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:CAR-CIK vs. CAR-T: benchmarking novel cytokine-induced killer cells as solid tumor immunotherapy in ErbB2+ rhabdomyosarcoma.
我们的结果表明,CAR-CIK细胞至少与CAR-T细胞效力相当。结合其良好的安全性特征和异体应用可行性,这些发现使CAR-CIK细胞成为实体瘤有前景的免疫效应细胞。
CAR-T细胞疗法虽然在血液系统恶性肿瘤中取得了成功,但在实体瘤中因自体T细胞的局限性而面临挑战。细胞因子诱导的杀伤(CIK)细胞可以安全地跨越同种异体屏障给予,并构成来自健康供者的替代效应细胞。CIK细胞是一个异质性群体,主要为T细胞,具有混合的自然杀伤(NK)表型,并将非MHC限制性细胞毒性与适应性免疫系统的强效抗肿瘤能力相结合。在此,我们在ErbB2+横纹肌肉瘤(RMS)中,对来自同一供者样本的CAR-CIK细胞和常规CAR-T细胞的疗效、表型亚群和作用模式进行了表征和比较。
为了将CAR-CIK与传统CAR-T细胞进行基准比较,我们从同一供体样本中生成效应细胞,并用第二代CD28-CD3 CAR进行慢病毒转导。通过流式细胞术对效应细胞亚群及其在暴露于靶细胞后的动态变化进行了表型表征。在体外和离体条件下,使用细胞毒性和球体共孵育实验,在人ErbB2+ RMS癌细胞系和原发患者样本中评估了疗效。通过基于微珠的多重流式细胞术比较细胞因子分泌谱,以及通过液相色谱质谱全细胞蛋白质组学,评估了作用机制。最后,我们使用模拟微小转移残留病的RMS体内模型,比较CAR-CIK与CAR-T细胞的抗肿瘤效力,并评估其靶器官浸润情况。
体外实验表明,CAR-CIK细胞对RMS细胞系和原发肿瘤样本具有更强的细胞毒性。与肿瘤球长期共孵育导致CAR-CIK细胞扩增以及CD3+CD56+ TNK细胞富集。CAR-CIK细胞的细胞因子特征显示,干扰素、穿孔素和颗粒溶素等效应分子的分泌显著增加,而Th2细胞因子IL-2、IL-4和IL-10的分泌降低。全细胞蛋白质组学显示,CAR-CIK细胞中趋化因子信号通路和NK细胞毒性通路相应上调。在移植了ErbB2+ RMS的NSG小鼠中,单次注射任一种CAR效应细胞均强烈抑制了转移性肿瘤的发展,并显著提高了生存率。
INTRODUCTION: CAR-T cell therapy, though successful in hematologic malignancies, faces challenges in solid tumors due to limitations of autologous T cells. Cytokine-induced killer (CIK) cells can be given safely across allogeneic barriers and constitute alternative effector cells generated from healthy donors. CIK cells are a heterogenous population of predominantly T cells with a mixed natural killer (NK) phenotype and combine non-MHC-restricted cytotoxicity with potent anti-tumor capacity of the adaptive immune system. Here, we characterize and compare efficacy, phenotypic subpopulations and modes of action of CAR-CIK cells and conventional CAR-T cells from same-donor samples in ErbB2+ rhabdomyosarcoma (RMS). METHODS: To benchmark CAR-CIK against conventional CAR-T cells, effector cells were generated from same-donor samples and lentivirally transduced with a second generation CD28-CD3 CAR. Effector subpopulations and their dynamics upon target cell exposure were phenotypically characterized by flow cytometry. Efficacy was assessed in human ErbB2+ RMS cancer cell lines and primary patient samples in vitro and ex vivo using cytotoxicity and spheroid co-incubation assays. Modes of action were assessed by comparing cytokine secretion profiles using bead-based multiplexed flow cytometry and by liquid chromatography mass spectrometry whole cell proteomics. Finally, we used an in vivo model of RMS mimicking minimal metastatic residual disease to compare anti-tumor potency of CAR-CIK vs. CAR-T cells and to assess their target organ infiltration. RESULTS: In vitro assays demonstrated superior cytotoxicity of CAR-CIK cells against RMS cell lines and primary tumor samples. Long-term co-incubation with tumor spheroids led to expansion of CAR-CIK cells and enrichment of CD3+CD56+ TNK cells. CAR-CIK cell cytokine signature showed significantly increased secretion of effector molecules like interferon- , perforin and granulysin, and lower secretion of Th2 cytokines IL-2, IL-4 and IL-10. Whole cell proteomics showed corresponding upregulation of chemokine signaling and NK-cytotoxicity pathways in CAR-CIK cells. In NSG mice xenografted with ErbB2+ RMS, a single injection of either CAR-effector cells strongly impeded metastatic tumor development and significantly improved survival. CONCLUSION: Our results demonstrate that CAR-CIK cells are at least equipotent to CAR-T cells. Combined with their favorable safety profile and allogeneic applicability, these findings position CAR-CIK cells as promising immune effectors for solid tumors.
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