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:Transient mRNA CAR T cells targeting GD2 provide dose-adjusted efficacy against diffuse midline glioma and high-grade glioma models.
我们的结果表明,瘤内递送的瞬时 mRNA CAR T 细胞具有实用价值,能够以明确的半衰期提供有效的肿瘤杀伤,并允许对剂量和潜在副作用进行调控。
背景:弥漫性中线胶质瘤(DMG)和高级别胶质瘤是儿童中枢神经系统恶性肿瘤,预后极差且无法治愈。近期靶向GD2的嵌合抗原受体(CAR)T细胞研究已在DMG中证明概念可行性并显示早期疗效。既往研究和正在进行的临床试验主要使用病毒载体制备永久表达CAR的T细胞。然而,病毒转导的GD2靶向CAR T细胞在临床前模型和人体试验中均显示明显神经毒性。方法:我们评估了采用mRNA制备、靶向GD2的瞬时表达CAR T细胞;在细胞系、类器官和体内异种移植模型中通过重复瘤内给药评估其疗效和安全性。结果:我们显示,表达GD2 CAR的mRNA CAR T细胞在体外对DMG和高级别胶质瘤细胞系及类器官模型均具有活性。细胞毒性在9天内持续衰减,凸显其可能避免T细胞活性持续存在所致毒性的潜力。在桥脑和丘脑DMG异种移植模型中,我们通过调整重复给予的GD2靶向mRNA CAR T细胞剂量,在维持治疗效果的同时避免神经毒性。结论:我们的结果证明,将瞬时表达mRNA CAR T细胞瘤内给药具有实用价值,可在半衰期明确的情况下有效杀伤肿瘤,从而允许调节剂量和潜在副作用。我们预计,本研究将推动CAR T细胞疗法用于DMG、其他中枢神经系统肿瘤及非恶性疾病;在这些适应证中,对永久表达CAR T细胞所致毒性的担忧可能阻碍其开发。
BACKGROUND: Diffuse midline glioma (DMG) and high-grade glioma are devastating pediatric central nervous system tumors that remain incurable. Recent chimeric antigen receptor (CAR) T cell studies have shown proof of concept and early signs of efficacy against DMG targeting GD2. Prior work and ongoing clinical trials have focused on using viral vectors to create permanent CAR T cells. However, virally transduced GD2-directed CAR T cells have shown significant neurotoxicity in both preclinical models and human trials. METHODS: We evaluated transient CAR T cells targeting GD2 created with mRNA, assessing for efficacy and safety in cell line, organoid, and in vivo xenograft models with repetitive intratumoral dosing. RESULTS: We show that mRNA GD2-directed CAR T cells are active against both cell lines and organoid models of DMG and high-grade glioma in vitro. Cytotoxicity consistently abates over 9 days, highlighting the potential to avoid toxicity from persistent T cell activity. In both pontine and thalamic DMG xenograft models, repeated doses of mRNA GD2-directed CAR T cells were titrated down to maintain therapeutic effects without causing neurologic toxicity. CONCLUSIONS: Our results demonstrate the utility of transient mRNA CAR T cells delivered intratumorally to provide effective tumor killing with a defined half-life, allowing for modulation of the dose and potential side effects. We anticipate this study will expand the use of CAR T cell therapy for DMG and other central nervous system tumors and non-malignant disorders, where concern for toxicity from permanently expressing CAR T cells may hinder development.
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