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大麻二酚对血液恶性肿瘤中 CAR-T 细胞功能的影响

英文原题:Effects of Cannabidiol on the Functions of Chimeric Antigen Receptor T Cells in Hematologic Malignancies.

查看英文原题

Effects of Cannabidiol on the Functions of Chimeric Antigen Receptor T Cells in Hematologic Malignancies.

PubMed 2023/10/25(内容时间) Cannabis Cannabinoid Res Q3 · IF 2.5(JCR 2025)

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中文摘要

采用WST-1细胞增殖试剂检测CBD细胞毒性;通过逆转录病毒转导制备CAR-T,并以无细胞毒性的CBD剂量处理。采用流式细胞术分析CBD对CAR-T 免疫特征的影响,包括转基因表达、T细胞亚群和记忆表型;以标准方法检测增殖、凋亡及细胞周期分布;采用脱颗粒实验评估细胞毒功能,并通过流式细胞术评估抗肿瘤活性。

CBD对NALM6、Raji和T细胞的半数抑制浓度(IC50)为16–22 μM;在8 μM时可维持100%细胞活力,是最高无毒剂量。制备CD19 CAR-T 时,研究人员以编码CD19-CAR的逆转录病毒载体活化并转导原代T细胞。CBD未改变CD19 CAR-T 表面表达或其T细胞亚群、记忆表型等免疫特征,但可诱导凋亡并抑制增殖,表现为细胞周期阻滞时Sub-G1期细胞比例增加。本研究中,CBD暴露未改变CD19 CAR-T 抗肿瘤活性及细胞因子分泌。

本研究所用无毒剂量CBD会影响CD19 CAR-T 增殖,但不会改变其免疫特征或细胞毒功能。

展开英文摘要原文

Introduction: CD19-chimeric antigen receptor (CAR) T cell therapy is a promising immunotherapy for cancer treatment that has shown remarkable clinical responses, leading to approval by the FDA for relapsed and refractory B cell hematological malignancy treatment. Cannabidiol (CBD) is a nonpsychoactive cannabinoid compound that has been utilized as a palliative treatment in cancer patients due to its immunosuppressive properties. Currently, studies on using CBD during immunotherapy have gained increasing attention.

However, the possible interaction between CBD and CAR T cell therapy has not been studied.

Therefore, in this study, we aimed to examine the direct effects of CBD on CD19-CAR T cell function against hematologic malignancies. Materials and Methods: The cytotoxic effect of CBD was determined by a cell proliferation reagent water-soluble tatrazolium salt (WST-1) assay. CAR T cells were generated by retroviral transduction and treated with CBD at a nontoxic dose. The effect of CBD on immune characteristics, including transgene expression, T cell subset, and memory phenotype, was analyzed by flow cytometry. Proliferation, apoptosis, and cell cycle distribution were analyzed with standard methods.

The effect on cytotoxic function was evaluated using degranulation assays, and antitumor activity was evaluated using flow cytometry. Results: The half-maximum inhibitory concentration (IC 50 ) of CBD on NALM6, Raji, and T cells ranged from 16 to 22 M. The maximum nontoxic dose of CBD that maintained cell viability at 100% was 8 M.

For the generation of CD19-CAR T cells, primary T cells were activated and transduced with a retroviral vector encoding CD19-CAR. CBD did not alter the surface expression or immune characteristics, including the T cell subset and memory phenotype, of CD19-CAR T cells.

However, CBD suppressed CD19-CAR T cell proliferation by inducing apoptosis, as evidenced by an increase in the proportion of cells in the Sub-G1 phase in cell cycle arrest.

However, the antitumor activity and cytokine secretion of CD19-CAR T cells were not altered by exposure to CBD in this study. Conclusions: In this study, a nontoxic dose of CBD affected CD19-CAR T cell proliferation but not its immune characteristics or cytotoxic function.

论文信息

作者
Chantarat N、Pe KCS、Suppipat K、Vimolmangkang S、Tawinwung S
单位
Department of Pharmacology and Physiology, Faculty of Pharmaceutical Sciences, Chulalongkorn University, Bangkok, Thailand.Thailand
文献类型
非美国政府资助研究
期刊
Cannabis and cannabinoid research2024 Jun
原文标识
PubMed 37878339 · DOI 10.1089/can.2023.0108