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胶质母细胞瘤:流行病学、分类、发病机制、诊断与治疗的当代概述——综述文章

英文原题:Glioblastoma-A Contemporary Overview of Epidemiology, Classification, Pathogenesis, Diagnosis, and Treatment: A Review Article.

PubMed 2025/12/18(内容时间) Int J Mol Sci Q1 · IF 5.6(JCR 2025)

研究概要

尽管采用了包括手术、放疗和替莫唑胺化疗在内的多模式治疗,患者的平均生存时间仍仅为约15个月。

中文摘要

胶质母细胞瘤(GBM)是中枢神经系统最常见且最具侵袭性的原发性恶性肿瘤之一,约占成人所有胶质瘤的一半。尽管在分子生物学、基因组学和现代神经影像技术方面进行了大量研究并取得了进展,GBM患者的预后仍然极差。尽管实施了包括手术、放疗和替莫唑胺化疗在内的多模式治疗,患者的平均生存时间仅为约15个月。这主要是由于该癌症复杂的生物学特性,涉及众多遗传和表观遗传异常,以及高度异质性的肿瘤结构和具有自我更新能力的胶质母细胞瘤干细胞的存在。IDH-wt、EGFR、PTEN、TP53、TERT和CDKN2A/B等基因的突变和异常在GBM的发病机制中至关重要。特别是IDH-wt状态(野生型异柠檬酸脱氢酶)是区分GBM与其他预后较好的IDH突变型胶质瘤的最重要鉴定标志物之一。频繁的EGFR扩增和TERT基因启动子突变导致肿瘤细胞增殖失调和侵袭性增加。反过来,PTEN或CDKN2A/B等抑癌基因的功能缺失促进细胞生长失控和肿瘤进展。免疫抑制性肿瘤微环境也发挥重要作用,促进免疫逃逸并削弱包括免疫治疗在内的全身治疗的有效性。本综述旨在总结目前关于多形性胶质母细胞瘤的流行病学、分类、发病机制、诊断和治疗的知识现状,并讨论分子诊断和影像诊断最新进展对临床决策的影响。对近期文献(2018-2025)进行了全面综述,重点关注 WHO CNS5 分类更新、新型生物标志物(IDH、TERT、MGMT、EGFR)以及液体活检、放射基因组学和下一代测序(NGS)等现代诊断技术。综述结果表明,WHO 2021 分类中整合组织-分子诊断的引入显著提高了诊断精确度,使患者能够获得更好的预后和治疗分层。现代影像技术,如先进磁共振成像(MRI)、正电子发射断层扫描(PET)以及放射组学和放射基因组学工具,能够更精确地评估肿瘤特征、预测治疗反应和监测疾病进展。当代分子技术,包括 DNA 甲基化谱分析和 NGS,能够进行深入的基因组和表观遗传学分析,从而转化为更加个性化的治疗方法。尽管采用了多模式治疗,即以最大安全范围肿瘤切除为基础,随后进行放疗和替莫唑胺化疗,复发几乎不可避免。GBM 对治疗表现出高度耐药性,这源于干细胞亚群的存在、动态克隆演化以及对不利微环境条件的适应能力。有前景的临床前和早期临床结果显示,新的治疗策略包括免疫治疗(癌症疫苗、检查点抑制剂、CAR-T 疗法)、溶瘤病毒治疗和肿瘤电场治疗(TTF)技术。尽管这些方法显示出延长生存期的潜力,但其临床疗效仍需要在大规模研究中得到证实。人工智能在影像和分子数据分析中的作用也日益受到重视,这可能有助于开发更准确的预测模型和治疗决策。尽管取得了这些进展,GBM 由于其高度异质性和治疗耐药性,仍然是一个重大的治疗挑战。分子诊断、人工智能、a

