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:From spheroids to organoids: next-generation models for CAR-T cell therapy research in solid tumors.
From spheroids to organoids: next-generation models for CAR-T cell therapy research in solid tumors.
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CAR-T 细胞疗法是一种革命性的免疫疗法,涉及对T细胞进行基因修饰以表达靶向特定肿瘤抗原的嵌合受体。在过去十年中,随着五代CAR-T 细胞的开发,CAR-T 疗法取得了显著进展,每一代都引入了修饰以增强T细胞效力、持久性以及克服免疫逃逸机制的能力。CAR-T 细胞的制造工艺也不断发展,采用病毒载体转导或基于CRISPR的基因编辑、脂质纳米颗粒或转座子介导的方法等技术来优化其功能。
然而,针对实体瘤的CAR-T 疗法开发面临重大挑战,主要由于敌对的肿瘤微环境(TME),而传统的二维(2D)培养系统无法准确复制这一环境。本综述探讨了三维(3D)培养模型(包括球体和类器官)作为研究实体瘤背景下CAR-T 细胞的工具的潜力。与2D模型不同,3D系统提供了更具生理相关性的环境,更好地模拟了TME、肿瘤异质性以及CAR-T 细胞必须面对的免疫相互作用。
我们审视了2D与3D模型的优势和局限性,并讨论了生成球体/类器官的四种关键方法:直接细胞聚集、基于支架、微流控、器官芯片和生物打印,以及患者来源的器官型肿瘤方法。
此外,我们探讨了小鼠模型在临床前CAR-T 研究中的应用,强调其在研究CAR-T 细胞运输动力学、疗效和脱靶效应中的作用。尽管CAR-T 疗法在某些血液系统恶性肿瘤中已取得显著成功,但在研究CAR-T 对实体瘤的疗效方面,尤其是与TME相关的疗效,仍迫切需要改进的模型。2D模型仍是有价值的工具,但应结合3D模型和体内小鼠研究,以更准确地预测临床结局。随着我们向临床前和临床应用推进,持续开发和改进3D培养系统对于克服CAR-T 疗法在实体瘤中面临的独特挑战至关重要。
Chimeric Antigen Receptor T-cell (CAR-T) therapy is a revolutionary immunotherapy involving the genetic modification of T cells to express chimeric receptors targeting specific tumor antigens. Over the past decade, CAR-T therapy has significantly advanced with the development of five generations of CAR-T cells, each introducing modifications to enhance T cell efficacy, persistence, and the ability to overcome immune evasion mechanisms.
The manufacturing of CAR-T cells has also evolved, employing techniques such as viral vector transduction or CRISPR-based gene editing, lipid nanoparticle, or transposon mediated approaches, to optimize their function.
However, the development of CAR-T therapy for solid tumors faces significant challenges, primarily due to the hostile tumor microenvironment (TME), which traditional two-dimensional (2D) culture systems fail to accurately replicate.
This review explores the potential of three-dimensional (3D) culture models, including spheroids and organoids, as tools for studying CAR-T cells in the context of solid tumors. Unlike 2D models, 3D systems offer a more physiologically relevant environment, better mimicking the TME, tumor heterogeneity, and immune interactions which CAR-T cells must encounter.
We examine the advantages and limitations of 2D versus 3D models and discuss four key methods for generating spheroids/organoids: direct cell aggregation, scaffold-based, microfluidic, organs-on-chip and bioprinting, and patient-derived organotypic tumor approaches.
Moreover, we explore the use of murine models in preclinical CAR-T research, highlighting their role in studying the dynamics of CAR-T cell trafficking, efficacy, and off-target effects. While CAR-T therapy has shown impressive success in some hematological malignancies, there is still a critical need for improved models to study CAR-T efficacy against solid tumors, particularly in relation to the TME.
2D models remain a valuable tool but should be combined with 3D models and in vivo murine studies for more accurate clinical outcome predictions. As we advance toward preclinical and clinical applications, ongoing efforts to develop and refine 3D culture systems are essential for overcoming the unique challenges of CAR-T therapy in solid tumors.
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