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:The CDK9 inhibitor enitociclib overcomes resistance to BTK inhibition and CAR-T therapy in mantle cell lymphoma.
我们的数据证明了 enitociclib 在克服 MCL 模型治疗耐药方面的效力,并为其临床研究提供了支持证据。
布鲁顿酪氨酸激酶抑制剂(BTKi)和靶向 CD19 的CAR-T 细胞疗法是侵袭性套细胞淋巴瘤(MCL)治疗中的范式改变性进展。然而,BTKi 和 CD19 靶向 CAR-T 治疗后临床复发迅速成为日益严峻的医疗挑战。亟须开发克服 BTKi 耐药(BTKi-R)及 BTKi-CAR-T 双重耐药(Dual-R)的新疗法。我们的单细胞 RNA 测序数据显示,随着对这些疗法产生耐药,转录组发生重大重编程,MYC 靶基因显著富集。有趣的是,正转录延伸因子 b 复合体关键成分细胞周期蛋白依赖性激酶 9(CDK9),是 Dual-R 样本相较 BTKi-R 样本上调最显著的基因之一。因此,我们假设靶向 CDK9 可关闭 MYC 驱动的肿瘤存活和药物耐药。Enitociclib(原名 VIP152)是一种选择性 CDK9 抑制剂,其针对 MCL 的效力尚未评估。本研究发现,enitociclib 对淋巴瘤细胞具有强效活性,在 MCL 和弥漫大 B 细胞淋巴瘤细胞系中的半数最大抑制浓度(IC50)为 32–172 nM。该药抑制 CDK9 磷酸化及其下游事件,包括短寿命蛋白 c-MYC、MCL-1 和 cyclin D1 的新生合成,并以 caspase-3 依赖方式诱导凋亡。Enitociclib 可强效抑制具有治疗耐药性的细胞系来源和患者来源异种移植模型中的体内肿瘤生长。数据证明 enitociclib 在克服 MCL 模型治疗耐药方面的效力,并为临床研究提供依据。
Inhibitors of Bruton's tyrosine kinase (BTKi) and chimeric antigen receptor T-cell (CAR-T) therapy targeting CD19 are paradigm-shifting advances in treating patients with aggressive mantle cell lymphoma (MCL). However, clinical relapses following BTKi and CD19-directed CAR-T treatments are a fast-growing medical challenge. Development of novel therapies to overcome BTKi resistance (BTKi-R) and BTKi-CAR-T dual resistance (Dual-R) are urgently needed. Our single-cell RNA sequencing data revealed major transcriptomic reprogramming, with great enrichment of MYC-targets evolving as resistance to these therapies developed. Interestingly, cyclin-dependent kinase 9 (CDK9), a critical component of the positive transcription elongation factor-b complex, was among the top upregulated genes in Dual-R vs. BTKi-R samples. We therefore hypothesized that targeting CDK9 may turn off MYC-driven tumor survival and drug resistance. Enitociclib (formerly VIP152) is a selective CDK9 inhibitor whose potency against MCL has not been assessed. In this study, we found that enitociclib was highly potent in targeting lymphoma cells, with the half-maximal inhibitory concentration (IC 50 ) ranging from 32 to 172 nM in MCL and diffuse large B-cell lymphoma cell lines. It inhibited CDK9 phosphorylation and downstream events including de novo synthesis of the short-lived proteins c-MYC, MCL-1, and cyclin D1, and induced apoptosis in a caspase-3-dependent manner. Enitociclib potently inhibited in vivo tumor growth of cell line-derived and patient-derived xenografts having therapeutic resistance. Our data demonstrate the potency of enitociclib in overcoming therapeutic resistance in MCL models and provide evidence in favor of its clinical investigation.
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