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:Development of a bicistronic anti-CD19/CD20 CAR construct including abrogation of unexpected nucleic acid sequence deletions.
为解决抗 CD19 嵌合抗原受体(CAR)T 细胞治疗后淋巴瘤 CD19 丢失的问题,我们设计了一种编码抗 CD19 CAR 和抗 CD20 CAR 的双顺反子构建体。
为应对抗 CD19 嵌合抗原受体(CAR)T 细胞治疗后淋巴瘤 CD19 丢失的问题,研究人员设计了一种双顺反子构建体,同时编码抗 CD19 CAR 和抗 CD20 CAR。通过 mRNA 测序,在少数转录本中检测到预期双顺反子构建体序列发生缺失,同时也检测到双顺反子构建体转基因 DNA 丢失。与 γ-逆转录病毒载体 RNA 相比,转导 T 细胞的 mRNA 中序列缺失频率要高得多。研究人员据此认为,这些缺失是逆转录过程中,逆转录酶将 γ-逆转录病毒载体 RNA 转录为转导 T 细胞转基因 DNA 时发生分子内模板转换所致;CAR 序列中多个高度相似的重复核酸片段驱动了这种分子内模板转换。研究人员优化双顺反子 CAR 构建体序列,减少高度相似的重复区域,几乎完全消除了序列缺失。这项工作表明,复杂 CAR 构建体必须避免含有高度相似核酸序列的重复区域。研究人员还通过延长抗 CD20 单链可变片段的连接子进一步优化双顺反子构建体;这一改动增加了 CD20 特异性 IL-2 释放,并降低了 CD20 特异性活化诱导的细胞死亡。研究人员选择了一种经优化的抗 CD19/CD20 双顺反子构建体用于临床开发。
To address CD19 loss from lymphoma after anti-CD19 chimeric antigen receptor (CAR) T cell therapy, we designed a bicistronic construct encoding an anti-CD19 CAR and an anti-CD20 CAR. We detected deletions from the expected bicistronic construct sequence in a minority of transcripts by mRNA sequencing. Loss of bicistronic construct transgene DNA was also detected. Deletions of sequence were present at much higher frequencies in transduced T cell mRNA versus gamma-retroviral vector RNA. We concluded that these deletions were caused by intramolecular template switching of the reverse transcriptase enzyme during reverse transcription of gamma-retroviral vector RNA into transgene DNA of transduced T cells. Intramolecular template switching was driven by repeated regions of highly similar nucleic acid sequence within CAR sequences. We optimized the sequence of the bicistronic CAR construct to reduce repeated regions of highly similar sequences. This optimization nearly eliminated sequence deletions. This work shows that repeated regions of highly similar nucleic acid sequence must be avoided in complex CAR constructs. We further optimized the bicistronic construct by lengthening the linker of the anti-CD20 single-chain variable fragment. This modification increased CD20-specific interleukin-2 release and reduced CD20-specific activation-induced cell death. We selected an optimized anti-CD19/CD20 bicistronic construct for clinical development.
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