CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:In vitro functional validation of anti-CD19 chimeric antigen receptor T cells expressing lysine-specific demethylase 1 short hairpin RNA for the treatment of diffuse large B cell lymphoma.
In vitro functional validation of anti-CD19 chimeric antigen receptor T cells expressing lysine-specific demethylase 1 short hairpin RNA for the treatment of diffuse large B cell lymphoma.
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我们开发了一种新型、可行的 CD19-LSD1 shRNA CAR-T 细胞策略用于治疗 DLBCL。我们的体外实验结果显示,LSD1 shRNA anti-CD19 CAR-T 细胞比 RNAU6 anti-CD19 CAR-T 细胞更有效地杀伤靶细胞,并产生更高比例的 TCM 表型细胞。LSD1 shRNA anti-CD19 CAR-T 细胞可能代表 DLBCL 的一种潜在治疗方法。
CAR-T(CAR-T)细胞疗法在复发/难治性弥漫性大B细胞淋巴瘤(DLBCL)中比其他疗法更有效,但高比例的患者在CAR-T 细胞疗法后复发,原因包括抗原逃逸、CAR-T 细胞持久性有限以及肿瘤微环境中的免疫抑制。CAR-T 细胞耗竭是复发的主要原因。表观遗传修饰可调控T细胞活化、成熟和耗竭;可应用于减少T细胞耗竭、改善浸润并促进记忆表型形成,以减少CAR-T 细胞疗法后的复发。
我们拟在体外开发并验证用于治疗DLBCL的新型CAR-T 细胞的功能,该细胞同时表达抗CD19 CAR和赖氨酸特异性去甲基化酶1(LSD1)短发夹(sh)RNA,以防止耗竭并延长CAR-T 细胞的存活。
我们设计了一条靶向LSD1 mRNA的shRNA序列,并构建了一个包含以下元件的载体:U6启动子驱动LSD1 shRNA序列表达,EF1a启动子驱动第二代抗CD19 CAR序列表达,该序列编码抗CD19单链可变区片段(FMC63)、CD8铰链和跨膜结构域、CD28共刺激结构域以及CD3激活结构域。首先构建MFG-LSD1 shRNA抗CD19 CAR质粒,然后包装到逆转录病毒载体中,并转导到人原代外周血单个核细胞来源的T细胞中,以生成相应的CAR-T 细胞。我们通过流式细胞术检测了两种CAR-T 细胞在与RNAU6抗CD19 CAR-T 细胞或LSD1 shRNA抗CD19 CAR-T 细胞共培养时杀伤U-2932细胞(一种人DLBCL细胞系)的效率。我们在第0天、第5天和第10天通过流式细胞术分析了CAR-T 细胞的Ki-67染色,并计数细胞以评估扩增。我们还使用流式细胞术检测了中央记忆T细胞(TCM)比例。
我们通过流式细胞术检测了CAR-T 细胞中CAR的表达,观察到RNAU6 anti-CD19 CAR-T 细胞的转导率为31.5%,LSD1 shRNA anti-CD19 CAR-T 细胞的转导率为60.7%。在低效靶比下,LSD1 shRNA anti-CD19 CAR-T 细胞的杀伤效率显著高于RNAU6 anti-CD19 CAR-T 细胞。我们进一步发现,LSD1 shRNA anti-CD19 CAR-T 细胞比RNAU6 anti-CD19 CAR-T 细胞分泌更多的IFN-和颗粒酶B。CAR-T 细胞在U-2932细胞刺激后增殖,并能够维持增殖。通过U-2932细胞共培养刺激后,RNAU6 anti-CD19 CAR-T 和LSD1 shRNA anti-CD19 CAR-T 群体的TCM表型细胞比例均增加,其中LSD1 shRNA anti-CD19 CAR-T 细胞中的比例更高。
Chimeric antigen receptor T (CAR-T) cell therapy is more effective in relapsed or refractory diffuse large B cell lymphoma (DLBCL) than other therapies, but a high proportion of patients relapse after CAR-T cell therapy owing to antigen escape, limited persistence of CAR-T cells, and immunosuppression in the tumor microenvironment. CAR-T cell exhaustion is a major cause of relapse. Epigenetic modifications can regulate T cell activation, maturation and depletion; they can be applied to reduce T cell depletion, improve infiltration, and promote memory phenotype formation to reduce relapse after CAR-T cell therapy.
We propose to develop and validate in vitro the function of novel CAR-T cells for the treatment of DLBCL, which simultaneously express an anti-CD19 CAR with lysine-specific demethylase 1 (LSD1) short hairpin (sh)RNA to prevent depletion and prolong the survival of CAR-T cells.
We designed an shRNA sequence targeting LSD1 mRNA, and created a vector with the following elements: the U6 promoter driving expression of the LSD1 shRNA sequence, the EF1a promoter driving a second-generation anti-CD19 CAR sequence encoding an anti-CD19 single-chain variable fragment (FMC63), the CD8 hinge and transmembrane structural domains, the CD28 co-stimulatory structural domain, and the CD3 -activating structural domain. The MFG-LSD1 shRNA anti-CD19 CAR plasmid was first constructed, then packaged in retroviral vectors and transduced into human primary peripheral blood mononuclear cell-derived T cells to generate the corresponding CAR-T cells. We examined by flow cytometry the efficiency of two CAR-T cells in killing U-2932 cells (a human DLBCL line) upon co-culture with RNAU6 anti-CD19 CAR-T cells or LSD1 shRNA anti-CD19 CAR-T cells. We analyzed Ki-67 staining of the CAR-T cells by flow cytometry on days 0, 5, and 10, and counted the cells to assess expansion. We also used flow cytometry to detect the central memory T cell (TCM) proportion.
We detected the expression of the CAR in the CAR-T cells by flow cytometry, and observed transduction rates of 31.5% for RNAU6 anti-CD19 CAR-T cells and 60.7% for LSD1 shRNA anti-CD19 CAR-T cells. The killing efficiency of LSD1 shRNA anti-CD19 CAR-T cells was significantly higher than that of RNAU6 anti-CD19 CAR-T cells at the low effector target ratio. We further found that LSD1 shRNA anti-CD19 CAR-T cells secreted more IFN- and granzyme B than RNAU6 anti-CD19 CAR-T cells. CAR-T cells proliferated after U-2932 cell stimulation and were able to sustain proliferation. After stimulation via U-2932 cell co-culture, both RNAU6 anti-CD19 CAR-T and LSD1 shRNA anti-CD19 CAR-T populations had increased proportions of cells with the TCM phenotype, with a higher percentage among LSD1 shRNA anti-CD19 CAR-T cells.
We developed a novel, feasible CD19-LSD1 shRNA CAR-T cell strategy for the treatment of DLBCL. Our in vitro assay results showed that LSD1 shRNA anti-CD19 CAR-T cells more effectively killed target cells than RNAU6 anti-CD19 CAR-T cells, and developed a higher proportion of TCM phenotype cells. LSD1 shRNA anti-CD19 CAR-T cells may represent a potential treatment for DLBCL.
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