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:C-reactive protein impairs immune response of CD8(+) T cells via FcγRIIb-p38MAPK-ROS axis in multiple myeloma.
C-reactive protein impairs immune response of CD8(+) T cells via FcγRIIb-p38MAPK-ROS axis in multiple myeloma.
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我们发现,CRP 通过 Fc RIIb-p38MAPK-ROS 信号通路损害 CD8⁺ T 细胞的免疫反应。
C反应蛋白(CRP)是人体典型急性期蛋白,可调节免疫细胞。多发性骨髓瘤(MM)患者血清CRP水平升高,与MM细胞增殖和骨破坏相关,但其对MM中T淋巴细胞的直接影响尚未阐明。
利用公开数据集分析CRP水平与MM中免疫细胞浸润及CD8+ T细胞细胞毒评分的相关性。体外实验中,以反复冻融的骨髓瘤细胞系作为肿瘤抗原,负载至HLA-A*0201阳性健康供者来源树突状细胞(DC),再用这些DC刺激相应供者的T淋巴细胞,获得MM特异性细胞毒性T细胞(MM-CTL)。采用编码抗BCMA单链可变片段的慢病毒转染,制备靶向B细胞成熟抗原(BCMA)的CAR-T。健康对照T细胞、MM-CTL和BCMA CAR-T 细胞均暴露于CRP,并检测其增殖、细胞毒性及免疫表型;同时检测阻断FcγRIIb前后CRP与T细胞结合能力、p38丝裂原活化蛋白激酶(MAPK)通路及其下游分子。体内实验采用普通C57BL/6J小鼠及Vk*MYC骨髓瘤模型验证CRP对T细胞的影响。
CRP水平与MM中CD8+ T细胞浸润和细胞毒评分均呈负相关。体外实验显示,CRP以剂量依赖方式抑制T细胞增殖、削弱细胞毒活性,并上调CD8+ T细胞衰老标志物;体内实验也证实CRP具有抑制CD8+ T细胞的作用。CRP可结合CD8+ T细胞,主要结合初始型T细胞亚群;阻断FcγRIIb后结合显著降低。此外,CRP会增加CD8+ T细胞中p38 MAPK磷酸化、活性氧及氧化型谷胱甘肽水平。
CRP可通过FcγRIIb-p38 MAPK-ROS信号通路损害CD8+ T细胞免疫应答。本研究加深了对CRP在抗骨髓瘤免疫中作用的认识,并为MM未来免疫治疗提供启示。
C-reactive protein (CRP) is a prototypical acute phase protein in humans with the function of regulating immune cells. Serum CRP levels are elevated in multiple myeloma (MM), associated with MM cell proliferation and bone destruction. However, its direct effects on T lymphocytes in MM have not been elucidated.
Public data sets were used to explore the correlation of CRP levels with immune cell infiltration and cytotoxicity score of CD8 + T cells in MM. In vitro, repeated freeze-thaw myeloma cell lines were taken as tumor antigens to load dendritic cells (DCs) derived from HLA-A*0201-positive healthy donors. MM-specific cytotoxic T cells (MM-CTL) were obtained from T lymphocytes of the corresponding donors pulsed with these DCs. B-cell maturation antigen (BCMA)-targeted chimeric antigen receptor (CAR)-T cells were manipulated by transfecting with lentivirus encoding an anti-BCMA single-chain variable fragment. Then T cells from healthy controls, MM-CTLs and BCMA CAR-T cells were exposed to CRP and analyzed for cell proliferation, cytotoxicity, immunophenotypes. CRP binding capacity to T cells before and after Fc gamma receptors IIb (Fc RIIb) blockage, p38 mitogen-activated protein kinase (MAPK) pathway and the downstream molecules were also detected. In vivo, both normal C57BL/6J mice and the Vk*MYC myeloma mouse models were applied to confirm the impact of CRP on T cells.
CRP levels were negatively correlated with cell-infiltration and cytotoxicity score of CD8 + T cells in MM. In vitro experiments showed that CRP inhibited T-cell proliferation in a dose-dependent manner, impaired the cytotoxic activity and upregulated expression of senescent markers in CD8 + T cells. In vivo results validated the suppressive role of CRP in CD8 + T cells. CRP could bind to CD8 + T cells, mainly to the na ve T subset, while the binding was dramatically decreased by Fc RIIb blockage. Furthermore, CRP resulted in increased phosphorylation of p38 MAPK, elevated levels of reactive oxygen species and oxidized glutathione in CD8 + T cells.
We found that CRP impaired immune response of CD8 + T cells via Fc RIIb-p38MAPK-ROS signaling pathway. The study casted new insights into the role of CRP in anti-myeloma immunity, providing implications for future immunotherapy in MM.
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