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 CAR T Cells for the Treatment of CNS Tumors in Children: Investigational Drug Service Pharmacy Activities.
随着过继性免疫治疗领域的不断发展,并持续为致命性CNS恶性肿瘤患者带来希望,关注改进CAR T细胞递送的准备步骤至关重要。
将嵌合抗原受体(CAR)T细胞的治疗潜力转化应用于中枢神经系统(CNS)肿瘤患儿的一个主要障碍是血脑屏障。为克服这一局限,临床前和临床研究已支持采用重复、局部区域颅内CAR T细胞递送。然而,目前描述研究性药物服务(IDS)药房参与过程的文献有限,尤其是在儿童医院对CNS肿瘤进行门诊给药的情况下。
描述西雅图儿童医院在临床生产CAR T细胞方面的经验,以及为儿童实施超过300次颅内CAR T细胞剂量输注所采用的IDS药房实践,并分享我们从CAR T细胞制备到颅内输注用分次剂量解冻的工艺优化过程。
收集自体CD4+和CD8+ T细胞,并转导以表达HER2、EGFR或B7-H3特异性CAR T细胞。冷冻保存的CAR T细胞在颅内递送至复发/难治性CNS肿瘤或弥漫性内生性桥脑胶质瘤/弥漫性中线胶质瘤患者之前,由IDS药房解冻。
使用解冻后直接稀释程序处理冷冻保存的个体化 CAR T 细胞剂量,可提供可靠的活力,且比典型的解冻后洗涤方案更高效。采用解冻后直接稀释方案的细胞活力约为 75%,且始终在冷冻保存时评估活力的 10% 以内。解冻后 6 小时内细胞活力得以保持,超过了从解冻到输注的 1 小时时间范围。
BACKGROUND: A major obstacle in translating the therapeutic potential of chimeric antigen receptor (CAR) T cells to children with central nervous system (CNS) tumors is the blood-brain barrier. To overcome this limitation, preclinical and clinical studies have supported the use of repeated, locoregional intracranial CAR T-cell delivery. However, there is limited literature available describing the process for the involvement of an investigational drug service (IDS) pharmacy, particularly in the setting of a children's hospital with outpatient dosing for CNS tumors. OBJECTIVES: To describe Seattle Children's Hospital's experience in clinically producing CAR T cells and the implementation of IDS pharmacy practices used to deliver more than 300 intracranial CAR T-cell doses to children, as well as to share how we refined the processing techniques from CAR T-cell generation to the thawing of fractionated doses for intracranial delivery. METHODS: Autologous CD4+ and CD8+ T cells were collected and transduced to express HER2, EGFR, or B7-H3-specific CAR T cells. Cryopreserved CAR T cells were thawed by the IDS pharmacy before intracranial delivery to patients with recurrent/refractory CNS tumors or with diffuse intrinsic pontine glioma/diffuse midline glioma. RESULTS: The use of a thaw-and-dilute procedure for cryopreserved individual CAR T-cell doses provides reliable viability and is more efficient than typical thaw-and-wash protocols. Cell viability with the thaw-and-dilute protocol was approximately 75% and was always within 10% of the viability assessed at cryopreservation. Cell viability was preserved through 6 hours after thawing, which exceeded the 1-hour time frame from thawing to infusion. CONCLUSION: As the field of adoptive immunotherapy grows and continues to bring hope to patients with fatal CNS malignancies, it is critical to focus on improving the preparatory steps for CAR T-cell delivery.
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