抗血栓和抗氧化剂联合治疗延缓脑肿瘤进展

Alicia Martínez-González;Mario Durán-Prado;Gabriel F. Calvo;Francisco J. Alcaín;Luis A. Pérez-Romasanta;Victor M. Pérez-García
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引用次数: 27

摘要

多形性胶质母细胞瘤(GBM)是最常见的原发性脑瘤类型,是一种快速发展的空间异质性高级星形细胞瘤,表现为坏死、细胞增多和微血管增生。异常的血管系统导致缺氧区域,并导致氧化应激增加,从而选择更具侵袭性的肿瘤细胞表型。在我们的研究中,我们在计算机上分析了不同的治疗方法,这些方法结合了抗凝血酶(AT)、抗氧化剂和标准放射治疗(RT)。为此,我们开发了一个GBM的生物计算模型,该模型结合了两种神经胶质瘤细胞表型之间的时空相互作用,这两种表型对应于充氧和缺氧细胞、坏死核心和局部血管系统,其反应随着肿瘤进展而演变。我们的数值模拟预测,AT和抗氧化剂的适当组合可能以协同的方式减少氧化应激和随后的缺氧反应。这种新的治疗策略具有潜在的低毒性或无毒性,可能会减少肿瘤侵袭,并进一步使GBM对传统RT或其他细胞毒性药物敏感,有望增加患者的中位总生存时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combined therapies of antithrombotics and antioxidants delay in silico brain tumour progression
Glioblastoma multiforme (GBM), the most frequent type of primary brain tumour, is a rapidly evolving and spatially heterogeneous high-grade astrocytoma that presents areas of necrosis, hypercellularity and microvascular hyperplasia. The aberrant vasculature leads to hypoxic areas and results in an increase in oxidative stress, selecting for more invasive tumour cell phenotypes. In our study, we assay in silico different therapeutic approaches which combine antithrombotics (ATs), antioxidants and standard radiotherapy (RT). To do so, we have developed a biocomputational model of GBM that incorporates the spatio-temporal interplay among two glioma cell phenotypes corresponding to oxygenated and hypoxic cells, a necrotic core and the local vasculature whose response evolves with tumour progression. Our numerical simulations predict that suitable combinations of ATs and antioxidants may diminish, in a synergistic way, oxidative stress and the subsequent hypoxic response. This novel therapeutical strategy, with potentially low or no toxicity, might reduce tumour invasion and further sensitize GBM to conventional RT or other cytotoxic agents, hopefully increasing median patient overall survival time.
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