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:Engineering a controllable and reversible switch for CAR-based cellular immunotherapies via a genetic code expansion system.
Engineering a controllable and reversible switch for CAR-based cellular immunotherapies via a genetic code expansion system.
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我们的研究系统性地证明,BOCK 诱导的遗传密码扩展系统可有效且精准地调控 CAR 蛋白表达,并在体外和体内控制 CAR-T 细胞的抗肿瘤效应。
作为最有前景的过继细胞疗法之一,CAR-T 细胞疗法治疗血液系统肿瘤取得显著临床效果。然而,其仍面临细胞因子释放综合征、神经毒性和高频复发等治疗相关障碍,严重限制长期疗效且可能致命。因此,亟需提高CAR-T 疗法可控性和安全性的策略。
本研究工程化构建了一种基于遗传密码扩展的治疗系统,可在翻译水平响应相应非天然氨基酸,实现CAR蛋白的快速表达和调控。当缺少非天然氨基酸N-ε-[(叔丁氧羰基)]-L-赖氨酸(BOCK)时,CAR蛋白无法完成翻译,CAR-T 处于“关闭”状态;加入BOCK后,诱导CAR蛋白完整翻译,CAR-T“开启”。研究通过一系列体内外实验,评估BOCK诱导装置对CAR蛋白表达及CAR-T 细胞功能的调控能力。
研究首先验证BOCK诱导型遗传密码扩展系统可作为可控开关调节蛋白表达。随后证实,将该系统用于CAR-T 细胞时,BOCK可有效、精准控制CAR蛋白表达并诱导CAR信号活化。与肿瘤细胞共培养时,BOCK可按剂量调节CAR-T 细胞细胞毒性。NOG小鼠模型显示,存在BOCK时可激活CAR-T 细胞,产生强效抗肿瘤细胞毒作用。此外,研究还验证BOCK诱导型CAR装置可使NK细胞具备可控抗肿瘤活性,证实该装置具有普适性。
本研究系统证明,BOCK诱导型遗传密码扩展系统可有效、精准调节CAR蛋白表达,并控制CAR-T 细胞体内外抗肿瘤效应。这种可控、可逆的开关有望用于开发更有效、更安全且具临床应用潜力的CAR细胞免疫疗法。
As one of the most promising adoptive cell therapies, CAR-T cell therapy has achieved notable clinical effects in patients with hematological tumors. However, several treatment-related obstacles remain in CAR-T therapy, such as cytokine release syndrome, neurotoxicity, and high-frequency recurrence, which severely limit the long-term effects and can potentially be fatal. Therefore, strategies to increase the controllability and safety of CAR-T therapy are urgently needed.
In this study, we engineered a genetic code expansion-based therapeutic system to achieve rapid CAR protein expression and regulation in response to cognate unnatural amino acids at the translational level. When the unnatural amino acid N- -((tert-butoxy) carbonyl)-l-lysine (BOCK) is absent, the CAR protein cannot be completely translated, and CAR-T is "closed". When BOCK is present, complete translation of the CAR protein is induced, and CAR-T is "open". Therefore, we investigated whether the BOCK-induced device can control CAR protein expression and regulate CAR-T cell function using a series of in vitro and in vivo experiments.
First, we verified that the BOCK-induced genetic code expansion system enables the regulation of protein expression as a controllable switch. We subsequently demonstrated that when the system was combined with CAR-T cells, BOCK could effectively and precisely control CAR protein expression and induce CAR signaling activation. When incubated with tumor cells, BOCK regulated CAR-T cells cytotoxicity in a dose-dependent manner. Our results revealed that the presence of BOCK enables the activation of CAR-T cells with strong anti-tumor cytotoxicity in a NOG mouse model. Furthermore, we verified that the BOCK-induced CAR device provided NK cells with controllable anti-tumor activity, which confirmed the universality of this device.
Our study systematically demonstrated that the BOCK-induced genetic code expansion system effectively and precisely regulates CAR protein expression and controls CAR-T cell anti-tumor effects in vitro and in vivo. We conclude that this controllable and reversible switch has the potential for more effective, secure, and clinically available CAR-based cellular immunotherapies.
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