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:LILRB4 represents a promising target for immunotherapy by dual targeting tumor cells and myeloid-derived suppressive cells in multiple myeloma.
我们的研究阐明了LILRB4是高危MM的理想生物标志物和有前景的免疫治疗靶点。
多发性骨髓瘤(MM)仍然是一种无法治愈的血液系统恶性肿瘤。尽管该疾病的治疗取得了巨大进展,但仍有约10%的患者预后极差,中位总生存期不足24个月。我们的研究旨在强调与疾病快速进展相关的关键机制,并为这些超高危患者提供新的治疗选择。我们利用单细胞转录组测序来剖析生存期不足2年(EM24)患者的特征性骨髓微环境。值得注意的是,与持久缓解的患者相比,EM24患者中观察到LILRB4高表达的未成熟浆细胞簇富集。该细胞簇表现出侵袭性增殖和耐药表型。高水平的LILRB4促进了MM的克隆形成和进展。在临床上,LILRB4的高表达与新诊断MM患者和复发/难治性MM患者的不良预后均相关。ATAC测序分析发现,显著的染色体可及性导致了MM细胞上LILRB4的升高。CRISPR-Cas9敲除LILRB4减轻了MM细胞的生长,抑制了髓源性抑制细胞(MDSC)的免疫抑制功能,并进一步挽救了MM微环境中T细胞的功能障碍。在EM24患者中观察到MDSC的浸润增加。因此,我们构建了一种创新的基于T细胞受体的CAR-T 细胞——LILRB4-STAR-T。细胞毒性实验表明,LILRB4-STAR-T细胞能有效消除肿瘤细胞并阻碍MDSC的功能。总之,我们的研究阐明了LILRB4是高危MM的理想生物标志物和有前景的免疫治疗靶点。LILRB4-STAR-T细胞免疫治疗对MM中的肿瘤细胞和免疫抑制性肿瘤微环境均具有应用前景。
Multiple myeloma (MM) remains an incurable hematologic malignancy. Despite tremendous advances in the treatment of this disease, about 10% of patients still have very poor outcomes with a median overall survival of less than 24 months. Our study aimed to underscore the critical mechanisms pertaining to rapid disease progression and provide novel therapeutic choices for these ultrahigh-risk patients. We utilized single-cell transcriptomic sequencing to dissect the characteristic bone marrow niche of patients who survived less than 2 years (EM24). Notably, enrichment of a LILRB4high pre-mature plasma-cell cluster was observed in EM24 patients compared to patients with durable remission. This cluster exhibited aggressive proliferation and a drug-resistance phenotype. High levels of LILRB4 promoted MM clonogenicity and progression. Clinically, high expression of LILRB4 was correlated with poor prognosis in both newly diagnosed MM patients and relapsed/ refractory MM patients. ATAC-sequencing analysis identified that pronounced chromosomal accessibility caused the elevation of LILRB4 on MM cells. CRISPR-Cas9 deletion of LILRB4 alleviated the growth of MM cells, inhibited the immunosuppressive function of myeloid-derived suppressive cells (MDSC), and further rescued T-cell dysfunction in the MM microenvironment. Greater infiltration of MDSC was observed in EM24 patients. We therefore generated an innovative T-cell receptor-based chimeric antigen receptor T cell, LILRB4-STAR-T. Cytotoxicity experiments demonstrated that LILRB4-STAR-T cells efficaciously eliminated tumor cells and impeded MDSC function. In conclusion, our study elucidates that LILRB4 is an ideal biomarker and promising immunotherapy target for high-risk MM. LILRB4-STAR-T-cell immunotherapy is promising against both tumor cells and the immunosuppressive tumor microenvironment in MM.
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