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.
我们的工作确立了CD81作为连接放射抵抗与免疫逃逸的关键桥梁,其通过维持GBM中CD274的丰度发挥作用,并突显CD81作为优化放射免疫治疗的有前景的治疗靶点。
英文原题:In vivo CAR-M therapy: advancing precision delivery and programmable immune remodeling.
近年来,嵌合抗原受体巨噬细胞(CAR-Ms)已成为过继性细胞治疗的一个重要分支。
近年来,嵌合抗原受体巨噬细胞(CAR-M)已成为过继细胞治疗的一个重要分支。其以固有的肿瘤浸润能力、吞噬活性和免疫调节功能为特征,这些特性使其在实体瘤和非恶性疾病的治疗中尤为具有前景。然而,CAR-M 疗法的广泛临床转化受到传统体外制造工艺所固有的复杂性、高成本和潜在遗传毒性的制约。作为一种变革性范式,体内 CAR-M 疗法通过使用病毒载体、脂质纳米颗粒、细胞外囊泡或生物材料等先进平台,将编码 CAR 的序列直接递送至髓系细胞,从而绕过了这些限制。该策略能够实现巨噬细胞的原位基因编程和功能重塑,从而简化治疗流程、降低生产成本并扩大患者可及性。本综述系统总结了体内 CAR-M 疗法的最新进展,重点关注其在不同实体瘤和非恶性疾病中的应用。我们从机制和转化角度比较了体内工程化策略与常规过继性 CAR-M 方法,并批判性审视了关键挑战,包括递送特异性、免疫安全性和转基因表达的可控性。总体而言,体内 CAR-M 代表了从体外制造向体内细胞编程的范式转变,为实体瘤和炎症相关疾病提供了一种更可及、更可扩展的下一代免疫治疗平台。
In recent years, chimeric antigen receptor-macrophages (CAR-Ms) have emerged as a pivotal branch of adoptive cell therapy. They are distinguished by their innate tumor infiltration capacity, phagocytic activity, and immunomodulatory functions, attributes that render them particularly promising for the treatment of solid tumors and non-malignant diseases. Nevertheless, the widespread clinical translation of CAR-M therapy has been constrained by the complexity, high cost, and potential genotoxicity inherent to traditional ex vivo manufacturing processes. As a transformative paradigm, in vivo CAR-M therapy bypasses these limitations by directly delivering CAR-encoding sequences to myeloid cells using advanced platforms such as viral vectors, lipid nanoparticles, extracellular vesicles, or biomaterials. This strategy enables the in situ genetic programming and functional remodeling of macrophages, thereby streamlining therapeutic workflows, reducing production costs, and broadening patient accessibility. This review systematically summarizes recent advances in in vivo CAR-M therapy, focusing on its applications across diverse solid tumors and non-malignant conditions. We compare in vivo engineering strategies with conventional adoptive CAR-M approaches from both mechanistic and translational perspectives and critically examine key challenges, including delivery specificity, immunological safety, and controllability of transgene expression. Collectively, in vivo CAR-M represents a paradigm shift from ex vivo manufacturing toward in vivo cellular programming, offering a more accessible and scalable next-generation immunotherapeutic platform for solid tumors and inflammation-related diseases.
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