CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Adjunct Therapy with T Regulatory Cells Decreases Inflammation and Preserves the Anti-Tumor Activity of CAR T Cells.
Adjunct Therapy with T Regulatory Cells Decreases Inflammation and Preserves the Anti-Tumor Activity of CAR T Cells.
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随着CAR-T 细胞治疗的可及性提高和接受治疗的患者数量增加,真实世界中的毒性仍然是其广泛应用的重大挑战。我们此前已证明,同种异体脐带血来源(UCB)的调节性T细胞(Tregs)可以消退炎症并治疗急性和免疫介导的肺损伤。同种异体、冷冻保存的UCB Tregs已在COVID-19急性呼吸窘迫综合征患者中显示出临床获益。UCB Treg细胞的独特特性包括在炎症微环境下缺乏可塑性、无需HLA配型、冷冻保存细胞保质期长以及产品可即时获得,这使其在治疗急性炎症综合征方面具有吸引力。
因此,我们假设UCB Tregs辅助治疗可能消退导致CAR-T 细胞治疗相关毒性的不良炎症。在体外分析中,在不同CAR-T:Raji细胞比例下,加入UCB Tregs未观察到对CD19 CAR-T 细胞杀伤CD19 Raji细胞能力的干扰:8:1(80.4% vs. 81.5%);4:1(62.0% vs. 66.2%);2:1(50.1% vs. 54.7%);以及1:1(35.4% vs. 44.1%)。在异种B细胞淋巴瘤模型中,CD19 CAR-T 细胞注射3天后多次注射UCB Tregs,未观察到添加Tregs对循环CD8+ T效应细胞产生不利影响。加入UCB Tregs后,CAR-T 细胞在多个器官中的分布仍未受影响。
具体而言,UCB Treg + CAR-T 组与单独CAR-T 组之间未检测到总体肿瘤负荷的差异。在CAR-T 细胞+UCB Tregs受者中,肝脏或骨髓中未检测到肿瘤,与单独接受CAR-T 细胞的受者相比,多种循环炎症细胞因子相应显著减少。
在此,我们展示了使用UCB Tregs辅助治疗的概念验证,以减轻CAR-T 细胞诱导的过度炎症状态,同时不干扰其靶向抗肿瘤活性。在CAR-T 细胞之后给予UCB Tregs,为其与肿瘤细胞形成突触并发挥细胞毒性提供了足够时间,从而使UCB Tregs转而与炎症部位的抗原呈递细胞相互作用。这种细胞的差异性分布将允许采取UCB Treg“冷却毯”效应的双管齐下策略,并为临床研究奠定基础。
With greater accessibility and an increased number of patients being treated with CAR T cell therapy, real-world toxicity continues to remain a significant challenge to its widespread adoption.
We have previously shown that allogeneic umbilical cord blood-derived (UCB) regulatory T cells (Tregs) can resolve inflammation and treat acute and immune-mediated lung injuries. Allogeneic, cryopreserved UCB Tregs have shown a clinical benefit in patients suffering from COVID-19 acute respiratory distress syndrome.
The unique properties of UCB Treg cells include a lack of plasticity under inflammatory micro-environments, no requirement for HLA matching, a long shelf life of cryopreserved cells, and immediate product availability, which makes them attractive for treating acute inflammatory syndromes.
Therefore, we hypothesized that adjunct therapy with UCB Tregs may resolve the undesirable inflammation responsible for CAR T cell therapy-associated toxicity. In in vitro analysis, no interference from the addition of UCB Tregs was observed on CD19 CAR T cells' ability to kill CD19 Raji cells at different CAR T: Raji cell ratios of 8:1 (80. 4% vs. 81. 5%); 4:1 (62. 0% vs. 66. 2%); 2:1 (50. 1% vs. 54. 7%); and 1:1 (35. 4% vs. 44. 1%). In the xenogeneic B-cell lymphoma model, multiple injections of UCB Tregs were administered 3 days after CD19 CAR T cell injection, and no detrimental effect of add-on Tregs was noted on the circulating CD8 + T effector cells.
The distribution of CAR T cells in multiple organs remained unaffected by the addition of the UCB Tregs. Specifically, no difference in the overall tumor burden was detected between the UCB Treg + CAR T vs. CAR T alone recipients. No tumor was detected in the liver or bone marrow in CAR T cells + UCB Tregs recipients, with a notable corresponding decrease in multiple circulating inflammatory cytokines when compared to CART alone recipients.
Here we show the proof of concept for adjunct therapy with UCB Tregs to mitigate the hyper-inflammatory state induced by CAR T cells without any interference in their on-target anti-tumor activity.
Administration of UCB Tregs after CAR T cells allows sufficient time for their synapse formation with tumor cells and exerts cytotoxicity, such that the UCB Tregs are diverted to interact with the antigen-presenting cells at the site of inflammation. Such a differential distribution of cells would allow for a two-pronged strategy of a UCB Treg "cooling blanket" effect and lay the groundwork for clinical study.
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