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恒定自然杀伤 T 细胞在癌症免疫治疗中的应用:基于脂质的调控、纳米技术与转化进展

英文原题:Invariant Natural Killer T Cells in Cancer Immunotherapy: Lipid-Based Modulation, Nanotechnology, and Translational Advances.

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Invariant Natural Killer T Cells in Cancer Immunotherapy: Lipid-Based Modulation, Nanotechnology, and Translational Advances.

PubMed 2026/03/10(内容时间) Int J Mol Sci Q1 · IF 5.6(JCR 2025)

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研究概要

纳米技术、CAR 工程和合理联合方法的融合,使基于 iNKT 细胞的疗法成为一种有前景的下一代免疫治疗策略。

中文摘要

恒定自然杀伤T(iNKT)细胞是一种独特的淋巴细胞亚群,通过识别由CD1d提呈的糖脂抗原,连接固有免疫与适应性免疫。在被α-半乳糖神经酰胺(α-GalCer)等配体激活后,iNKT细胞迅速分泌包括IFN-γ和TNF-α在内的细胞因子,从而激活树突状细胞、自然杀伤(NK)细胞和细胞毒性T淋巴细胞(CTL),促进抗肿瘤免疫。尽管具有治疗前景,但临床转化一直受到α-GalCer快速清除、反复刺激后诱导iNKT细胞无反应性以及免疫抑制性肿瘤微环境(TME)的限制。脂质工程纳米颗粒系统的最新进展通过提高配体稳定性、增强抗原提呈细胞靶向性以及实现可控释放来应对这些挑战,从而维持Th1偏向性激活并减少无反应性。脂质体和聚合物基纳米制剂可提高生物利用度并促进更持久的IFN-γ介导反应。与此同时,嵌合抗原受体(CAR)工程化iNKT细胞在保留固有CD1d限制性免疫调节功能的同时,提供抗原特异性肿瘤靶向,在早期研究中显示出令人鼓舞的安全性和疗效。联合策略进一步加强了基于iNKT细胞的免疫治疗。与化疗、免疫检查点抑制剂如抗PD-1和抗CTLA-4以及细胞因子支持相结合,可增强效应细胞激活、抵消TME诱导的抑制并改善治疗结局。然而,挑战仍然存在,包括给药方案优化、脱靶免疫激活的控制、可规模化生产以及长期安全性评估。总体而言,纳米技术、CAR工程和合理联合方法的融合,使基于iNKT细胞的疗法成为一种有前景的下一代免疫治疗策略。递送系统、基因工程平台和转化方案的持续改进,可能实现持久的免疫重编程,并改善耐药性和免疫抑制性癌症的临床结局。

展开英文摘要原文

Invariant natural killer T (iNKT) cells are a unique lymphocyte subset that bridge innate and adaptive immunity through recognition of glycolipid antigens presented by CD1d. Upon activation by ligands such as α-galactosylceramide (α-GalCer), iNKT cells rapidly secrete cytokines, including IFN-γ and TNF-α, thereby activating dendritic cells, natural killer (NK) cells, and cytotoxic T lymphocytes (CTLs) to promote antitumor immunity. Despite their therapeutic promise, clinical translation has been limited by rapid α-GalCer clearance, induction of iNKT cell anergy following repeated stimulation, and the immunosuppressive tumor microenvironment (TME). Recent advances in lipid-engineered nanoparticle systems offer solutions to these challenges by improving ligand stability, enhancing antigen-presenting cell targeting, and enabling controlled release that sustains Th1-biased activation while reducing anergy. Liposomal and polymer-based nano-formulations enhance bioavailability and promote more durable IFN-γ-mediated responses. In parallel, chimeric antigen receptor (CAR)-engineered iNKT cells provide antigen-specific tumor targeting while preserving intrinsic CD1d-restricted immunomodulatory functions, demonstrating encouraging safety and efficacy in early-phase studies. Combination strategies further strengthen iNKT-based immunotherapy. Integration with chemotherapy, immune checkpoint inhibitors such as anti-PD-1 and anti-CTLA-4, and cytokine support enhances effector activation, counteracts TME-induced suppression, and improves therapeutic outcomes. However, challenges remain, including optimization of dosing, control of off-target immune activation, scalable manufacturing, and long-term safety evaluation. Collectively, the convergence of nanotechnology, CAR engineering, and rational combination approaches establishes iNKT cell-based therapy as a promising next-generation immunotherapeutic strategy. Continued refinement of delivery systems, genetic engineering platforms, and translational protocols may enable durable immune reprogramming and improved clinical outcomes in resistant and immunosuppressive cancers.

论文信息

作者
Aloliqi AA、Alnuqaydan AM、Alshebremi M、Khan A、Khan MA
单位
Department of Basic Health Sciences, College of Applied Medical Sciences, Qassim University, Buraydah 51452, Saudi Arabia.Saudi Arabia
文献类型
综述
期刊
International journal of molecular sciences2026 Mar 10
原文标识
PubMed 41898393 · DOI 10.3390/ijms27062528