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:Alternative splicing of its 5'-UTR limits CD20 mRNA translation and enables resistance to CD20-directed immunotherapies.
CD19和CD22中编码外显子的异常跳跃损害了B细胞恶性肿瘤对免疫治疗的反应。
CD19和CD22中编码外显子的异常跳跃会削弱B细胞恶性肿瘤对免疫治疗的反应。在此,我们发现编码人CD20的MS4A1基因也产生几种具有不同5'非翻译区的信使RNA(mRNA)异构体。通过RNA测序(RNA-seq)在正常B细胞分化和B淋巴恶性肿瘤的不同阶段检测到四种变异体(V1-4),其中V1和V3最为丰富。在B细胞活化和Epstein-Barr病毒感染期间,剪接从V1向V3的重新定向与CD20阳性率增加相吻合。同样,在弥漫性大B细胞淋巴瘤中,只有V3而非V1与CD20蛋白水平相关,提示V1可能存在翻译缺陷。事实上,较长的V1异构体包含上游开放阅读框和一个茎环结构,二者协同抑制了多聚核糖体的招募。通过使用剪接转换吗啉代寡核苷酸调节CD20异构体,我们在一组B细胞系中增强了CD20表达和抗CD20抗体利妥昔单抗介导的细胞毒性。此外,用V3 mRNA重建CD20敲除细胞可恢复CD20阳性,而V1重建的细胞则检测不到CD20蛋白水平。令人惊讶的是,体外CD20导向的CAR-T 细胞能够杀伤表达V3和V1的细胞,但双特异性T细胞衔接器mosunetuzumab仅对表达V3的细胞有效。为了确定CD20剪接是否参与免疫治疗耐药,我们对4例mosunetuzumab治疗后复发的滤泡性淋巴瘤进行了RNA-seq,发现在其中2例中,CD20下调伴随着V3向V1的转变。因此,剪接介导的表位丢失机制也延伸至CD20导向的免疫治疗。
Aberrant skipping of coding exons in CD19 and CD22 compromises the response to immunotherapy in B-cell malignancies. Here, we showed that the MS4A1 gene encoding human CD20 also produces several messenger RNA (mRNA) isoforms with distinct 5' untranslated regions. Four variants (V1-4) were detected using RNA sequencing (RNA-seq) at distinct stages of normal B-cell differentiation and B-lymphoid malignancies, with V1 and V3 being the most abundant. During B-cell activation and Epstein-Barr virus infection, redirection of splicing from V1 to V3 coincided with increased CD20 positivity. Similarly, in diffuse large B-cell lymphoma, only V3, but not V1, correlated with CD20 protein levels, suggesting that V1 might be translation-deficient. Indeed, the longer V1 isoform contained upstream open reading frames and a stem-loop structure, which cooperatively inhibited polysome recruitment. By modulating CD20 isoforms with splice-switching morpholino oligomers, we enhanced CD20 expression and anti-CD20 antibody rituximab-mediated cytotoxicity in a panel of B-cell lines. Furthermore, reconstitution of CD20-knockout cells with V3 mRNA led to the recovery of CD20 positivity, whereas V1-reconstituted cells had undetectable levels of CD20 protein. Surprisingly, in vitro CD20-directed chimeric antigen receptor T cells were able to kill both V3- and V1-expressing cells, but the bispecific T-cell engager mosunetuzumab was only effective against V3-expressing cells. To determine whether CD20 splicing is involved in immunotherapy resistance, we performed RNA-seq on 4 postmosunetuzumab follicular lymphoma relapses and discovered that in 2 of them, the downregulation of CD20 was accompanied by a V3-to-V1 shift. Thus, splicing-mediated mechanisms of epitope loss extend to CD20-directed immunotherapies.
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