展开英文摘要原文

Glioblastoma (GBM) is one of the most common and aggressive primary malignant tumors of the central nervous system, accounting for about half of all gliomas in adults. Despite intensive research and advances in molecular biology, genomics, and modern neuroimaging techniques, the prognosis for patients with GBM remains extremely poor. Despite the implementation of multimodal treatment involving surgery, radiotherapy, and chemotherapy with temozolomide, the average survival time of patients is only about 15 months. This is primarily due to the complex biology of this cancer, which involves numerous genetic and epigenetic abnormalities, as well as a highly heterogeneous tumor structure and the presence of glioblastoma stem cells with self renewal capacity. Mutations and abnormalities in genes such as IDH-wt, EGFR, PTEN, TP53, TERT, and CDKN2A/B are crucial in the pathogenesis of GBM. In particular, IDH-wt status (wild-type isocitrate dehydrogenase) is one of the most important identification markers distinguishing GBM from other, more favorable gliomas with IDH mutations. Frequent EGFR amplifications and TERT gene promoter mutations lead to the deregulation of tumor cell proliferation and increased aggressiveness. In turn, the loss of function of suppressor genes such as PTEN or CDKN2A/B promotes uncontrolled cell growth and tumor progression. The immunosuppressive tumor microenvironment also plays an important role, promoting immune escape and weakening the effectiveness of systemic therapies, including immunotherapy. The aim of this review is to summarize the current state of knowledge on the epidemiology, classification, pathogenesis, diagnosis, and treatment of glioblastoma multiforme, as well as to discuss the impact of recent advances in molecular and imaging diagnostics on clinical decision-making. A comprehensive review of recent literature (2018-2025) was conducted, focusing on WHO CNS5 classification updates, novel biomarkers (IDH, TERT, MGMT, EGFR), and modern diagnostic techniques such as liquid biopsy, radiogenomics, and next-generation sequencing (NGS). The results of the review indicate that the introduction of integrated histo-molecular diagnostics in the WHO 2021 classification has significantly increased diagnostic precision, enabling better prognostic and therapeutic stratification of patients. Modern imaging techniques, such as advanced magnetic resonance imaging (MRI), positron emission tomography (PET), and radiomics and radiogenomics tools, allow for more precise assessment of tumor characteristics, prediction of response to therapy, and monitoring of disease progression. Contemporary molecular techniques, including DNA methylation profiling and NGS, enable in-depth genomic and epigenetic analysis, which translates into a more personalized approach to treatment. Despite the use of multimodal therapy, which is based on maximum safe tumor resection followed by radiotherapy and temozolomide chemotherapy, recurrence is almost inevitable. GBM shows a high degree of resistance to treatment, which results from the presence of stem cell subpopulations, dynamic clonal evolution, and the ability to adapt to unfavorable microenvironmental conditions. Promising preclinical and early clinical results show new therapeutic strategies, including immunotherapy (cancer vaccines, checkpoint inhibitors, CAR-T therapies), oncolytic virotherapy, and Tumor Treating Fields (TTF) technology. Although these methods show potential for prolonging survival, their clinical efficacy still needs to be confirmed in large studies. The role of artificial intelligence in the analysis of imaging and molecular data is also increasingly being emphasized, which may contribute to the development of more accurate predictive models and therapeutic decisions. Despite these advancements, GBM remains a major therapeutic challenge due to its high heterogeneity and treatment resistance. The integration of molecular diagnostics, artificial intelligence, a

论文信息

作者
Królikowska K、Błaszczak K、Ławicki S、Zajkowska M、Gudowska-Sawczuk M
第一作者单位
Department of Population Medicine and Lifestyle Diseases Prevention, The Faculty of Medicine, Medical University of Bialystok, 15-269 Bialystok, Poland.Poland
通讯作者单位
Department of Biochemical Diagnostics, Medical University of Bialystok, Waszyngtona 15A St., 15-269 Bialystok, Poland.Poland
文献类型
综述
期刊
International journal of molecular sciences2025 Dec 18
原文标识
PubMed 41465586 · DOI 10.3390/ijms262412162