免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Generation and functional analysis of melanoma antigen-specific CD8+ T cells derived from S/MAR vector-transfected human induced pluripotent stem cells.
Generation and functional analysis of melanoma antigen-specific CD8+ T cells derived from S/MAR vector-transfected human induced pluripotent stem cells.
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黑色素瘤占所有皮肤癌相关死亡的大多数,且发病率不断上升。使用来源于人诱导多能干细胞(hiPSCs)的肿瘤抗原特异性CD8+ T细胞的过继细胞疗法(ACT)可能为晚期恶性黑色素瘤患者提供一种有前景的治疗策略。
在本研究中,我们分别研究了两种从表达针对黑色素瘤相关抗原被T细胞识别的抗原(MART-1)特异性T细胞受体(TCR)或针对黑色素瘤相关硫酸软骨素蛋白聚糖(MCSP)特异性嵌合抗原受体(CAR)的hiPSCs中生成CD8+ T细胞的策略。虽然生物工程化OP9基质细胞与CD34+造血干/祖细胞(HSPCs)的长期共培养促进了CD4+CD8+双阳性(DP)T细胞的生成,但我们发现使用该方法难以获得高比例的CD8+单阳性(SP)T细胞。
然而,将OP9细胞替换为T细胞分化试剂盒后,能够在47天后生成CD8+ SP T细胞。尽管生成的CD8+ SP T细胞表面T细胞标志物CD3表达较低,但我们在刺激后检测到细胞内IFN-γ和表面CD107a的表达。
此外,生成的CD8+ SP T细胞与黑色素瘤细胞系共培养时表现出细胞毒性效应。使用支架/基质附着区(S/MAR)DNA载体确保了TCR或CAR在T细胞分化过程中的持续表达。
因此,这些发现证明了使用S/MAR DNA载体转染的hiPSCs生成黑色素瘤抗原特异性CD8+ T细胞的潜力以及相关挑战。
Melanoma accounts for the majority of all skin cancer-related deaths with rising incidence rates. Adoptive cell therapies (ACT) with tumor antigen-specific CD8+ T cells derived from human-induced pluripotent stem cells (hiPSCs) might offer a promising treatment strategy for advanced malignant melanoma patients.
In this study, we investigated two strategies for the generation of CD8+ T cells from hiPSCs expressing a T cell receptor (TCR) specific for the melanoma-associated antigen recognized by T cells (MART-1) or a chimeric antigen receptor (CAR) specific for the melanoma-associated chondroitin sulfate proteoglycan (MCSP), respectively.
While the long-term co-culture of bioengineered OP9 stromal cells with CD34+ hematopoietic stem/progenitor cells (HSPCs) facilitated the generation of CD4 + CD8+ double-positive (DP) T cells, we encountered difficulties in obtaining high percentages of CD8+ single-positive (SP) T cells using this method.
However, the replacement of the OP9 cells with a T cell differentiation kit enabled the generation of CD8+ SP T cells after 47 days. Despite a low expression of the T cell marker CD3 on the surface of the generated CD8+ SP T cells, we detected intracellular IFN-γ and surface CD107a expression upon stimulation.
Moreover, the generated CD8+ SP T cells exhibited cytotoxic effects when co-cultured with melanoma cell lines. The use of scaffold/matrix attachment region (S/MAR) DNA vectors ensured persistent expression of the TCR or the CAR during differentiation of T cells. Hence, these findings demonstrate the potential as well as the challenges associated with using S/MAR DNA vector-transfected hiPSCs for the generation of melanoma antigen-specific CD8+ T cells.
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