一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Blockades of effector T cell senescence and exhaustion synergistically enhance antitumor immunity and immunotherapy.
Blockades of effector T cell senescence and exhaustion synergistically enhance antitumor immunity and immunotherapy.
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这些研究证明了一个新概念:同时靶向效应 T 细胞衰老和耗竭是一种有效策略,能够协同增强癌症免疫治疗。
目前的免疫疗法在癌症中的成功率仍然有限。现已认识到,肿瘤微环境(TME)中T细胞的功能状态是有效抗肿瘤免疫和免疫治疗的关键决定因素。除耗竭外,肿瘤浸润T细胞(TILs)中的细胞衰老最近已被确定为多种恶性肿瘤诱导的一种重要T细胞功能障碍状态。因此,更好地理解TME中T细胞衰老的分子机制,并开发预防效应T细胞衰老的新策略,对于癌症免疫治疗而言迫在眉睫。
评估了小鼠肺癌、乳腺癌和黑色素瘤肿瘤模型TME中的衰老T细胞群体。此外,通过实时PCR、流式细胞术和组织化学染色等多种标志物和检测方法,测定了小鼠肿瘤和调节性T(Treg)细胞在体外诱导的T细胞衰老。使用药理学抑制剂和基因敲除小鼠模型的功能丧失策略,以鉴定参与T细胞衰老的潜在分子和通路。此外,进行了黑色素瘤小鼠肿瘤免疫治疗模型,以探索通过预防肿瘤特异性T细胞衰老联合抗程序性死亡配体1(anti-PD-L1)检查点阻断疗法增强抗肿瘤免疫的协同疗效。
我们报道,小鼠恶性肿瘤细胞和Treg细胞均可诱导应答性T细胞衰老,这与人类Treg细胞和肿瘤细胞中所示相似。在肺癌、乳腺癌和黑色素瘤肿瘤模型的TME中也存在积累的衰老T细胞。诱导共济失调毛细血管扩张突变蛋白(ATM)相关的DNA损伤是小鼠肿瘤细胞和Treg细胞诱导T细胞衰老的原因,这也受丝裂原活化蛋白激酶(MAPK)信号传导的调控。此外,在体外阻断T细胞中ATM相关的DNA损伤和/或MAPK信号通路可以防止肿瘤细胞和Treg细胞介导的T细胞衰老,并在过继转移T细胞治疗黑色素瘤模型的体内增强抗肿瘤免疫和免疫治疗。重要的是,通过抑制ATM和/或MAPK信号传导来预防肿瘤特异性T细胞衰老,并与抗PD-L1检查点阻断联合,可以在体内协同增强抗肿瘤免疫和免疫治疗。
Current immunotherapies still have limited successful rates among cancers. It is now recognized that T cell functional state in the tumor microenvironment (TME) is a key determinant for effective antitumor immunity and immunotherapy. In addition to exhaustion, cellular senescence in tumor-infiltrating T cells (TILs) has recently been identified as an important T cell dysfunctional state induced by various malignant tumors. Therefore, a better understanding of the molecular mechanism responsible for T cell senescence in the TME and development of novel strategies to prevent effector T cell senescence are urgently needed for cancer immunotherapy.
Senescent T cell populations in the TMEs in mouse lung cancer, breast cancer, and melanoma tumor models were evaluated. Furthermore, T cell senescence induced by mouse tumor and regulatory T (Treg) cells in vitro was determined with multiple markers and assays, including real-time PCR, flow cytometry, and histochemistry staining. Loss-of-function strategies with pharmacological inhibitors and the knockout mouse model were used to identify the potential molecules and pathways involved in T cell senescence. In addition, melanoma mouse tumor immunotherapy models were performed to explore the synergistical efficacy of antitumor immunity via prevention of tumor-specific T cell senescence combined with anti-programmed death-ligand 1 (anti-PD-L1) checkpoint blockade therapy.
We report that both mouse malignant tumor cells and Treg cells can induce responder T cell senescence, similar as shown in human Treg and tumor cells. Accumulated senescent T cells also exist in the TME in tumor models of lung cancer, breast cancer and melanoma. Induction of ataxia-telangiectasia mutated protein (ATM)-associated DNA damage is the cause for T cell senescence induced by both mouse tumor cells and Treg cells, which is also regulated by mitogen-activated protein kinase (MAPK) signaling. Furthermore, blockages of ATM-associated DNA damage and/or MAPK signaling pathways in T cells can prevent T cell senescence mediated by tumor cells and Treg cells in vitro and enhance antitumor immunity and immunotherapy in vivo in adoptive transfer T cell therapy melanoma models. Importantly, prevention of tumor-specific T cell senescence via ATM and/or MAPK signaling inhibition combined with anti-PD-L1 checkpoint blockade can synergistically enhance antitumor immunity and immunotherapy in vivo.
These studies prove the novel concept that targeting both effector T cell senescence and exhaustion is an effective strategy and can synergistically enhance cancer immunotherapy.
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