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:Locoregional and systemic adoptive cellular therapies for pediatric brain tumors: a systematic review of CAR‑T, TCR‑engineered T cells, and NK cell strategies.
检索获得324条记录;去除103条重复记录;筛选221篇标题和摘要;审阅180篇全文;由两名独立评价者提取34项研究。
过继性细胞疗法可能通过将活性聚焦于肿瘤抗原来扩大儿童脑肿瘤的治疗选择,并限制脱靶效应。我们系统综述了针对HER2、B7-H3(CD276)、EGFR806反应性EGFR、GD2、IL13R 2以及EphA2或EphA3的CAR T细胞、TCR工程化T细胞和NK或T细胞平台的临床前及临床证据,并关注给药途径、安全性、持久性和联合策略。遵循PRISMA,我们检索了PubMed、Embase和Scopus自建库至2025年9月17日的文献,限制为英文。检索共获得324条记录;去除103条重复记录;筛选221条题录和摘要;审阅180篇全文;并由两名独立评审者提取34项研究。我们记录了设计、肿瘤及分子特征、产品工程化、给药途径和方案、淋巴细胞清除、毒性包括细胞因子释放综合征、免疫效应细胞相关神经毒性和肿瘤炎症相关神经毒性、影像学或临床缓解、生存,以及相关性指标如血液、脑脊液或肿瘤组织中的持久性或运输、细胞因子和抗原动态。体内研究显示,HER2在髓母细胞瘤中、GD2在弥漫性中线胶质瘤中,以及包含IL13R 2和EphA2的多抗原构建体在髓母细胞瘤和室管膜瘤中具有可重复的抗肿瘤活性,与对照相比具有显著生存优势。靶向EphA轴的T细胞选择性杀伤髓母细胞瘤并保留神经组织;GD2 CAR NK-92抑制弥漫性内生性桥脑胶质瘤生长。在早期临床项目中,给药途径塑造了安全性和药效学。对于GD2,低剂量静脉诱导后重复脑室内给药产生了客观的影像学缓解和可控的肿瘤炎症相关神经毒性,而剂量限制性细胞因子释放综合征仅限于较高静脉剂量。脑室内B7-H3 CAR T细胞,在不进行淋巴细胞清除的情况下给药,使得多周期给药可行,主要为1至2级事件,并在脑脊液中局部持续存在。每周颅内EGFR806 CAR T细胞可行且耐受性良好,在小型队列中最佳反应为疾病稳定。在各试验中,持续性和免疫激活在脑脊液中最为明显,支持以脑脊液为中心的药效学监测。基于机制的联合方案,包括在弥漫性中线胶质瘤中抑制IGF轴以及在髓母细胞瘤中通过整合安全开关对GD2进行表观遗传启动,增强了活性。证据支持以儿童为中心的抗原选择以及CNS优先、局部区域给药的方法,以增加肿瘤内暴露并减少全身毒性。优先事项包括多抗原策略以防止逃逸、纳入安全开关、在肿瘤负荷较低时更早部署,以及在多中心II期研究中进行前瞻性脑脊液药效学监测。
Adoptive cellular therapies may expand treatment options for pediatric brain tumors by focusing activity on tumor antigens and limiting off-tumor effects. We systematically reviewed preclinical and clinical evidence for CAR T cells, TCR-engineered T cells, and NK or T-cell platforms directed against HER2, B7-H3 (CD276), EGFR806-reactive EGFR, GD2, IL13R 2, and EphA2 or EphA3, with attention to delivery route, safety, persistence, and combination strategies. Following PRISMA, we searched PubMed, Embase, and Scopus from inception through September 17, 2025, restricted to English. The search yielded 324 records; 103 duplicates were removed; 221 titles and abstracts were screened; 180 full texts were reviewed; and 34 studies were extracted by two independent reviewers. We captured design, tumor and molecular features, product engineering, route and schedule, lymphodepletion, toxicities including cytokine release syndrome, immune effector cell associated neurotoxicity, and tumor inflammation associated neurotoxicity, radiographic or clinical response, survival, and correlatives such as persistence or trafficking in blood, cerebrospinal fluid, or tumor tissue, cytokines, and antigen dynamics. In vivo studies showed reproducible antitumor activity for HER2 in medulloblastoma, GD2 in diffuse midline glioma, and multi-antigen constructs incorporating IL13R 2 and EphA2 in medulloblastoma and ependymoma, with significant survival advantages compared with controls. T cells targeting the EphA axis selectively killed medulloblastoma with neural sparing; GD2 CAR NK-92 inhibited diffuse intrinsic pontine glioma growth. In early clinical programs, route shaped safety and pharmacodynamics. For GD2, low-dose intravenous induction followed by repeated intraventricular dosing produced objective radiographic regressions and manageable tumor inflammation associated neurotoxicity, while dose-limiting cytokine release syndrome was confined to higher intravenous doses. Intraventricular B7-H3 CAR T cells, given without lymphodepletion, enabled multi-cycle dosing with mainly grade 1 to 2 events and cerebrospinal fluid localized persistence. Weekly intracranial EGFR806 CAR T cells were feasible and well tolerated, with stable disease as the best response in a small cohort. Across trials, persistence and immune activation were most evident in cerebrospinal fluid, supporting cerebrospinal fluid centered pharmacodynamic monitoring. Mechanism-based combinations, including IGF-axis inhibition in diffuse midline glioma and epigenetic priming of GD2 with an integrated safety switch in medulloblastoma, enhanced activity. The evidence supports pediatric-centric antigen selection and a CNS-first, locoregional dosing approach to increase on-tumor exposure and reduce systemic toxicity. Priorities include multi-antigen strategies to prevent escape, incorporation of safety switches, earlier deployment when tumor burden is low, and prospective cerebrospinal fluid pharmacodynamics in multisite phase II studies.
MEMBER ACCOUNT
登录成功会直接打开下一页。