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:Harnessing nutrient scarcity for enhanced CAR-T-cell potency and safety in solid tumors.
Harnessing nutrient scarcity for enhanced CAR-T-cell potency and safety in solid tumors.
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尽管取得显著进展,嵌合抗原受体(CAR)T细胞疗法治疗实体瘤的效果仍有限。关键挑战包括靶向相关毒性、靶外毒性,以及CAR-T 细胞在肿瘤微环境中功能下降;该环境常存在氨基酸匮乏等因素引起的代谢应激。活化转录因子4(ATF4)及其上游调控因子GCN2在CD4+和CD8+ T细胞代谢重编程与功能维持中发挥关键作用。包括氨基酸缺乏在内的多种细胞应激信号均可激活ATF4。尽管ATF4活化可能与T细胞功能障碍相关,但其在应激适应中的作用也提供了治疗干预机会,尤其是针对T细胞耗竭这一重大挑战的肿瘤微环境。
本研究开发了一种利用CAR-T 细胞GCN2–ATF4轴的策略。我们采用氨基酸依赖性诱导启动子,使其在肿瘤微环境氨基酸匮乏时触发ATF4依赖的基因表达,从而调节T细胞中的CAR表达。体外及小鼠异种移植模型结果显示,该系统有望有效将CAR表达限制在肿瘤部位。这一靶向策略不仅通过减少靶外活性提高安全性,也通过减轻耗竭增强CAR-T 细胞适能。
我们验证了这一可受病理生理状态调控的实体瘤CAR表达系统,解决现有CAR-T 疗法的关键局限,并为治疗实体恶性肿瘤开辟创新策略。
Despite significant advancements, the effectiveness of chimeric antigen receptor (CAR)-T-cell-based therapies in solid tumors remains limited. Key challenges include on-target effects, off-tumor toxicity and reduced CAR-T-cell function within the tumor microenvironment, which is often characterized by metabolic stress triggered by factors such as amino acid scarcity. Activating transcription factor-4 (ATF4) and its upstream regulator GCN2 play crucial roles in the metabolic reprogramming and functionality of CD4 + and CD8 + T cells.
ATF4 can be activated by various cellular stress signals, including amino acid deprivation. While ATF4 activation may be associated with T-cell dysfunction, its role in stress adaptation presents an opportunity for therapeutic intervention-particularly in the tumor microenvironment, where T-cell exhaustion is a major challenge. In this study, we developed a strategy to harness the GCN2 ATF4 axis in CAR-T cells.
We employed an amino acid-dependent inducible promoter, which triggers ATF4-dependent gene expression to regulate CAR expression in T cells under conditions of amino acid scarcity within the tumor microenvironment. In vitro and murine xenograft models demonstrate the potential of this system to effectively restrict CAR expression to the tumor site.
This targeted strategy not only enhances safety by minimizing off-tumor activity but also CAR-T-cell fitness by reducing exhaustion. By validating this pathophysiologically regulatable CAR expression system for solid tumors, our findings address key limitations of current CAR-T-cell therapies and pave the way for innovative strategies targeting solid malignancies.
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