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:Nanoinjection: A Platform for Innovation in Ex Vivo Cell Engineering.
Nanoinjection: A Platform for Innovation in Ex Vivo Cell Engineering.
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在人类细胞中,为确保细胞健康功能和行为,细胞内物质进入及治疗性货物运输受到严格限制;治疗货物包括基因编辑工具(如 CRISPR-Cas9 和转座子)、核酸(如 DNA、mRNA 和 siRNA)、肽及蛋白质(如酶和抗体)。嵌合抗原受体(CAR)T 细胞用于体外免疫疗法的递送机制正体现了这一原则。特别是,CAR-T 细胞的临床成功确立了一种新的标准治疗,并治愈了以往无法治愈的血液癌症。该方法通常通过电穿孔(EP)和慢病毒,将治疗性 CAR 基因导入患者自身 T 细胞,再经工程化改造使其表达 CAR,以靶向并对抗血液癌症。关键难点在于如何对细胞进行基因操作而不造成不可逆损伤或功能丧失,同时尽量降低制造复杂性、安全顾虑和成本,并确保最终 CAR-T 细胞产品的疗效。纳米注射是一种采用纳米针(NN)进行细胞内递送的新兴物理途径,可高效穿越包括原代人 T 细胞在内多种细胞的质膜。该方法造成的扰动、侵入性和毒性很小,且效率和通量高,可实现较高空间与时间分辨率。
纳米注射有望以极少或不损伤货物的方式,大幅改善多种治疗性货物的递送;纳米注射平台可使这些货物在细胞内按预期发挥功能。纳米注射平台的适应性如今已在免疫调节、力学信号转导、细胞状态取样(纳米活检)、受控细胞内探查等方面带来重大优势;本文重点关注细胞内递送及其在体外细胞工程中的应用。机械纳米注射通常直接对细胞膜施加机械力,为改善纳米针引发的膜扰动及遗传货物向目标细胞(贴壁或悬浮细胞)的后续转运提供直接途径。相比之下,电活性纳米注射通过将纳米针与电场耦合进行控制,是一种在纳米尺度激活电穿孔(EP)的新方法,可显著降低施加于细胞的电压,从而减少 EP 后细胞和货物损伤,并克服传统整体 EP 的诸多局限。纳米注射不仅仅是一种技术,也是一种体外细胞工程方法,有望赋予细胞新的强大功能,例如制备未来 CAR-T 细胞技术所需的 CAR-T 细胞。本文首先讨论纳米针装置的制造(第 2 节),随后介绍纳米注射介导的细胞工程(第 3 节)、纳米注射机制和接口方法(第 4 节),以及利用纳米注射制备功能性 CAR-T 细胞的新兴应用(第 5 节)。
In human cells, intracellular access and therapeutic cargo transport, including gene-editing tools (e. g. , CRISPR-Cas9 and transposons), nucleic acids (e. g. , DNA, mRNA, and siRNA), peptides, and proteins (e. g. , enzymes and antibodies), are tightly constrained to ensure healthy cell function and behavior. This principle is exemplified in the delivery mechanisms of chimeric antigen receptor (CAR)-T cells for ex-vivo immunotherapy.
In particular, the clinical success of CAR-T cells has established a new standard of care by curing previously incurable blood cancers. The approach involves the delivery, typically via the use of electroporation (EP) and lentivirus, of therapeutic CAR genes into a patient's own T cells, which are then engineered to express CARs that target and combat their blood cancer.
But the key difficulty lies in genetically manipulating these cells without causing irreversible damage or loss of function all the while minimizing complexities of manufacturing, safety concerns, and costs, and ensuring the efficacy of the final CAR-T cell product. Nanoinjection the process of intracellular delivery using nanoneedles (NNs) is an emerging physical delivery route that efficiently negotiates the plasma membrane of many cell types, including primary human T cells. It occurs with minimal perturbation, invasiveness, and toxicity, with high efficiency and throughput at high spatial and temporal resolutions. Nanoinjection promises greatly improved delivery of a broad range of therapeutic cargos with little or no damage to those cargos. A nanoinjection platform allows these cargos to function in the intracellular space as desired.
The adaptability of nanoinjection platforms is now bringing major advantages in immunomodulation, mechanotransduction, sampling of cell states (nanobiopsy), controlled intracellular interrogation, and the primary focus of this account intracellular delivery and its applications in ex vivo cell engineering. Mechanical nanoinjection typically exerts direct mechanical force on the cell membrane, offering a straightforward route to improve membrane perturbation by the NNs and subsequent transport of genetic cargo into targeted cell type (adherent or suspension cells).
By contrast, electroactive nanoinjection is controlled by coupling NNs with an electric field a new route for activating electroporation (EP) at the nanoscale allowing a dramatic reduction of the applied voltage to a cell and so minimizing post-EP damage to cells and cargo, and overcoming many of the limitations of conventional bulk EP.
Nanoinjection transcends mere technique; it is an approach to cell engineering ex vivo, offering the potential to endow cells with new, powerful features such as generating chimeric antigen receptor (CAR)-T cells for future CAR-T cell technologies.
We first discuss the manufacturing of NN devices (Section 2), then delve into nanoinjection-mediated cell engineering (Section 3), nanoinjection mechanisms and interfacing methodologies (Section 4), and emerging applications in using nanoinjection to create functional CAR-T cells (Section 5).
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