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:Reprogramming CAR T cells across genetic, epigenetic, metabolic and microenvironmental axes to improve efficacy and safety in cancer and autoimmune disease.
Reprogramming CAR T cells across genetic, epigenetic, metabolic and microenvironmental axes to improve efficacy and safety in cancer and autoimmune disease.
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CAR-T 细胞疗法已在多种血液系统恶性肿瘤中实现持久缓解,但其在实体瘤中的活性以及向免疫介导疾病的拓展仍受制于反复出现的失败模式:抗原特异性不完美、转运不足、慢性刺激下进行性功能障碍,以及毒性炎症综合征。CAR 为基础的免疫“重置”在难治性自身免疫病中的早期报道同时放大了希望与风险,因为可接受的风险低于肿瘤,而且“在靶”效应若造成长期免疫缺陷,在临床上仍可能不可接受。本综述将 CAR-T 优化视为跨遗传回路、表观遗传状态、代谢和组织微环境的多层重编程。
我们认为,许多备受推崇的单层升级(更强的信号传导、检查点删除、组成性细胞因子装甲)往往以一种失败模式换取另一种失败模式。相反,同时提高疗效和安全性最可信的路径是有纪律的、由失败模式驱动的设计:(i) 可编程抗原逻辑和可滴定激活以减少组织外损伤;(ii) 表观遗传编程,在不移除必要约束的情况下保留可再生的功能状态;(iii) 在生理应激条件下评估的代谢重编程;以及 (iv) 微环境感知策略,优先考虑可及性和局部控制,而非蛮力效力。
CAR T-cell therapy has delivered durable remissions in several hematologic cancers, yet activity in solid tumors and extension to immune-mediated diseases remain constrained by recurring failure modes: imperfect antigen specificity, inadequate trafficking, progressive dysfunction under chronic stimulation, and toxic inflammatory syndromes.
Early reports of CAR-based immune "resets" in refractory autoimmune disease amplify both promise and stakes, because acceptable risk is lower than in cancer and "on-target" effects may still be clinically unacceptable if they create long-term immunodeficiency. This review treats CAR T optimization as multi-layer reprogramming across genetic circuitry, epigenetic state, metabolism, and the tissue microenvironment.
We argue that many celebrated single-layer upgrades (stronger signaling, checkpoint deletion, constitutive cytokine armoring) often trade one failure mode for another.
Instead, the most credible path to simultaneously improving efficacy and safety is disciplined, failure-mode-driven design: (i) programmable antigen logic and titratable activation to reduce off-tissue damage; (ii) epigenetic programming that preserves renewable functional states without removing essential restraints; (iii) metabolic rewiring evaluated under physiologic stress conditions; and (iv) microenvironment-aware strategies that prioritize access and local control over brute-force potency.
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