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可开关 CAR-T 细胞的精准调控可实现更高安全性与更少 T 细胞耗竭

英文原题:Precise Control of Switchable Chimeric Antigen Receptor T Cells Allows Enhanced Safety and Less T Cell Exhaustion.

查看英文原题

Precise Control of Switchable Chimeric Antigen Receptor T Cells Allows Enhanced Safety and Less T Cell Exhaustion.

PubMed 2025/12/10(内容时间) bioRxiv

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中文摘要

嵌合抗原受体(CAR)-T细胞疗法在治疗血液系统恶性肿瘤方面取得了显著成功,但其临床应用仍受到安全性问题、持续性差以及由持续性受体信号驱动的T细胞耗竭的限制。尽管可切换CAR系统提供了外部控制,但大多数现有设计不可逆、呈二元性,或损害CAR-T 效力。

在此,我们介绍一种化学可切换CAR平台,能够对CAR-T 活性进行分级、可逆的调控,同时保留完整的治疗能力。使用工程化CAR-T 细胞,我们评估了药物控制的激活、细胞毒性和对CD19肿瘤细胞的细胞因子释放,并筛选了临床批准的NS3/4A抑制剂以确定最佳小分子控制器。与传统CAR-T 细胞相比,可切换CAR-T 细胞在OFF状态下表现出极低的背景活性,在无药物时阻止抗原驱动的激活和细胞因子释放。加入药物后,CAR表达迅速恢复,1小时内可检测到全长CAR,4小时达到约80%的最大表达。CAR表达的可逆抑制在恶性细胞被清除后保护了正常CD19 B细胞,解决了持续性CD19 CAR-T 活性可能导致B细胞发育不全、低丙种球蛋白血症和反复感染的临床难题。

此外,可切换CAR-T 细胞在肿瘤清除后表现出耗竭减少、持续性增强、CAR表达稳定以及优先向中央记忆分化。总之,这些发现确立了可切换CAR-T 系统作为下一代、可逆且临床兼容的CAR-T 平台。

展开英文摘要原文

Chimeric antigen receptor (CAR)-T cell therapies have achieved remarkable success in treating hematologic malignancies, yet their clinical utility remains limited by safety concerns, poor persistence, and T-cell exhaustion driven by continuous receptor signaling. Although switchable CAR systems offer external control, most existing designs are irreversible, binary, or compromising CAR-T potency.

Here, we introduce a chemically switchable CAR platform that enables graded, reversible regulation of CAR-T activity while retaining full therapeutic capacity. Using engineered CAR-T cells, we evaluate drug-controlled activation, cytotoxicity, and cytokine release against CD19 tumor cells and screened clinically approved NS3/4A inhibitors to identify optimal small-molecule controllers. Compared with conventional CAR-T cells, switchable CAR-T cells exhibited minimal background activity in the OFF state, preventing antigen-driven activation and cytokine release in the absence of drug.

Upon drug addition, CAR expression was rapidly restored, with full-length CAR detectable within 1 hour and ~80% of maximal expression achieved by 4 hours. Reversible suppression of CAR expression protected normal CD19 B cells once malignant cells were eliminated, addressing the clinical challenge of persistent CD19 CAR-T activity that can lead to B-cell aplasia, hypogammaglobulinemia, and recurrent infections.

Furthermore, switchable CAR-T cells displayed reduced exhaustion, enhanced persistence, stable CAR expression, and preferential central memory differentiation following tumor clearance.

Together, these findings establish the switchable CAR-T system as a next-generation, reversible, and clinically compatible CAR-T platform.

论文信息

作者
Zhang ZA、Herring L、Shwe TH、Hu Y、Song X、Cao W、Liu WR
单位
Institute of Biosciences and Technology and Department of Translational Medical Sciences, College of Medicine, Texas A&M University, Houston, TX 77030, USA.United States
文献类型
预印本
期刊
bioRxiv : the preprint server for biology2025 Dec 10
原文标识
PubMed 41427399 · DOI 10.64898/2025.12.07.692875