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:Unraveling the surface proteomic profile of multiple myeloma to reveal new immunotherapeutic targets and markers of drug resistance.
Unraveling the surface proteomic profile of multiple myeloma to reveal new immunotherapeutic targets and markers of drug resistance.
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细胞表面蛋白质组(surfaceome)构成患病细胞与局部微环境之间的界面。在癌症中,这一组成不仅决定肿瘤生物学特征,也是潜在治疗靶点和诊断标志物的重要来源。近期,我们描绘了血液系统恶性肿瘤多发性骨髓瘤的细胞表面蛋白质组。小分子药物可诱导骨髓瘤初始缓解,但耐药不可避免。靶向骨髓瘤表面抗原的新型免疫疗法,包括抗体药物和嵌合抗原受体(CAR)T细胞,可进一步延长生存;然而患者复发后仍需新的治疗方法。
因此,我们将糖蛋白细胞表面捕获(CSC)技术应用于一组多发性骨髓瘤细胞系,鉴定恶性浆细胞的关键表面蛋白特征。研究对浆细胞中丰度最高的表面蛋白进行表征,发现CD48是高密度抗原,适合用于基于亲合力的策略,以增强CAR-T 疗效。一线蛋白酶体抑制剂治疗后发生慢性耐药时,骨髓瘤细胞表面谱发生显著改变,包括CD50、CD361/EVI2B和CD53下调;对另一种一线药物来那度胺耐药,则导致CD33和CD45/PTPRC上调。相反,短期使用来那度胺会使表面抗原MUC-1上调,从而增强靶向MUC-1的CAR-T 细胞疗效。研究还整合蛋白质组和现有转录组数据,建立评分系统,对潜在单药免疫治疗靶点进行排序;值得关注的新靶点包括CCR10、TXNDC11和LILRB4。研究人员利用天然配体CCL27作为抗原识别结构域,开发了靶向CCR10的概念验证CAR-T 细胞。
最后,他们开发了微型化CSC方法,并应用于多发性骨髓瘤患者原代样本。总体而言,本研究为骨髓瘤领域提供了独特资源,也支持采用无偏倚的表面蛋白质组分析来发现新治疗靶点和耐药标志物,以改善患者结局。类似方法可直接拓展至其他肿瘤,甚至其他疾病来源的模型或组织。
The cell surface proteome ("surfaceome") serves as the interface between diseased cells and their local microenvironment. In cancer, this compartment is critical not only for defining tumor biology but also serves as a rich source of potential therapeutic targets and diagnostic markers. Recently, we profiled the surfaceome of the blood cancer multiple myeloma, an incurable plasma cell malignancy.
While available small molecule agents can drive initial remissions in myeloma, resistance inevitably occurs. Several new classes of immunotherapies targeting myeloma surface antigens, including antibody therapeutics and chimeric antigen receptor (CAR) T-cells, can further prolong survival.
However, new approaches are still needed for those who relapse.
We thus applied the glycoprotein cell surface capture (CSC) methodology to panel of multiple myeloma cell lines, identifying key surface protein features of malignant plasma cells.
We characterized the most abundant surface proteins on plasma cells, nominating CD48 as a high-density antigen favorable for a possible avidity-based strategy to enhance CAR-T efficacy. After chronic resistance to proteasome inhibitors, a first-line therapy, we found significant alterations in the surface profile of myeloma cells, including down-regulation of CD50, CD361/EVI2B, and CD53, while resistance to another first-line therapy, lenalidomide, drove increases in CD33 and CD45/PTPRC.
In contrast, short-term treatment with lenalidomide led to upregulation of the surface antigen MUC-1, thereby enhancing efficacy of MUC-1 targeting CAR-T cells. Integrating our proteomics data with available transcriptome datasets, we developed a scoring system to rank potential standalone immunotherapy targets. Novel targets of interest included CCR10, TXNDC11, and LILRB4.
We developed proof-of-principle CAR-T cells versus CCR10 using its natural ligand, CCL27, as an antigen recognition domain.
Finally, we developed a "miniaturized" version of the CSC methodology and applied it to primary myeloma patient specimens.
Overall, our work creates a unique resource for the myeloma community.
This study also supports unbiased surface proteomic profiling as a fruitful strategy for identifying new therapeutic targets and markers of drug resistance, that could have utility in improving myeloma patient outcomes. Similar approaches could be readily applied to additional tumor types or even models/tissues derived from other diseases.
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