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:Organoid models: reshaping the paradigm for precision development and evaluation of CAR-T cell therapies.
Organoid models: reshaping the paradigm for precision development and evaluation of CAR-T cell therapies.
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CAR-T(CAR-T)细胞疗法在血液系统恶性肿瘤中取得了变革性成功;然而,其向实体瘤的转化仍受到肿瘤异质性、免疫抑制性微环境以及诸如on-target/off-tumor毒性等安全性问题的严重限制。造成这些挑战的一个主要因素是缺乏能够忠实再现人类肿瘤结构和肿瘤-免疫相互作用的临床前模型。传统的二维细胞培养和动物模型往往无法预测在患者中观察到的CAR-T 疗效、耐药性和毒性。类器官技术,特别是患者来源类器官(PDOs)和免疫整合类器官系统,已成为弥合这一转化差距的下一代平台。通过保留患者特异性的遗传、表型和空间异质性,类器官提供了一个生理相关且可扩展的系统,用于在类人肿瘤环境中探究CAR-T 细胞行为。肿瘤-免疫共培养、血管化类器官和微流控类器官芯片平台的最新进展,进一步扩展了其在动态评估CAR-T 浸润、细胞毒性、细胞因子释放和适应性耐药机制方面的效用。在这篇综述中,我们全面审视了基于类器官的模型如何重塑CAR-T 开发流程,涵盖靶点发现与验证、功能性疗效评估、安全性分析以及联合治疗优化。
我们进一步讨论了类器官作为患者特异性“化身”用于个性化CAR-T 选择和反应预测的新兴应用。最后,我们强调了当前的技术局限性以及实现临床转化所需的未来生物工程方向。
总体而言,类器官平台是加速下一代CAR-T 细胞疗法精准开发、推进与人体相关免疫肿瘤学研究的变革性工具。
Chimeric antigen receptor T (CAR-T) cell therapy has achieved transformative success in hematological malignancies; however, its translation to solid tumors remains severely limited by tumor heterogeneity, immunosuppressive microenvironments, and safety concerns such as on-target/off-tumor toxicity. A major contributor to these challenges is the lack of preclinical models capable of faithfully recapitulating human tumor architecture and tumor-immune interactions. Conventional two-dimensional cell cultures and animal models frequently fail to predict CAR-T efficacy, resistance, and toxicity observed in patients. Organoid technology, particularly patient-derived organoids (PDOs) and immune-integrated organoid systems, has emerged as a next-generation platform that bridges this translational gap.
By preserving patient-specific genetic, phenotypic, and spatial heterogeneity, organoids provide a physiologically relevant and scalable system for interrogating CAR-T cell behavior in human-like tumor contexts. Recent advances in tumor-immune co-culture, vascularized organoids, and microfluidic organoid-on-a-chip platforms have further expanded their utility for dynamic assessment of CAR-T infiltration, cytotoxicity, cytokine release, and adaptive resistance mechanisms.
In this review, we comprehensively examine how organoid-based models are reshaping the CAR-T development pipeline, spanning target discovery and validation, functional efficacy assessment, safety profiling, and optimization of combination therapies.
We further discuss emerging applications of organoids as patient-specific "avatars" for personalized CAR-T selection and response prediction.
Finally, we highlight current technical limitations and future bioengineering directions required to enable clinical translation. Collectively, organoid platforms represent a transformative tool for accelerating precision development of next-generation CAR-T cell therapies and advancing human-relevant immuno-oncology research.
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