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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Precise control of switchable chimeric antigen receptor T cells allows enhanced safety and less T cell exhaustion.
Precise control of switchable chimeric antigen receptor T cells allows enhanced safety and less T cell exhaustion.
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这些发现确立了 CSN CAR 作为一种可逆且可调控的可切换 CAR-T 平台,由临床批准的 NS3/4A 抑制剂实现,支持对 CAR 活性的可控调节,具有提高 CAR-T 细胞治疗精准性和安全性的潜在应用。
嵌合抗原受体(CAR)T细胞疗法治疗血液系统恶性肿瘤已取得显著成功,但安全性顾虑、持久性有限及受持续受体信号驱动的T细胞耗竭仍限制其临床应用。可切换CAR设计可提供外部控制,但许多已报道系统不可逆、严格二元化,或会削弱CAR-T 效力。
我们设计并优化了一种化学可切换CAR平台(CSN CAR),通过控制全长CAR的表面表达,以药理方式调节抗原结合。研究在CAR构建体中嵌入NS3蛋白酶模块,使药物依赖性稳定完整CAR在T细胞表面的表达。利用工程化CAR-T 细胞,通过流式细胞术和ELISA体外定量评估药物控制的活化、对CD19肿瘤细胞的细胞毒性及细胞因子释放;进一步在CAR-HEK和CAR-T 细胞中筛选已获临床批准的NS3/4A抑制剂,确定最佳小分子调控剂。建立慢性刺激模型,在体外评估CAR-T 持久性和耗竭相关表型。
CSN CAR-T 细胞可精确且以剂量依赖方式调控CAR表面密度、细胞因子生成及细胞毒性。在关闭状态下,可切换CAR-T 细胞基础活性极低;在本实验条件下,无药物时抗原驱动的活化及细胞因子释放减少。加入药物后,1小时内可检测到完整的表面CAR,4小时达到观察到的CAR表达峰值约80%。在靶细胞减少后,可逆抑制CAR表达,体外降低对正常CD19阳性B细胞的细胞毒作用,支持其作为减轻持续性靶向正常组织活性的潜在策略。慢性刺激下,可切换CAR-T 细胞耗竭相关标志物减少、CAR表达更稳定,并优先向中央记忆表型分化。
综上,CSN CAR是一种由已获临床批准的NS3/4A抑制剂控制的可逆、可调节CAR-T 平台,可对CAR活性进行可控调节,有望提高CAR-T 疗法的精准性和安全性。
Chimeric antigen receptor (CAR)-T cell therapies have achieved remarkable success in hematologic malignancies, yet their clinical utility remains limited by safety concerns, limited persistence, and T-cell exhaustion driven by continuous receptor signaling. While switchable CAR designs provide external control, many reported systems are irreversible, strictly binary, or compromise CAR-T potency.
We engineered an optimized chemically switchable CAR platform (CSN CAR) that pharmacologically regulates antigen engagement by controlling the surface expression of the full-length CAR. An NS3 protease module was embedded within the CAR construct to enable drug-dependent stabilization of intact CAR on T cells. Using engineered CAR-T cells, we quantified drug-controlled activation, cytotoxicity, and cytokine release against CD19 tumor cells by flow cytometry and ELISA in vitro. We further screened clinically approved NS3/4A inhibitors in CAR-HEK and CAR-T cells to identify optimal small-molecule controllers. A chronic stimulation model was established to assess CAR-T persistence and exhaustion-associated phenotypes in vitro.
CSN CAR-T cells enabled precise, dose-dependent regulation of CAR surface density, cytokine production, and cytotoxicity. In the OFF state, switchable CAR-T cells showed minimal basal activity, consistent with reduced antigen-driven activation and cytokine release in the absence of drug in the experimental conditions. Upon drug addition, intact surface CAR was detectable within 1 h, reaching ~ 80% of peak observed CAR expression by 4 h. Reversible suppression of CAR expression enabled attenuation of cytotoxicity toward normal CD19 B cells in vitro after target-cell reduction, supporting a potential strategy to mitigate prolonged on-target/off-tumor activity. Under chronic stimulation, switchable CAR-T cells exhibited reduced exhaustion-associated markers, more stable CAR expression, and preferential differentiation toward a central memory phenotype.
Together, these findings establish CSN CAR as a reversible and tunable switchable CAR-T platform enabled by clinically approved NS3/4A inhibitors, supporting controllable modulation of CAR activity with potential applications for improving the precision and safety of CAR-T cell therapy.
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