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:Stealth transgenes enable CAR-T cells to evade host immune responses.
Stealth transgenes enable CAR-T cells to evade host immune responses.
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这些数据共同提示,所设计的隐形转基因可能降低自体与异体细胞治疗产品的免疫原性。
嵌合抗原受体(CAR)T 细胞等过继细胞疗法改善了血液系统恶性肿瘤患者结局。目前 FDA 批准的 6 种 CAR-T 产品中,有 4 种在胞外结合结构域使用源自鼠单克隆抗体、基于 FMC63 的 CD19 单链可变片段。临床研究显示,患者会对自体 CAR-T 的非自身 CAR 成分或异基因 CAR-T 的供者特异抗原产生体液和细胞免疫应答,这可能限制 CAR-T 持久性和重复给药效果。
本研究采用一次性策略,通过表达病毒转运相关抗原加工转运体抑制剂(TAPi),同时降低抗原呈递及主要组织相容性复合体(MHC)I 类和 II 类表面表达,以避免工程化 T 细胞被排斥;同时加入靶向 MHC II 类转录激活因子(CIITA)的 shRNA 转基因。通过流式细胞术和混合淋巴细胞反应体外筛选最佳组合,并在白血病和淋巴瘤小鼠模型中验证。使用患者样本评估自体环境中的功能,并使用异基因小鼠模型评估异基因环境中的功能。
Epstein-Barr 病毒 TAPi 与靶向 CIITA 的 shRNA 联合,在降低 CD19“隐形”CAR-T 细胞表面 MHC I、II 类表达方面高效,同时保留体外和体内抗肿瘤功能。对既往接受自体 CD19 CAR-T 患者的 T 细胞开展混合淋巴细胞反应和 IFN-γ ELISpot 检测,证实表达隐形转基因的 CAR-T 可逃避异基因和自体抗 CAR 应答,体内实验也进一步验证该结果。值得注意的是,接受多次 CAR-T 输注的患者出现抗 CAR-T 细胞应答;体外采用含隐形转基因的自体 CAR 再刺激后,该应答减弱。
这些数据提示,所提出的隐形转基因可能降低自体和异基因细胞疗法的免疫原性。此外,患者数据表明,重复输注自体 FMC63 型 CD19 CAR-T 会显著增加抗 CAR-T 细胞应答。
Adoptive cell therapy, such as chimeric antigen receptor (CAR)-T cell therapy, has improved patient outcomes for hematological malignancies. Currently, four of the six FDA-approved CAR-T cell products use the FMC63-based CD19 single-chain variable fragment, derived from a murine monoclonal antibody, as the extracellular binding domain. Clinical studies demonstrate that patients develop humoral and cellular immune responses to the non-self CAR components of autologous CAR-T cells or donor-specific antigens of allogeneic CAR-T cells, which is thought to potentially limit CAR-T cell persistence and the success of repeated dosing.
In this study, we implemented a one-shot approach to prevent rejection of engineered T cells by simultaneously reducing antigen presentation and the surface expression of both Classes of the major histocompatibility complex (MHC) via expression of the viral inhibitors of transporter associated with antigen processing (TAPi) in combination with a transgene coding for shRNA targeting class II MHC transactivator (CIITA). The optimal combination was screened in vitro by flow cytometric analysis and mixed lymphocyte reaction assays and was validated in vivo in mouse models of leukemia and lymphoma. Functionality was assessed in an autologous setting using patient samples and in an allogeneic setting using an allogeneic mouse model.
The combination of the Epstein-Barr virus TAPi and an shRNA targeting CIITA was efficient and effective at reducing cell surface MHC classes I and II in CD19 'stealth' CAR-T cells while retaining in vitro and in vivo antitumor functionality. Mixed lymphocyte reaction assays and IFN ELISpot assays performed with T cells from patients previously treated with autologous CD19 CAR-T cells confirm that CAR T cells expressing the stealth transgenes evade allogeneic and autologous anti-CAR responses, which was further validated in vivo. Importantly, we noted anti-CAR-T cell responses in patients who had received multiple CAR-T cell infusions, and this response was reduced on in vitro restimulation with autologous CARs containing the stealth transgenes.
Together, these data suggest that the proposed stealth transgenes may reduce the immunogenicity of autologous and allogeneic cellular therapeutics. Moreover, patient data indicate that repeated doses of autologous FMC63-based CD19 CAR-T cells significantly increased the anti-CAR T cell responses in these patients.
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