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:CD8+ T Cell Subsets as Biomarkers for Predicting Checkpoint Therapy Outcomes in Cancer Immunotherapy.
CD8+ T Cell Subsets as Biomarkers for Predicting Checkpoint Therapy Outcomes in Cancer Immunotherapy.
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免疫检查点阻断(ICB)的出现改变了肿瘤免疫治疗,带来了显著的长期疗效和生存改善,尤其是在ICB联合治疗中。然而,临床获益仍局限于部分患者,且危及生命的免疫相关不良事件构成重大挑战。这种有限的疗效归因于肿瘤异质性,其由配体-受体相互作用、外泌体、分泌因子和关键转录因子介导。E2F1和MYC等致癌调控因子驱动转移性肿瘤环境,并与免疫调节通路交织,损害T细胞功能并降低免疫治疗有效性。为应对这些挑战,FDA批准的生物标志物,如肿瘤突变负荷(TMB)和程序性细胞死亡配体1(PD-L1)表达,有助于识别最可能从ICB中获益的患者。
然而,当前生物标志物存在局限性,使治疗决策困难。近年来,T细胞——ICB的主要靶点——已成为有前景的生物标志物。本综述探讨癌症驱动因素与免疫反应之间的关系,并强调CD8+ T细胞在预测和监测ICB疗效中的作用。肿瘤浸润CD8+ T细胞在许多癌症中与良好的临床结局相关,但获取肿瘤组织仍然复杂,限制了其实际应用。相反,循环T细胞亚群更易获取,并已显示出作为预测性生物标志物的前景。
具体而言,记忆T细胞和祖细胞耗竭T细胞与良好的免疫治疗反应相关,而终末耗竭T细胞与ICB疗效呈负相关。最终,联合生物标志物可提高预测准确性,这一点通过将TMB/PD-L1表达与CD8+ T细胞频率整合已得到证明。纳入癌症和免疫特征的计算模型可进一步细化患者分层,推动个性化免疫治疗。
The advent of immune checkpoint blockade (ICB) has transformed cancer immunotherapy, enabling remarkable long-term outcomes and improved survival, particularly with ICB combination treatments.
However, clinical benefits remain confined to a subset of patients, and life-threatening immune-related adverse effects pose a significant challenge. This limited efficacy is attributed to cancer heterogeneity, which is mediated by ligand-receptor interactions, exosomes, secreted factors, and key transcription factors. Oncogenic regulators like E2F1 and MYC drive metastatic tumor environments and intertwine with immunoregulatory pathways, impairing T cell function and reducing immunotherapy effectiveness. To address these challenges, FDA-approved biomarkers, such as tumor mutational burden (TMB) and programmed cell death-ligand 1 (PD-L1) expression, help to identify patients most likely to benefit from ICB. Yet, current biomarkers have limitations, making treatment decisions difficult. Recently, T cells-the primary target of ICB-have emerged as promising biomarkers.
This review explores the relationship between cancer drivers and immune response, and emphasizes the role of CD8+ T cells in predicting and monitoring ICB efficacy. Tumor-infiltrating CD8+ T cells correlate with positive clinical outcomes in many cancers, yet obtaining tumor tissue remains complex, limiting its practical use. Conversely, circulating T cell subsets are more accessible and have shown promise as predictive biomarkers.
Specifically, memory and progenitor exhausted T cells are associated with favorable immunotherapy responses, while terminally exhausted T cells negatively correlate with ICB efficacy. Ultimately, combining biomarkers enhances predictive accuracy, as demonstrated by integrating TMB/PD-L1 expression with CD8+ T cell frequency. Computational models incorporating cancer and immune signatures could further refine patient stratification, advancing personalized immunotherapy.
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