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:Tumor Antigen-Primed Dendritic Cell-Derived Exosome Synergizes with Colony Stimulating Factor-1 Receptor Inhibitor by Modulating the Tumor Microenvironment and Systemic Immunity.
Tumor Antigen-Primed Dendritic Cell-Derived Exosome Synergizes with Colony Stimulating Factor-1 Receptor Inhibitor by Modulating the Tumor Microenvironment and Systemic Immunity.
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树突状细胞来源的外泌体(Dex)克服了树突状细胞(DC)疫苗相关的缺点,如成本效益、稳定性和对全身微环境的敏感性。然而,在临床试验中,Dex因多种原因未能提供令人满意的结果,包括DC成熟不充分以及免疫抑制性肿瘤微环境(TME)。
因此,在成熟混合物存在下培养DC显示出MHC和共刺激分子的诱导表达。此外,通过CSF-1R抑制剂靶向集落刺激因子-1(CSF-1)/CSF-1受体(CSF-1R)信号通路可以耗竭负责免疫抑制性TME的肿瘤相关巨噬细胞(TAM)和髓源性抑制细胞(MDSC)。
因此,在本研究中,mDex TA是从在新型成熟混合物和肿瘤抗原存在下培养的骨髓来源DC中分离的。与从未成熟DC中分离的imDex TA相比,mDex TA显示出主要组织相容性复合体(MHC)和共刺激分子的表达升高,并发现能够在体外更有效地激活初始DC和T细胞。
此外,PLX-3397,一种CSF-1/CSF-1R的小分子抑制剂,被联合使用以增强mDex TA的抗肿瘤疗效。PLX-3397对骨髓来源巨噬细胞(BMDM)显示出剂量依赖性毒性。在B16-F10小鼠黑色素瘤模型中,我们发现与单独使用mDex TA治疗的小鼠相比,联合治疗通过增强TME中CD8 T细胞的浸润,延缓了肿瘤生长并改善了生存。mDex TA与PLX-3397联合使用时,通过将Th1/Th2向优势Th1群体转变以及耗竭TAM和MDSC来调节TME。有趣的是,当PLX-3397与mDex TA联合使用时,PLX-3397诱导的FoxP3表达减弱。联合治疗还在脾脏和淋巴结中诱导了有利的全身性抗肿瘤免疫。
总之,我们的发现为基于mDex TA的免疫疗法与PLX-3397之间的协同作用提供了见解,因为联合治疗克服了单药治疗的缺点,并为包括黑色素瘤在内的实体瘤治疗提供了一种治疗策略。
Dendritic cell-derived exosomes (Dex) have overcome the disadvantages associated with dendritic cell (DC) vaccines, such as cost effectiveness, stability, and sensitivity to the systemic microenvironment.
However, in clinical trials, Dex failed to provide satisfactory results because of many reasons, including inadequate maturation of DC as well as the immunosuppressive tumor microenvironment (TME). Hence, culturing DCs in the presence of a maturation cocktail showed an induced expression of MHCs and co-stimulatory molecules.
Additionally, targeting the colony stimulating factor-1 (CSF-1)/CSF-1 receptor (CSF-1R) signaling pathway by a CSF-1R inhibitor could deplete tumor-associated macrophages (TAMs) and myeloid-derived suppressor cells (MDSCs) which are responsible for immunosuppressive TME.
Hence, in this study, mDex TA were isolated from bone marrow-derived DC cultured in the presence of a novel maturation cocktail and tumor antigen. mDex TA showed elevated expression of major histocompatibility complexes (MHCs) and co-stimulatory molecules and was found capable of activating naïve DC and T cells in vitro more efficiently when compared to imDex TA isolated from immature DCs.
In addition, PLX-3397, a small molecule inhibitor of CSF-1/CSF-1R, was used in combination to enhance the antitumor efficacy of mDex TA . PLX-3397 showed dose-dependent toxicity against bone marrow-derived macrophages (BMDMs). In the B16-F10 murine melanoma model, we found that the combination treatment delayed tumor growth and improved survival compared to the mice treated with mDex TA alone by enhancing the CD8 T cells infiltration in TME.
mDex TA when combined with PLX-3397 modulated the TME by shifting the Th1/Th2 toward a dominant Th1 population and depleting the TAMs and MDSCs. Interestingly, PLX-3397-induced FoxP3 expression was diminished when it was used in combination with mDex TA . Combination treatment also induced favorable systemic antitumor immunity in the spleen and lymph node.
In conclusion, our findings provide insights into the synergy between mDex TA -based immunotherapy and PLX-3397 as the combination overcame the disadvantages associated with monotherapy and offer a therapeutic strategy for the treatment of solid tumors including melanoma.
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