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:N-glycans in non-malignant tumor microenvironment cells dampen CAR-T cell function in solid tumors.
这些发现表明,非恶性TME细胞表达的N-聚糖抑制了CRC和PDAC中的CAR-T细胞反应,突显了MGAT5依赖性分支作为一个潜在可干预的轴心,并支持N-糖基化通路多个节点发挥更广泛的作用。
背景:嵌合抗原受体(CAR)T 细胞疗法在实体瘤中的疗效有限,主要原因是肿瘤微环境(TME)中的免疫抑制机制。尽管已知肿瘤相关聚糖能够保护恶性细胞免遭免疫攻击,但非恶性 TME 细胞群表达的 N-聚糖是否会导致 CAR-T 细胞功能障碍,尚不明确。方法:我们研究了非恶性 TME 细胞群中 N-聚糖的作用,重点关注结直肠癌(CRC)和胰腺癌(PDAC)肝转移灶中的 M2 样巨噬细胞和肝星状细胞。利用体外共培养系统、转录组分析和荷瘤人源化小鼠模型,评估在免疫和基质细胞区室中通过药理学或遗传学方式破坏 N-糖基化通路关键节点(MGAT5、MAN2A1 和 ST6GAL1)后,T 细胞功能如何变化。结果:患者样本中,分支型 N-聚糖特征与促肿瘤巨噬细胞和基质细胞的典型转录程序相关,提示 N-糖基化与免疫抑制性 TME 相联系。破坏非恶性 TME 细胞中的 N-聚糖合成,降低了这些细胞的免疫抑制和促肿瘤功能。荷瘤人源化小鼠的单细胞 RNA 测序显示,阻断 N-糖基化后,促肿瘤 IL1 阳性巨噬细胞减少,抑制性巨噬细胞与 T 细胞之间的相互作用减弱。在免疫和基质细胞区室中选择性破坏 MGAT5,可抑制免疫抑制程序,并在不依赖肿瘤细胞糖基化变化的情况下增强 CAR-T 细胞抗肿瘤活性。结论:非恶性 TME 细胞表达的 N-聚糖会限制 CAR-T 细胞对 CRC 和 PDAC 的应答。研究结果提示,MGAT5 依赖的聚糖分支形成可能是可干预的作用轴,同时支持 N-糖基化通路多个节点发挥更广泛的作用。
BACKGROUND: Chimeric antigen receptor (CAR) T-cell therapy has shown limited efficacy in solid tumors, largely due to immunosuppressive mechanisms within the tumor microenvironment (TME). While tumor-associated glycans are known to protect malignant cells from immune attack, the contribution of N-glycans expressed by non-malignant TME populations to CAR-T cell dysfunction remains poorly defined. METHODS: We investigated the role of N-glycans in non-malignant TME populations, focusing on M2-like macrophages and hepatic stellate cells in liver metastasis of colorectal (CRC) and pancreatic cancer (PDAC). Using in vitro co-culture systems, transcriptomic analysis, and tumor-bearing humanized mouse models, we assessed how pharmacologic or genetic disruption of key nodes of the N-glycosylation pathway ( MGAT5 , MAN2A1 and ST6GAL1 ) in immune and stromal compartments shapes T-cell function. RESULTS: In patient samples, a branched N-glycan signature was associated with transcriptional programs characteristic of tumor-promoting macrophages and stromal cells, linking N-glycosylation to an immunosuppressive TME. Disruption of N-glycan synthesis in non-malignant TME cells reduced their immunosuppressive and tumor-supporting functions. Single-cell RNA sequencing of tumor-bearing humanized mice showed depletion of protumor IL1 + macrophages and diminished inhibitory macrophage-T cell interactions following N-glycosylation blockade. Selective MGAT5 disruption in immune and stromal compartments suppressed immunosuppressive programs and enhanced CAR-T cell antitumor activity independently of tumor cell glycosylation. CONCLUSIONS: These findings show that N-glycans expressed by non-malignant TME cells restrain CAR-T cell responses in CRC and PDAC, highlighting MGAT5 -dependent branching as a potentially actionable axis and supporting a broader role for multiple nodes of the N-glycosylation pathway.
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