PO.TB04.03 · 肿瘤生物学
利用患者来源异种移植衍生的三维平台建模胶质母细胞瘤对照射的敏感性
Modelling glioblastoma sensitivity to irradiation with a patient derived xenograft-derived 3D platform
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摘要 Abstract
中文摘要
胶质母细胞瘤(GBM)仍然是最具侵袭性和治疗抵抗性的脑肿瘤之一,其特征为显著的细胞异质性、浸润性生长以及对包括放疗在内的常规治疗的内在抵抗。为更好地理解肿瘤对照射的差异性反应,我们利用胶质母细胞瘤患者来源异种移植类器官(PDXO)开展了一系列短期和长期活力实验,以评估其对X射线暴露的敏感性。分析纳入了多种GBM模型:在为期4天的照射实验中纳入多个模型,并在扩展的14天实验中纳入十个模型的更大样本组。类器官在超低吸附96孔板中按既定接种密度建立并以三复孔培养。在初步形成类器官后,PDXOs在短期实验中接受2戈瑞(Gy)、在扩展实验中接受4 Gy的X射线照射。终点指标包括三维结构形成的形态学评估、明场成像,以及使用CellTiter-Glo®发光实验进行的定量活力测定。随时间监测类器官的大小和完整性,重点关注直径≥50 μm的结构。4天实验显示所有受试模型对照射普遍缺乏敏感性,提示短期暴露不足以捕捉放射诱导损伤所特有的延迟性或累积性细胞毒效应。相比之下,采用更高放射剂量和更长培养时间的14天实验成功地区分了照射敏感型和抵抗型模型。若干类器官表现出显著的活力丧失,相对对照最高降低达92%,而另一些则保持高活力,体现了GBM对放射反应的广泛异质性。分子相关性分析显示照射反应与患者人口学变量之间无一致关系,表明驱动敏感性的是肿瘤内在生物学而非临床因素。值得注意的是,携带表皮生长因子受体(EGFR)扩增的模型倾向于表现出对照射更高的易感性,这与既往关于EGFR信号在放射反应调控中作用的证据相一致。相反,表现出抵抗的模型显示线粒体完整性和氧化应激相关通路的转录富集,提示代谢和氧化还原稳态参与放射耐受。这些数据表明,氧化损伤修复机制和线粒体应激耐受可能是GBM放射抵抗的关键决定因素。总体而言,本研究强调了在生理相关、纵向的临床前模型对于指导胶质母细胞瘤精准放疗策略以及识别克服治疗抵抗的新靶点方面的重要性。
查看英文原文 English abstract
Glioblastoma (GBM) remains one of the most aggressive and treatment-refractory brain tumors, characterized by profound cellular heterogeneity, infiltrative growth, and intrinsic resistance to conventional therapies, including radiotherapy. To better understand differential tumor responses to irradiation, a series of short & long-term viability assays were conducted using glioblastoma patient-derived xenograft organoids (PDXO) to evaluate sensitivity to X-ray exposure. Multiple GBM models were included in the analysis, in a 4-day irradiation assay, & an expanded panel of ten models in a 14-day extended assay. Organoids were established in ultra-low attachment 96-well plates at defined seeding and cultured in triplicate. Following initial organoid formation, PDXOs were exposed to X-ray irradiation at doses of 2 Gray (Gy) for the short-term & 4 Gy for the extended assay. Endpoints included morphological assessment of three-dimensional structure formation, bright-field imaging, & quantitative viability measurements using the CellTiter-Glo® luminescent assay. Organoid size & integrity were monitored over time, focusing on structures measuring ≥50 µm in diameter. The 4-day assay revealed a general lack of sensitivity to irradiation across all tested models, suggesting that short-term exposure is inadequate for capturing delayed or cumulative cytotoxic effects typical of radiation-induced damage. In contrast, the 14-day assay, which incorporated both higher radiation dose & extended culture duration, successfully discriminated between irradiation-sensitive & resistant models. Several organoids displayed marked viability loss, reaching up to 92% reduction relative to control, while others displayed high viability, illustrating the broad heterogeneity of GBM responses to radiation. Analysis of molecular correlates revealed no consistent relationship between irradiation response and patient demographic variables, indicating that intrinsic tumor biology, rather than clinical factors, drives sensitivity. Notably, models harboring epidermal growth factor receptor (EGFR) amplification tended to exhibit enhanced susceptibility to irradiation, aligning with prior evidence implicating EGFR signaling in radiation response modulation. Conversely, models demonstrating resistance displayed transcriptional enrichment of mitochondrial integrity and oxidative stress-related pathways, implicating metabolic and redox homeostasis in radiotolerance. These data suggest that oxidative damage repair mechanisms and mitochondrial stress tolerance may serve as critical determinants of radiation resistance in GBM. Overall, this work underscores the importance of physiologically relevant, longitudinal preclinical models in guiding precision radiotherapy approaches for glioblastoma and in identifying novel targets to overcome therapeutic resistance.
利益披露 Disclosure
F. Chou, None..
A. Rapisarda, None..
M. Zipeto, None..
M. Ritchie, None..
M. Hippich, None..
V. Jagannathan, None..
G. Silberberg, None..
S. Cairo, None.