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:Nonviral mcDNA-mediated bispecific CAR T cells kill tumor cells in an experimental mouse model of hepatocellular carcinoma.
我们的研究表明,通过非病毒mcDNA载体制备双特异性CAR T细胞具有更高的效率和安全性。CoG133-CAR T细胞通过双抗原识别和内部激活增强了肿瘤抑制能力。这为HCC乃至实体瘤的CAR T治疗提供了一种创新策略。
肝细胞癌(HCC)是全球最常见的癌症之一,其过继性免疫治疗值得研究。CD133是一种癌症干细胞(CSC)抗原,与磷脂酰肌醇蛋白聚糖-3(GPC3)一起已被证明在HCC细胞中高表达,两者均被用作靶点来生成嵌合抗原受体(CAR)T细胞。但CAR T细胞治疗存在局限性,如“脱靶”毒性、转染效率低和抗肿瘤能力弱。
外周血取自健康供者,通过密度梯度离心法分离T细胞。我们使用电转系统将抗CD133和抗GPC3单链可变区片段(scFv)结构作为靶基因导入T细胞。通过瞬时电流效应打开细胞膜,并通过非病毒微环DNA(mcDNA)载体将靶基因递送至细胞内。采用流式细胞术和western blot检测两种scFv是否同时转染以及该双特异性CAR T细胞生成方法的转染效率。我们分别通过CCK-8实验和HCC异种移植小鼠模型检测CAR T细胞的体外和体内抑瘤效果。含有CD133和GPC3两种抗原识别位点的CoG133-CAR T细胞为效应细胞。CD133-CAR T细胞和GPC3-CAR T细胞定义为单靶点对照组,正常T细胞和mock T细胞定义为空白对照组。
mcDNA载体成功容纳了两个靶基因结构并转染生成双特异性CAR T细胞。基因水平和蛋白水平的检测方法证实,CoG133-CAR T细胞具有较高的转染效率,并表现出CD133和GPC3的双重抗原结合能力。与单靶向CAR T细胞或对照T细胞相比,CoG133-CAR T细胞在体外对CD133和GPC3双阳性HCC细胞系以及在体内HCC异种移植小鼠中均表现出增强的杀伤效力。苏木精和伊红(H&E)染色表明,CoG133-CAR T细胞与主要器官上不存在致命的“脱靶”组合。
BACKGROUND: Hepatocellular carcinoma (HCC) is one of the most common cancers worldwide and the adoptive immunotherapy of which is worth studying. CD133, a kind of cancer stem cell (CSC) antigen, together with glypican-3 (GPC3) has been proved to be highly expressed in HCC cells and both of them are used as targets to generate chimeric antigen receptor (CAR) T cells. But there are limitations like "off-target" toxicity, low transfection efficacy and weak antitumor ability in CAR T cells treatment. METHODS: The peripheral blood was acquired from healthy donors and T cells were separated by density-gradient centrifugation. We used an electroporation system to deliver anti-CD133 and anti-GPC3 single chain Fragment variable (scFv) structures as target genes into the T cells. The cell membrane was opened by the momentary electric current effect, and the target gene was delivered into the cell by non-viral minicircle DNA (mcDNA) vector. The flow cytometry and western blot assays were used to detect whether the two scFv were simultaneously transfected and the transfection efficacy of this bispecific CAR T cell generation method. We respectively detected the in vitro and in vivo tumor-suppression efficacy of CAR T cells through the CCK-8 assays and the HCC xenograft mice models. The CoG133-CAR T cells containing both CD133 and GPC3 antigen recognition sites were the effector cells. CD133-CAR T cells and GPC3-CAR T cells were defined as single-targeted control groups, normal T and mock T cells were defined as blank control groups. RESULTS: The mcDNA vector accommodated two target gene structures successfully transfected to generate bispecific CAR T cells. The detection methods on gene level and protein level confirmed that CoG133-CAR T cells had considerable transfection efficiency and exhibited both antigen-binding capacity of CD133 and GPC3. Compared to single-targeted CAR T cells or control T cells, CoG133-CAR T cells performed enhanced eliminated efficacy against CD133 and GPC3 double-positive HCC cell line in vitro and HCC xenograft mice in vivo. Hematoxylin and eosin (H&E) staining indicated no fatal "off-target" combination existed on CoG133-CAR T cells and major organs. CONCLUSION: Our study suggests that it is with higher efficiency and more safety to prepare bispecific CAR T cells through non-viral mcDNA vectors. CoG133-CAR T cells have enhanced tumor-suppression capacity through dual antigen recognition and internal activation. It provides an innovative strategy for CAR T therapy of HCC, even solid tumors.
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