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:Bioengineered cell therapies for pediatric solid tumors: unmet needs and a measurement-integrated approach.
儿童实体瘤仍然构成重大治疗挑战,其生存获益落后于儿童血液系统恶性肿瘤所取得的进展。
儿童实体瘤仍然构成重大治疗挑战,其生存获益落后于儿童血液系统恶性肿瘤所取得的进展。尽管传统方法侧重于通过剂量递增和强化全身治疗来提高生存率,但这一策略往往受到强化多模式治疗带来的显著短期和长期并发症的限制。由于儿童器官尚在发育且未来有数十年生命,治疗策略必须在持久控制肿瘤与保护神经发育、器官功能和生活质量之间取得平衡。免疫治疗作为剂量递增的替代方案引起了重大关注;然而,其在儿童实体瘤中的临床转化受到抗原异质性、肿瘤可塑性、免疫冷或免疫排斥表型以及深度免疫抑制性肿瘤微环境的限制。生物工程化细胞疗法,特别是嵌合抗原受体(CAR)T细胞和CAR修饰自然杀伤(CAR NK)细胞,提供了一个模块化平台,通过合成受体设计、多抗原靶向、可控激活以及改善向脑等解剖学受限部位的迁移来应对这些障碍。然而,如果没有能够报告生物分布、持久性和功能参与的定量体内监测的同步整合,仅靠工程学进展不太可能实现持久获益。无创成像和测量赋能方法可以提供对治疗性能的机制性洞察,区分递送失败与功能性障碍,并支持构建体设计、给药剂量和给药途径的合理迭代。在这篇观点文章中,我们回顾了CAR T和CAR NK疗法在儿童实体恶性肿瘤中的现状,概述了关键的生物学和工程学挑战,并提出了一种以儿童为中心的开发框架,该框架将可控细胞工程与对体内行为的定量、无创评估相结合。通过将测量嵌入治疗设计循环,并在疗效之外优先考虑长期安全性和发育结局,下一代工程化细胞疗法可能朝着可适应、精准引导的系统发展,从而能够改善儿童的生存率和生活质量。
Pediatric solid tumors continue to pose a major therapeutic challenge, with survival gains lagging behind those achieved in pediatric hematologic malignancies. While traditional approaches have focused on dose escalation and intensification of systemic therapies to improve survival, this strategy is often limited by significant short- and long-term morbidity from intensive multimodal treatment. Because children have developing organs and decades of life ahead, therapeutic strategies must balance durable tumor control with preservation of neurodevelopment, organ function, and quality of life. Immunotherapy has generated significant interest as an alternative to dose escalation; however, clinical translation in pediatric solid tumors has been limited by antigen heterogeneity, tumor plasticity, immune-cold or immune-excluded phenotypes, and a profoundly immunosuppressive tumor microenvironment. Bioengineered cellular therapies, particularly chimeric antigen receptor (CAR) T cells and CAR-modified natural killer (CAR NK) cells, provide a modular platform to address these barriers through synthetic receptor design, multi-antigen targeting, controlled activation, and improved trafficking to anatomically restricted sites such as the brain. However, engineering advances alone are unlikely to achieve durable benefit without parallel integration of quantitative in vivo monitoring capable of reporting biodistribution, persistence, and functional engagement. Non-invasive imaging and measurement-enabled approaches can provide mechanistic insight into therapeutic performance, discriminate between delivery failure and functional dysfunction, and support rational iteration of construct design, dosing, and route of administration. In this perspective, we review the current status of CAR T and CAR NK therapies in pediatric solid malignancies, outline key biological and engineering challenges, and propose a pediatric-centered development framework that integrates controllable cell engineering with quantitative, non-invasive assessment of in vivo behavior. By embedding measurement into the therapeutic design loop and prioritizing long-term safety and developmental outcomes alongside efficacy, next-generation engineered cell therapies may evolve toward adaptable, precision-guided systems capable of improving both survival and quality of life for children.
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