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基于整合可视化分析的胶质瘤线粒体变异与免疫反应交互机制研究

英文原题:Research on the interactive mechanisms between mitochondrial variations and immune responses in gliomas based on integrated visualization analysis.

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Research on the interactive mechanisms between mitochondrial variations and immune responses in gliomas based on integrated visualization analysis.

PubMed 2025/11/10(内容时间) Discov Oncol Q3 · IF 2.8(JCR 2025)

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中文摘要

胶质瘤作为中枢神经系统最具侵袭性的原发性恶性肿瘤,其病理特征与临床预后存在显著相关性。其中,多形性胶质母细胞瘤(GBM)被世界卫生组织(WHO)归类为Ⅳ级肿瘤,5年生存率不足5%(WHO统计),其预后指标显著低于其他神经系统肿瘤。现有研究已证实,线粒体功能障碍与肿瘤免疫逃逸机制在胶质瘤恶性进展中发挥关键调控作用。本综述系统整合了现有关于胶质瘤线粒体变异与免疫效应之间分子互作网络的研究,并基于现有研究对其信号通路调控机制进行了整合性可视化阐述。在代谢重编程方面,研究证实乳酸代谢产物可显著抑制细胞毒性T淋巴细胞(CTLs)和自然杀伤(NK)细胞的细胞毒功能,同时促进肿瘤相关巨噬细胞(TAMs)向M2型免疫抑制表型极化。柠檬酸代谢通路通过双重调控CD47分子表达和主要组织相容性复合体Ⅰ类(MHC-Ⅰ)分子的泛素化-降解过程,建立了有效的免疫逃逸机制。

此外,α-酮戊二酸依赖性表观遗传修饰及肿瘤微环境中的营养竞争对免疫细胞的功能状态发挥显著调控作用。在分子机制层面,研究揭示线粒体DNA(mtDNA)突变导致MHC-Ⅰ分子表达下调,显著降低肿瘤细胞的免疫原性。

然而,突变相关新抗原诱导的免疫应答受到白细胞介素-10(IL-10)和转化生长因子-β(TGF-β)等免疫抑制因子的拮抗。mtDNA释放通过Toll样受体9(TLR9)和环鸟苷酸-腺苷酸合成酶-干扰素基因刺激因子(cGAS-STING)信号通路激活先天免疫应答,但伴随程序性死亡配体1(PD-L1)表达上调,从而形成免疫逃逸表型。线粒体动力学异常导致的线粒体碎片化通过活性氧(ROS)显著抑制MHC-Ⅰ抗原呈递系统功能,并干扰免疫细胞的效应功能。线粒体自噬受损导致受损线粒体积累,通过ROS-NF-κB信号轴促进免疫抑制因子的分泌。

同时,mtDNA释放加剧局部炎症反应,显著影响抗原呈递效率和巨噬细胞极化状态。本研究系统阐明了线粒体变异通过代谢重编程、信号转导和抗原呈递等多条途径调控肿瘤免疫微环境的分子机制,为深入理解肿瘤-免疫相互作用提供了新的理论框架,对开发靶向治疗策略和改善患者预后具有重要的转化医学价值。

展开英文摘要原文

Gliomas, as the most invasive primary malignant tumors of the central nervous system, exhibit a significant correlation between their pathological features and clinical prognosis. Among them, glioblastoma multiforme (GBM) is classified as a Grade Ⅳ tumor by the World Health Organization (WHO), with a 5-year survival rate of less than 5% (WHO statistics), and its prognostic indicators are significantly lower than those of other nervous system tumors. Existing studies have demonstrated that mitochondrial dysfunction and tumor immune escape mechanisms play critical regulatory roles in the malignant progression of gliomas.

This review systematically integrates existing research on the molecular interaction networks between mitochondrial variations and immunological effects in gliomas, and provides an integrated visual elaboration of the regulatory mechanisms of their signaling pathways based on existing studies.

In terms of metabolic reprogramming, the research confirmed that lactic acid metabolites can significantly inhibit the cytotoxic functions of cytotoxic T lymphocytes (CTLs) and natural killer (NK) cells, while promoting the polarization of tumor-associated macrophages (TAMs) toward the M2-type immunosuppressive phenotype.

The citrate metabolic pathway establishes an effective immune escape mechanism through dual regulation of CD47 molecule expression and the ubiquitination-degradation process of major histocompatibility complex class Ⅰ (MHC-Ⅰ) molecules.

Additionally, α-ketoglutarate-dependent epigenetic modifications and nutrient competition in the tumor microenvironment exert significant regulatory effects on the functional status of immune cells. At the molecular mechanism level, the study revealed that mitochondrial DNA (mtDNA) mutations lead to downregulated expression of MHC-Ⅰ molecules, significantly reducing the immunogenicity of tumor cells.

However, the immune responses induced by mutation-associated neoantigens are antagonized by immunosuppressive factors such as interleukin-10 (IL-10) and transforming growth factor-β (TGF-β). mtDNA release activates innate immune responses through the Toll-like receptor 9 (TLR9) and cyclic GMP-AMP synthase-stimulator of interferon genes (cGAS-STING) signaling pathways, but is accompanied by upregulated expression of programmed death-ligand 1 (PD-L1), thereby forming an immune escape phenotype.

Mitochondrial fragmentation caused by abnormal mitochondrial dynamics significantly inhibits the function of the MHC-Ⅰ antigen-presenting system via reactive oxygen species (ROS) and interferes with the effector functions of immune cells.

Impaired mitophagy results in the accumulation of damaged mitochondria, which promotes the secretion of immunosuppressive factors through the ROS-NF-κB signaling axis. Meanwhile, mtDNA release exacerbates local inflammatory responses, significantly affecting antigen-presenting efficiency and macrophage polarization status.

This study systematically elucidates the molecular mechanisms by which mitochondrial variations regulate the tumor immune microenvironment through multiple pathways, including metabolic reprogramming, signal transduction, and antigen presentation. It provides a new theoretical framework for in-depth understanding of tumor-immune interactions and holds important translational medical value for the development of targeted therapeutic strategies and improvement of patient prognosis.

论文信息

作者
Li S、Lu E、Mi L、Li C、Guan H、Cao T、Zhang Q
第一作者单位
School of Clinical Medicine, Qinghai University, Xining, 810016, Qinghai, China.China
通讯作者单位
Department of Neurosurgery, Qinghai Provincial People's Hospital, No. 2 Gonghe Road, Chengdong District, Xining, 810007, Qinghai, China. 1666528634@qq.com.China
文献类型
综述
期刊
Discover oncology2025 Nov 10
原文标识
PubMed 41212301 · DOI 10.1007/s12672-025-03926-w