γδ T 细胞调节小细胞肺癌中的抗肿瘤免疫
γδ T cells modulate anti-tumor immunity in small cell lung cancer.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Effective γδ T-cell clinical therapies: current limitations and future perspectives for cancer immunotherapy.
Effective γδ T-cell clinical therapies: current limitations and future perspectives for cancer immunotherapy.
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γδ T 细胞是 T 淋巴细胞的一个独特亚群,兼具固有免疫细胞和适应性免疫细胞的特征,并参与肿瘤免疫监视。它们在很大程度上由于缺乏主要组织相容性(MHC)限制性以及能够分泌高水平具有众所周知抗肿瘤功能的细胞因子,成为传统 T 细胞免疫治疗的一个有吸引力的替代选择。迄今为止,与体外研究相比,使用基于 γδ T 细胞的免疫治疗针对一系列血液系统恶性肿瘤和实体瘤的临床试验取得的成功有限。γδ T 细胞疗法无法将其疗效从临床前研究转化到临床试验,这归因于多种因素的组合,例如常用于刺激这些细胞群体的 γδ T 细胞激动剂细胞摄取有限却依赖细胞内机制;输注的 γδ T 细胞显示出低水平的肿瘤浸润;以及对 γδ T 细胞抑制性受体的理解存在空白。本综述探讨了 γδ T 细胞临床与临床前表现之间的差异,并提供了克服这些障碍的可行途径。使用更直接的 γδ T 细胞激动剂、将这些激动剂封装到脂质纳米载体中以改善其药代动力学和药效学特征,以及使用联合疗法来克服检查点抑制和 T 细胞耗竭,是弥合临床前与临床成功之间差距的方法。鉴于克服这些局限性的能力,开发更具靶向性的 γδ T 细胞激动剂-检查点阻断联合疗法具有在临床试验中取得成功的潜力,而这一目标迄今为止仍难以实现。
γδ T cells are a unique subset of T lymphocytes, exhibiting features of both innate and adaptive immune cells and are involved with cancer immunosurveillance. They present an attractive alternative to conventional T cell-based immunotherapy due, in large part, to their lack of major histocompatibility (MHC) restriction and ability to secrete high levels of cytokines with well-known anti-tumour functions. To date, clinical trials using γδ T cell-based immunotherapy for a range of haematological and solid cancers have yielded limited success compared with in vitro studies. This inability to translate the efficacy of γδ T-cell therapies from preclinical to clinical trials is attributed to a combination of several factors, e. g.
γδ T-cell agonists that are commonly used to stimulate populations of these cells have limited cellular uptake yet rely on intracellular mechanisms; administered γδ T cells display low levels of tumour-infiltration; and there is a gap in the understanding of γδ T-cell inhibitory receptors. This review explores the discrepancy between γδ T-cell clinical and preclinical performance and offers viable avenues to overcome these obstacles.
Using more direct γδ T-cell agonists, encapsulating these agonists into lipid nanocarriers to improve their pharmacokinetic and pharmacodynamic profiles and the use of combination therapies to overcome checkpoint inhibition and T-cell exhaustion are ways to bridge the gap between preclinical and clinical success. Given the ability to overcome these limitations, the development of a more targeted γδ T-cell agonist-checkpoint blockade combination therapy has the potential for success in clinical trials which has to date remained elusive.
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