决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Reprogramming adoptive cell therapy for osteosarcoma: engineering, vaccination, and tumor microenvironment remodeling.
骨肉瘤仍是治疗上的重大挑战,尤其是对于复发、难治或转移性疾病的患者。
骨肉瘤仍是重要治疗挑战,尤其对于复发、难治或转移性疾病患者。过继细胞治疗(ACT),包括CAR-T细胞、TCR工程化T细胞、CAR-NK细胞及巨噬细胞疗法,为重定向免疫效应细胞对抗骨肉瘤提供了有前景的策略。然而,抗原异质性、靶向肿瘤同时损伤正常组织毒性、肿瘤迁移不足、持久性差、功能耗竭和免疫抑制性肿瘤微环境,限制了临床转化。本迷你综述讨论旨在克服上述安全性和疗效障碍的新兴创新。首先,多抗原识别、逻辑门控CAR、自杀开关、瞬时CAR表达、装甲化细胞因子回路、抗检查点耐受设计及趋化因子受体修饰等工程策略,可能改善治疗精准性、可控性和持久性。其次,疫苗策略可作为ACT的可编程增强手段,促进体内扩增、免疫记忆、抗原扩展及局部炎症启动。第三,通过基质调节、血管正常化、髓系细胞重编程、免疫检查点阻断及代谢干预重塑肿瘤微环境,可能使骨肉瘤更适宜接受细胞疗法。总体而言,骨肉瘤下一代ACT可能需要模块化、生物标志物指导的联合方案,整合细胞工程、疫苗增强和微环境重塑,以实现更安全且持久的抗肿瘤应答。
Osteosarcoma remains a major treatment challenge, especially for patients with recurrent, refractory or metastatic diseases. Adoptive cell therapy (ACT), including CAR-T cells, TCR engineered T cells, CAR-NK cells and macrophage based cell therapy, provides a promising strategy for redirecting immune effector cells to fight osteosarcoma. However, clinical translation has been limited by antigen heterogeneity, on-target/off-tumor toxicity, insufficient tumor trafficking, poor persistence, functional exhaustion, and the immunosuppressive tumor microenvironment. This mini review discusses emerging innovations designed to overcome these safety and efficacy barriers. First, engineering strategies such as multi-antigen recognition, logic-gated CAR systems, suicide switches, transient CAR expression, armored cytokine circuits, checkpoint-resistant designs, and chemokine receptor modification may improve precision, controllability, and durability. Second, vaccination approaches may serve as programmable amplifiers of ACT by promoting in vivo expansion, immune memory, antigen spreading, and local inflammatory priming. Third, tumor microenvironment remodeling through stromal modulation, vascular normalization, myeloid reprogramming, checkpoint blockade, and metabolic intervention may convert osteosarcoma into a more permissive niche for cellular therapy. Collectively, next-generation ACT for osteosarcoma will likely require modular, biomarker-guided combinations that integrate cellular engineering, vaccine-based boosting, and microenvironmental remodeling to achieve safer and more durable antitumor responses.
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