免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Can Immune Checkpoint Modulation Redefine Ocular Immunotherapy? Emerging Mechanisms, Challenges, and Translational Opportunities-A Comprehensive Review.
Can Immune Checkpoint Modulation Redefine Ocular Immunotherapy? Emerging Mechanisms, Challenges, and Translational Opportunities-A Comprehensive Review.
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免疫检查点抑制剂已经彻底改变了癌症免疫治疗,其应用目前正扩展到多种疾病,包括葡萄膜黑色素瘤、自身免疫性葡萄膜炎和表面鳞状肿瘤等常见医学问题。这些病例中独特的免疫学挑战源于眼部的免疫豁免特性,其采用的免疫逃逸机制往往导致诊断时疾病已处于晚期。免疫检查点领域的最新突破已鉴定出关键调控分子,如 PD-1、CTLA-4、TIM-3、LAG-3 和 CEACAM1,它们在调节眼部免疫反应中起关键作用。使用新型免疫治疗策略阻断这些通路为治疗眼部及炎症性眼病提供了新的机会。T 细胞耗竭(Tex)是眼部免疫治疗中的一个重大障碍,由于长期抗原暴露而导致免疫功能障碍。对抗 Tex 的策略,包括将 PD-1 抑制剂与 OX40 和 CD137 等共刺激激动剂联合使用的组合疗法,已在临床前小鼠模型中显示出前景。
此外,靶向 TIM-3 并联合 PD-1 的双重阻断已被发现可增强 T 细胞反应。靶向多条通路的整合方法可能在以免疫失调为特征的眼部疾病中产生更好的治疗结果。
然而,在优化眼部疾病的免疫检查点治疗方面仍存在若干挑战。未来研究应优先关注双重目标:(1)开发促进 IL-10/TGF-β 的疗法以减轻免疫相关不良事件(如视网膜血管炎),以及(2)验证 LAG-3 + TIL(肿瘤浸润淋巴细胞)作为预测葡萄膜黑色素瘤免疫检查点抑制剂反应的生物标志物。探索检查点抑制剂的有效组合、确定其最佳使用时机以及建立更好的患者选择标准至关重要。随着免疫检查点治疗研究的进展,它们有潜力改变眼部疾病的管理,为既往选择有限的患者提供创新的治疗选择。
Immune checkpoint inhibitors have revolutionized cancer immunotherapy, and their application is now expanding to various conditions, including prevalent medical issues such as uveal melanoma, autoimmune uveitis, and surface squamous neoplasms. The unique immunological challenges in these cases arise from the immune-privileged nature of the eye, which employs immune evasion mechanisms that often lead to an advanced disease at diagnosis. Recent breakthroughs in immune checkpoints have identified critical regulatory molecules, such as PD-1, CTLA-4, TIM-3, LAG-3, and CEACAM1, which are pivotal in modulating ocular immune responses.
The use of novel immunotherapeutic strategies to block these pathways presents new opportunities to treat ocular and inflammatory eye disorders. T-cell exhaustion (Tex) is a significant hurdle in ocular immunotherapy that results in immune dysfunction because of prolonged antigen exposure. Strategies to counteract Tex, including combination therapies that pair PD-1 inhibitors with co-stimulatory agonists such as OX40 and CD137, have shown promise in preclinical murine models.
Additionally, dual blockade targeting TIM-3 alongside PD-1 has been found to enhance T-cell responses. An integrated approach targeting multiple pathways may yield improved therapeutic outcomes in eye diseases characterized by immune dysregulation.
However, several challenges remain in optimizing immune checkpoint therapies for ocular conditions. Future research should prioritize dual objectives: (1) developing IL-10/TGF-β-promoting therapies to mitigate immune-related adverse events (e. g. , retinal vasculitis) and (2) validating LAG-3 + tumor-infiltrating lymphocytes as biomarkers for predicting immune checkpoint inhibitor response in uveal melanoma.
It is essential to explore effective combinations of checkpoint inhibitors, determine the optimal timing for their use, and establish better criteria for patient selection. As research on immune checkpoint therapies progresses, they have the potential to transform the management of ocular diseases, offering innovative treatment options for patients who previously had limited choices.
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