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:TIGIT is the central player in T-cell suppression associated with CAR T-cell relapse in mantle cell lymphoma.
TIGIT is the central player in T-cell suppression associated with CAR T-cell relapse in mantle cell lymphoma.
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我们的数据表明,多种肿瘤内在和外在因素与 T 细胞抑制和 BA 复发相关。其中,TIGIT 似乎是核心因素,因为不仅在 CTL 中,在 MCL 细胞中,BA 复发后其表达均升高。肿瘤细胞获得 TIGIT 表达是 MCL 特异性的,在其他 CAR-T 治疗的疾病中尚未报道。总之,我们的数据表明,共同靶向 TIGIT 可能预防 CAR-T 复发,从而促进 MCL 患者的长期无进展生存期。
使用brexucabtagene autoleucel (BA)的嵌合抗原受体(CAR) T细胞疗法可使许多套细胞淋巴瘤(MCL)患者获得缓解,且BA是FDA唯一批准用于MCL的CAR-T 细胞疗法。然而,已认识到BA治疗后会出现复发,且患者预后不良。多种CAR-T 细胞疗法已获批用于其他淋巴瘤,其耐药机制已被研究。然而,MCL中BA复发的机制尚未被研究,且先前报道的任何耐药机制是否适用于BA复发的MCL患者尚不清楚。
为了探究MCL中BA耐药机制,我们对来自15名接受BA治疗患者的39份纵向收集样本进行了单细胞RNA测序,并对来自20名患者的80份连续样本进行了多重细胞因子分析。
我们证明,在BA复发后,非肿瘤细胞中T细胞尤其是细胞毒性T细胞(CTL)的比例下降,而髓系细胞的比例相应增加。TIGIT、LAG3和CD96是耗竭T细胞和CTL上表达的主要检查点分子;复发后仅TIGIT显著升高。CTL在缓解期扩增,随后在复发期收缩并伴有TIGIT表达上调。肿瘤细胞在复发后也获得TIGIT表达,导致肿瘤细胞TIGIT与单核细胞CD155/PVR的相互作用增强。在髓系细胞中,复发后HLA-II表达相对于治疗前和缓解期降低。髓源性抑制细胞(MDSC)在复发后富集,活化标志物表达升高,包括CLU(簇集素)和VCAN(多功能蛋白聚糖)。细胞外趋化因子(CCL4、CXCL9、CXCL13)、可溶性检查点抑制剂(sPD-L1、sTIM3、s4-1BB)和可溶性受体(sIL-2R、sTNFRII)在缓解期降低,但在复发后升高。
Chimeric antigen receptor (CAR) T-cell therapy using brexucabtagene autoleucel (BA) induces remission in many patients with mantle cell lymphoma (MCL), and BA is the only CAR T-cell therapy approved by the FDA for MCL. However, development of relapses to BA is recognized with poor patient outcomes. Multiple CAR T-cell therapies have been approved for other lymphomas and the resistance mechanisms have been investigated. However, the mechanisms underlying BA relapse in MCL have not been investigated and whether any previously reported resistance mechanisms apply to BA-relapsed patients with MCL is unknown.
To interrogate BA resistance mechanisms in MCL, we performed single-cell RNA sequencing on 39 longitudinally collected samples from 15 BA-treated patients, and multiplex cytokine profiling on 80 serial samples from 20 patients.
We demonstrate that after BA relapse, the proportion of T cells, especially cytotoxic T cells (CTLs), decreased among non-tumor cells, while the proportion of myeloid cells correspondingly increased. TIGIT, LAG3, and CD96 were the predominant checkpoint molecules expressed on exhausted T cells and CTLs; only TIGIT was significantly increased after relapse. CTLs expanded during remission, and then contracted during relapse with upregulated TIGIT expression. Tumor cells also acquired TIGIT expression after relapse, leading to the enhanced interaction of tumor cell TIGIT with monocyte CD155/PVR. In myeloid cells, post-relapse HLA-II expression was reduced relative to pretreatment and during remission. Myeloid-derived suppressor cells (MDSCs) were enriched after relapse with elevated expression of activation markers, including CLU (clusterin) and VCAN (versican). Extracellular chemokines (CCL4, CXCL9, CXCL13), soluble checkpoint inhibitors (sPD-L1, sTIM3, s4-1BB), and soluble receptors (sIL-2R, sTNFRII) were decreased during remission but elevated after relapse.
Our data demonstrate that multiple tumor-intrinsic and -extrinsic factors are associated with T-cell suppression and BA relapse. Among these, TIGIT appears to be the central player given its elevated expression after BA relapse in not only CTLs but also MCL cells. The acquisition of TIGIT expression on tumor cells is MCL-specific and has not been reported in other CAR T-treated diseases. Together, our data suggest that co-targeting TIGIT may prevent CAR T relapses and thus promote long-term progression-free survival in MCL patients.
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