressor cells (MDSCs) correlate with potent immune suppressive activity and resistance to the immune checkpoint blocking (ICB) in tumor sites. Here, a multifunctional nanoregulator incorporating MnO 2 particles and small molecular IPI549 is developed, which can reshape the tumor immune microenvironment (TIME) to unleash the immune system. The intravenously administered nanoregulator effectively accumulates in tumor sites to alleviate hypoxia via oxygen‐generating reduction of MnO 2 and to inhibit PI3Kγ on MDSCs via IPI549 release in the tumor microenvironment (TME), which results in concurrent downregulation of PD‐L1 expression, polarization of tumor associated macrophages (TAMs) toward pro‐inflammatory M1‐like phenotype (tumor‐suppressive), enhanced infiltration of CD4 + helper T lymphocytes (Th cells), and cytotoxic CD8 + T lymphocytes (Tc cells), and suppressed infiltration of regulatory T lymphocytes (T reg cells) for effective tumor immunotherapy. Furthermore, the local generation of Mn 2+ in TME allows tumor‐specific magnetic resonance imaging (MRI). More excitingly, the nanoregulator‐reshaped TIME is effectively reserved due to the synergistic effect of hypoxia alleviation and MDSC PI3Kγ inhibition, leading to remarkable post‐medication inhibition of tumor re‐growth and metastasis in an animal study.
机译:缺氧导致PD-L1的上调并降低T淋巴细胞浸润,从而提高肿瘤的免疫治疗抗性。此外,肿瘤渗透髓样细胞,例如骨髓衍生的抑制细胞(MDSC)与有效的免疫抑制活性与肿瘤位点中的免疫检查点(ICB)的抗性相关。这里,开发了一种掺入MNO 2颗粒和小分子IPI549的多功能纳米调脉管,其可以重塑肿瘤免疫微环境(时间)以释放免疫系统。静脉内施用的纳米调势器通过氧化氧化物的还原通过IPI549释放在肿瘤微环境(TME)中的释放,有效地积聚在肿瘤部位中以减轻缺氧,并通过IPI549释放,这导致PD-L1表达的同时下调,偏振肿瘤相关的巨噬细胞(TAMS)朝向促炎M1样表型(肿瘤抑制),增强CD4 +辅助T淋巴细胞(TH细胞)的浸润,细胞毒性CD8 + T淋巴细胞(TC细胞),并抑制了调节性的渗透淋巴细胞(T reg细胞)用于有效肿瘤免疫疗法。此外,TME中的局部产生Mn 2+允许肿瘤特异性磁共振成像(MRI)。更令人兴奋的是,由于缺氧缓解和MDSCPI3Kγ抑制的协同效应,纳米调节器重塑时间有效地保留,导致肿瘤再生和动物研究中的转移的显着后药物抑制。

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