
国际肿瘤学杂志 ›› 2026, Vol. 53 ›› Issue (8): 485-490.doi: 10.3760/cma.j.cn371439-20251031-00078
收稿日期:2025-10-31
出版日期:2026-08-08
发布日期:2026-07-21
通讯作者:
祝伟,Email: 13573570030@163.com基金资助:Received:2025-10-31
Online:2026-08-08
Published:2026-07-21
Contact:
Zhu Wei, Email: 13573570030@163.comSupported by:摘要:
胶质母细胞瘤是恶性程度最高的原发性脑肿瘤,患者在标准放化疗后常因放疗抵抗与肿瘤复发导致预后不良。近年研究发现,放疗不仅杀伤肿瘤细胞,还会诱导肿瘤细胞及周围星形胶质细胞、内皮细胞等发生衰老,形成具有促瘤作用的衰老微环境。衰老细胞通过衰老相关分泌表型分泌多种细胞因子,重塑免疫与血管微环境,从而促进肿瘤再生与治疗抵抗。针对该机制,衰老细胞清除剂及衰老表型抑制剂在临床前研究中展现出显著抑瘤效果。系统阐述衰老微环境的形成机制及其在胶质母细胞瘤放疗抵抗中的作用,并对靶向该微环境的治疗策略进行总结与展望,可为降低肿瘤复发风险提供新的研究方向。
高鉴, 祝伟. 胶质母细胞瘤放疗后衰老微环境的形成机制及靶向治疗研究进展[J]. 国际肿瘤学杂志, 2026, 53(8): 485-490.
Gao Jian, Zhu Wei. Formation mechanism of senescent microenvironment after glioblastoma radiotherapy and research progress on targeted strategies[J]. Journal of International Oncology, 2026, 53(8): 485-490.
表1
GBM放疗后衰老微环境中的关键细胞组分及其促瘤机制"
| 细胞类型 | 主要衰老 诱导信号通路 | 关键SASP因子 | 主要促瘤机制 | 介导治疗抵抗的机制 |
|---|---|---|---|---|
| 肿瘤细胞 | p53-p21、 p16-Rb[ | IL-6、IL-8、 CXCL1[ | ①旁分泌作用促进邻近肿瘤细胞增殖与侵袭; ②驱动“旁分泌衰老”,扩大衰老细胞群[ | 通过激活JAK/STAT等信号通路上调抗凋亡蛋白,增强放疗抵抗[ |
| 星形胶质细胞 | p21Cip1和 p16INK4a[ | HGF、 TNF-α[ | ①通过HGF/c-Met轴增强肿瘤细胞迁移与侵袭[ | 介导免疫逃逸,削弱放疗的远隔效应和免疫治疗的疗效[ |
| 血管内皮细胞 | p53-p21、 p16-Rb[ | CXCL5、 CXCL8(IL-8)[ | ①通过CXCL5/CXCR2轴诱导肿瘤基因组不稳定性[ | 为肿瘤进化提供演化优势,增加肿瘤异质性和适应性[ |
| 免疫细胞(如 小胶质细胞) | p16-Rb[ | TGF-β、 IL-10[ | 极化为M2抑制表型,直接抑制T细胞功能[ | 共同导致“冷肿瘤”表型,是免疫治疗抵抗的核心原因之一[ |
表2
靶向GMB放疗后衰老微环境的治疗策略对比"
| 策略类别 | 代表药物/方法 | 核心作用机制 | 优势 | 挑战/局限性 | 临床前/临床进展 |
|---|---|---|---|---|---|
| 衰老细胞清除剂 (清除衰老细胞) | ABT-263 (navitoclax)[ | 抑制BCL-2/BCL-xL,诱导线粒体凋亡[ | 从根本上减少衰老细胞负荷,效果可能更持久[ | ①血脑屏障穿透性[ | 在GBM小鼠模型中可延缓复发,延长总生存期[ |
| 比瑞那帕 (SMAC模拟物)[ | 拮抗cIAP1/2,放疗后衰老细胞凋亡[ | 放疗后清除衰老细胞,抑制SASP,防止复发[ | ①血脑屏障暴露待证;②毒性与分层难[ | 放疗后可延长GBM小鼠模型的生存期;暂无临床试验[ | |
| 衰老表型抑制剂 (抑制SASP) | JAK抑制剂 (如ruxolitinib)[ | 抑制JAK/STAT信号通路,减少SASP因子产生[ | 避免细胞死亡引发的炎症;可能引发的不良反应更小[ | ①不减少衰老细胞数量;②需长期持续给药[ | 在模型中可抑制SASP的促瘤效应[ |
| NF-κB抑制剂[ | 阻断NF-κB通路,从上游抑制SASP转录[ | 靶向SASP的核心调控枢纽[ | 特异性、全身性抑制的潜在毒性[ | 多为临床前研究阶段[ | |
| 联合/时序策略 | “一击二击” (放疗→衰老细胞 清除剂)[ | 先诱导衰老,再特异性清除[ | 时序逻辑清晰,精准根除“复发种子”[ | 治疗时间窗口的精准确定是挑战[ | 临床前研究显示协同增效[ |
| 衰老细胞清除剂→免疫检查点抑制剂[ | 先清除衰老细胞改善免疫微环境,再激活T细胞[ | 有望将“冷肿瘤”转化为“热肿瘤”[ | 最佳联合方案和时序有待优化[ | 极具潜力的新范式,处于早期探索阶段[ |
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