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:Low-dose docetaxel reprograms CAR T cells for enhanced solid tumor immunity.
这些发现描述了一种非遗传药理学预激活策略,具有潜在的可扩展性并与现有生产工艺兼容。该方法在临床前模型中展示了增强的CAR T细胞对抗实体瘤屏障的性能,突显了化疗-免疫治疗协同作用的潜力。
嵌合抗原受体(CAR)T细胞疗法在实体瘤中受到致密基质屏障、快速功能耗竭和持久性有限的阻碍。在此,我们报道低剂量多西他赛作为一种免疫调节启动剂,重编程CAR T细胞以应对这些障碍。对乳腺癌患者的回顾性分析确定宿主淋巴细胞储备是多西他赛治疗获益的关键决定因素,暗示了超越直接杀伤肿瘤细胞的免疫学组分。
采用表型、转录和功能实验评估了亚细胞毒性多西他赛浓度在原代人T细胞和CAR T细胞中的作用。对分泌谱和细胞外囊泡货物进行了表征,并在3D球体和异种移植模型中评估了疗效。
多西他赛预处理诱导一种“代谢-周期解偶联”状态,在限制增殖的同时增强细胞毒性效应 potency 和记忆特征。这种重编程与 Rab27 依赖性外泌体生成上调相关,并伴随耗竭标志物(PD-1、CD57)的脱落以及细胞毒性配体(FasL、TRAIL)、CAR 和归巢受体(CCR5/CCR7)的富集。经预处理的 CAR T 细胞表现出改善的抗肿瘤疗效,并伴有基质重塑和宿主 T 细胞活化;分泌的外泌体参与旁观者肿瘤细胞杀伤。
BACKGROUND: Chimeric antigen receptor (CAR) T cell therapy in solid tumors is hampered by dense stromal barriers, rapid functional exhaustion, and limited persistence. Here, we report that low-dose docetaxel acts as an immunomodulatory primer that reprograms CAR T cells to address these barriers. Retrospective analysis of breast cancer patients identifies host lymphocyte reserve as a key determinant of docetaxel treatment benefit, implying an immunological component beyond direct tumor cell killing. METHODS: Sub-cytotoxic docetaxel concentrations were evaluated in primary human T cells and CAR T cells using phenotypic, transcriptional, and functional assays. Secretory profiles and extracellular vesicle cargo were characterized, with efficacy assessed in 3D spheroids and xenograft models. RESULTS: Docetaxel priming induces a "Metabolic-Cycle Uncoupling" state, constraining proliferation while enhancing cytotoxic effector potency and memory traits. This reprogramming is associated with upregulation of Rab27-dependent exosome biogenesis, accompanied by shedding of exhaustion markers (PD-1, CD57) and enrichment of cytotoxic ligands (FasL, TRAIL), CAR, and homing receptors (CCR5/CCR7). Primed CAR T cells exhibit improved antitumor efficacy with associated stromal remodeling and host T cell activation; secreted exosomes contribute to bystander tumor cell killing. CONCLUSIONS: These findings describe a non-genetic pharmacologic priming strategy with potential scalability and compatibility with existing manufacturing processes. This approach demonstrates enhanced CAR T cell performance against solid tumor barriers in preclinical models, highlighting the potential of chemotherapy-immunotherapy synergies.
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