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铁死亡与 cGAS-STING 通路进入精准纳米免疫诊疗:逆转肝细胞癌耐药性的机制范式

英文原题:Ferroptosis and the cGAS-STING pathway into precision nano-immuno-theranostics: A mechanistic paradigm for reversing drug resistance in hepatocellular carcinoma.

PubMed 2025/11/12(内容时间) Drug Resist Updat Q1 · IF 22(JCR 2025)

研究概要

肝细胞癌(HCC)是一项严峻的治疗挑战,其固有和获得性耐药机制严重限制了治疗效果,并导致患者预后极差。

中文摘要

肝细胞癌(HCC)是一项艰巨的治疗挑战,其固有和获得性耐药机制严重限制了治疗效果,并导致患者预后极差。这篇综合性综述探讨了精准纳米免疫诊疗学这一新兴范式,特别聚焦于铁死亡-STING偶联平台作为克服HCC多维耐药性的创新策略。本研究系统分析了五种关键纳米技术方法:用于双载物递送的脂质纳米颗粒(LNPs)、GPC3靶向免疫治疗平台、多模态诊疗系统、声动力治疗构建体以及空间转录组学指导的精准设计。铁死亡诱导——一种独特适用于富铁肝脏微环境的铁依赖性细胞死亡机制——与cGAS-STING通路激活的战略性整合,建立了一个双向协同环路,其中铁死亡性肿瘤死亡产生内源性STING激活,而后者反过来使癌细胞对铁死亡敏感。这种双靶向方法将免疫学上“冷”的HCC肿瘤转化为炎症性“热”治疗靶点,在临床前模型中实现了78-91%的肿瘤生长抑制和CD8+TIL(肿瘤浸润淋巴细胞)增加4.2-4.8倍,大幅超过传统单一疗法(索拉非尼:45-52%;检查点抑制剂:35-48%)。在机制上,铁死亡-STING偶联同时解决三种关键耐药模式:通过GPX4/NRF2轴崩溃克服化疗耐药,通过肿瘤微环境重编程克服免疫耐药,以及通过破坏HIF-1α/STAT3介导的适应性来克服代谢耐药。尽管临床前证据令人信服,但向临床实践的转化仍面临诸多重大挑战,包括生产可扩展性、联合纳米技术产品的监管审批路径、生物标志物驱动的患者分层以及长期安全性评估。本综述批判性地评估了当前的纳米免疫诊疗平台,提供了与现有HCC疗法的定量比较分析,识别了关键的转化差距,并提出了涵盖适应性监管框架、连续制造创新和精准医学整合的战略解决方案。纳米技术、免疫疗法和多组学分析的融合为开发下一代HCC治疗药物提供了前所未有的机遇,这些药物能够瓦解这一侵袭性恶性肿瘤所特有的复杂耐药网络,预计首次人体试验将在2025-2027年进行,潜在的监管审批轨迹将延伸至2030年。

展开英文摘要原文

Hepatocellular carcinoma (HCC) represents a formidable therapeutic challenge, with intrinsic and acquired resistance mechanisms severely limiting treatment efficacy and contributing to dismal patient outcomes. This comprehensive review examines the emerging paradigm of precision nano-immuno-theranostics, specifically focusing on ferroptosis-STING coupled platforms as innovative strategies for overcoming multifaceted HCC resistance. This study systematically analyzes five key nanotechnology approaches: lipid nanoparticles (LNPs) for dual-cargo delivery, GPC3-targeted immunotherapeutic platforms, multimodal theranostic systems, sonodynamic therapy constructs, and spatial transcriptomics-guided precision designs. The strategic integration of ferroptosis induction-an iron-dependent cell death mechanism uniquely suited to the iron-rich hepatic microenvironment-with cGAS-STING pathway activation establishes a bidirectional synergistic loop wherein ferroptotic tumor death generates endogenous STING activation, which reciprocally sensitizes cancer cells to ferroptosis. This dual-targeting approach converts immunologically "cold" HCC tumors into inflamed "hot" therapeutic targets, achieving 78-91 % tumor growth inhibition and 4.2-4.8-fold increases in CD8 + tumor-infiltrating lymphocytes in preclinical models, substantially exceeding conventional monotherapies (sorafenib: 45-52 %; checkpoint inhibitors: 35-48 %). Mechanistically, ferroptosis-STING coupling simultaneously addresses three critical resistance modalities: chemoresistance through GPX4/NRF2 axis collapse, immunoresistance via tumor microenvironment reprogramming, and metabolic resistance by disrupting HIF-1α/STAT3-mediated adaptation. Despite compelling preclinical evidence, translation to clinical practice faces substantial challenges in manufacturing scalability, regulatory approval pathways for combination nanotechnology products, biomarker-driven patient stratification, and long-term safety assessment. This review critically evaluates current nano-immuno-theranostic platforms, provides quantitative comparative analysis against existing HCC therapies, identifies critical translational gaps, and proposes strategic solutions spanning adaptive regulatory frameworks, continuous manufacturing innovations, and precision medicine integration. The convergence of nanotechnology, immunotherapy, and multi-omic profiling offers unprecedented opportunities for developing next-generation HCC therapeutics capable of dismantling the complex resistance networks that characterize this aggressive malignancy, with first-in-human trials anticipated in 2025-2027 and potential regulatory approval trajectories extending to 2030.

论文信息

作者
Elmetwalli A
单位
Prince Fahad bin Sultan Chair for Biomedical Research, University of Tabuk, Tabuk, Saudi Arabia. Electronic address: aelmetwalli@ut.edu.sa.Saudi Arabia
文献类型
综述
期刊
Drug resistance updates : reviews and commentaries in antimicrobial and anticancer chemotherapy2026 Jan
原文标识
PubMed 41275854 · DOI 10.1016/j.drup.2025.101326