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:A novel lentiviral vector-based approach to generate chimeric antigen receptor T cells targeting Aspergillus fumigatus.
A novel lentiviral vector-based approach to generate chimeric antigen receptor T cells targeting Aspergillus fumigatus.
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侵袭性曲霉病(IA)是免疫功能低下患者中常见且致命的霉菌感染。由于IA的发病率和死亡率主要由免疫防御不良驱动,因此迫切需要辅助免疫疗法,如嵌合抗原受体(CAR)T细胞。
在此,我们提出了一种新方法,利用单克隆抗体AF-269-5的单链可变片段结构域和慢病毒载体系统生成烟曲霉(AF)-CAR-T 细胞。这些细胞成功靶向代表性临床和参考AF分离株的成熟菌丝,并引发细胞毒性效应分子和1型T细胞细胞因子的强效释放。
此外,由四名健康人类供者的外周血单个核细胞生成并经三种细胞因子刺激方案(IL-2、IL-2 + IL-21或IL-7 + IL-15)中任一种扩增的AF-CAR-T 细胞,在共培养18小时后显著抑制了AF-293的菌丝生长,并与免疫调节抗真菌剂卡泊芬净协同作用,控制菌丝生长达36小时。
此外,患有侵袭性肺曲霉病的环磷酰胺免疫抑制NSG小鼠接受两剂500万AF-CAR-T 细胞(AF感染后6小时和48小时)后,与接受非靶向对照T细胞的小鼠相比,在感染后第4天显示出显著降低的发病率(P < 0.001)和显著改善的7天生存率(P = 0.049),即使没有同时进行抗真菌化疗。
总之,我们开发了一种新型慢病毒策略,以获得具有高靶向效力的AF-CAR-T 细胞,在体外产生显著的抗AF活性,并在体内提供短期保护。
我们的方法在经过进一步改进和充分的临床前评估后,可作为未来抗真菌CAR-T 细胞疗法临床转化的重要踏脚石。重要性:侵袭性曲霉病(IA)仍然是血液系统恶性肿瘤患者和接受造血干细胞移植患者发病和死亡的一个可怕原因。尽管在过去30年中引入了若干新的具有抗曲霉活性的抗真菌药物,但在持续和严重免疫抑制背景下IA死亡率居高不下,痛苦地提醒人们,有效增强抗真菌免疫的治疗方法仍存在重大未满足需求。嵌合抗原受体(CAR)T细胞疗法在肿瘤医学中的成功,激励研究人员将这种方法转化用于机会性感染,包括IA。为了改进抗曲霉CAR-T 细胞疗法并提高其未来临床转化的可行性,我们在此开发并验证了一种新的基于抗体的CAR构建体和慢病毒转导方法,以加速生产对烟曲霉具有高靶向效力的CAR-T 细胞。
我们独特的方法可为未来基于CAR-T 细胞的抗真菌免疫疗法临床转化提供一个有前景的平台。
Invasive aspergillosis (IA) is a common and deadly mold infection in immunocompromised patients. As morbidity and mortality of IA are primarily driven by poor immune defense, adjunct immunotherapies, such as chimeric antigen receptor (CAR) T cells, are direly needed.
Here, we propose a novel approach to generate Aspergillus fumigatus (AF)-CAR T cells using the single-chain variable fragment domain of monoclonal antibody AF-269-5 and a lentiviral vector system. These cells successfully targeted mature hyphal filaments of representative clinical and reference AF isolates and elicited a potent release of cytotoxic effectors and type 1 T cell cytokines.
Furthermore, AF-CAR T cells generated from peripheral blood mononuclear cells of four healthy human donors and expanded with either of three cytokine stimulation regimens (IL-2, IL-2 + IL-21, or IL-7 + IL-15) significantly suppressed mycelial growth of AF-293 after 18 hours of co-culture and synergized with the immunomodulatory antifungal agent caspofungin to control hyphal growth for 36 hours.
Moreover, cyclophosphamide-immunosuppressed NSG mice with invasive pulmonary aspergillosis that received two doses of 5 million AF-CAR T cells (6 and 48 hours after AF infection) showed significantly reduced morbidity on day 4 post-infection ( P < 0. 001) and significantly improved 7-day survival ( P = 0. 049) compared with mice receiving non-targeting control T cells, even without concomitant antifungal chemotherapy.
In conclusion, we developed a novel lentiviral strategy to obtain AF-CAR T cells with high targeting efficacy, yielding significant anti-AF activity in vitro and short-term protection in vivo .
Our approach could serve as an important steppingstone for future clinical translation of antifungal CAR T-cell therapy after further refinement and thorough preclinical evaluation. IMPORTANCEInvasive aspergillosis (IA) remains a formidable cause of morbidity and mortality in patients with hematologic malignancies and those undergoing hematopoietic stem cell transplantation. Despite the introduction of several new Aspergillus -active antifungals over the last 30 years, the persisting high mortality of IA in the setting of continuous and profound immunosuppression is a painful reminder of the major unmet need of effective antifungal immune enhancement therapies.
The success of chimeric antigen receptor (CAR) T-cell therapy in cancer medicine has inspired researchers to translate this approach to opportunistic infections, including IA. Aiming to refine anti- Aspergillus CAR T-cell therapy and improve its feasibility for future clinical translation, we herein developed and validated a novel antibody-based CAR construct and lentiviral transduction method to accelerate the production of CAR T cells with high targeting efficacy against Aspergillus fumigatus .
Our unique approach could provide a promising platform for future clinical translation of CAR T-cell-based antifungal immunotherapy.
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