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:Chimeric antigen receptor macrophages therapy for glioblastoma: challenges and opportunities from preclinical evidence to clinical translation.
Chimeric antigen receptor macrophages therapy for glioblastoma: challenges and opportunities from preclinical evidence to clinical translation.
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胶质母细胞瘤(GBM)的治疗失败主要归因于多重屏障的汇聚,包括免疫抑制性肿瘤微环境(TME)、瘤内异质性以及血脑屏障。嵌合抗原受体巨噬细胞(CAR-M)疗法凭借其固有的肿瘤归巢能力、TME重编程功能以及桥接固有免疫与适应性免疫的潜力,为GBM治疗提供了一条前景广阔的新途径。
然而,尽管临床前数据令人鼓舞,其在GBM中的临床疗效仍未得到证实。本综述批判性地分析了这一转化差距。我们首先概述CAR-M疗法在克服GBM核心屏障方面的理论依据和固有优势。随后,我们批判性地评估当前临床前证据的局限性及其向临床环境外推时相关的不确定性。接着,我们聚焦于靶点选择策略、工程设计以及TME驱动的问题(如表型失活和抗原逃逸)等瓶颈,并讨论相应的优化方法,如装甲化修饰、逻辑门控设计和对流增强递送。
最后,我们提出一条优先进行机制验证的务实临床转化路径。该路径强调在早期临床试验中将CAR-M疗法与联合方案及智能技术相结合,并以生物标志物分析为支撑,以解决关于这些细胞在患者体内归巢、存活和功能的基本生物学问题。本综述旨在提供系统且批判性的参考,以指导CAR-M疗法从概念走向临床应用——一条机遇与挑战并存的路径。
Treatment failure in glioblastoma (GBM) is primarily attributed to the convergence of multiple barriers, including an immunosuppressive tumor microenvironment (TME), intratumoral heterogeneity, and the blood-brain barrier. Chimeric antigen receptor macrophages (CAR-M) therapy presents a promising new avenue for GBM treatment, leveraging its inherent tumor-homing capacity, TME reprogramming function, and potential to bridge innate and adaptive immunity.
However, despite promising preclinical data, clinical efficacy in GBM remains unproven. This review critically analyzes the translational gap.
We first outline the theoretical rationale and inherent advantages of CAR-M therapy in overcoming the core barriers of GBM.
We then critically assess the limitations of current preclinical evidence and the uncertainties associated with its extrapolation to the clinical setting.
We then focus on bottlenecks such as target selection strategies, engineering design, and TME-driven issues like phenotypic inactivation and antigen escape, discussing corresponding optimization approaches like armoring modifications, logic-gated designs, and convection-enhanced delivery.
Finally, we propose a pragmatic clinical translation pathway prioritizing mechanistic validation. This pathway emphasizes integrating CAR-M therapy with combinatorial approaches and smart technologies in early-phase clinical trials, supported by biomarker analyzes, to address fundamental biological questions regarding the homing, survival, and function of these cells in patients.
This review aims to provide a systematic and critical reference to guide the translation of CAR-M therapy from concept to clinical application, a path characterized by both opportunities and challenges.
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