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Dynamic Quantitative Intravital Imaging of Glioblastoma Progression Reveals a Lack of Correlation between Tumor Growth and Blood Vessel Density

机译:胶质母细胞瘤进展的动态定量活体成像显示肿瘤生长与血管密度之间缺乏相关性。

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摘要

The spatiotemporal and longitudinal monitoring of cellular processes occurring in tumors is critical for oncological research. We focused on glioblastoma multiforme (GBM), an untreatable highly vascularized brain tumor whose progression is thought to critically depend on the oxygen and metabolites supplied by blood vessels. We optimized protocols for orthotopic GBM grafting in mice that were able to recapitulate the biophysical constraints normally governing tumor progression and were suitable for intravital multiphoton microscopy. We repeatedly imaged tumor cells and blood vessels during GBM development. We established methods for quantitative correlative analyses of dynamic imaging data over wide fields in order to cover the entire tumor. We searched whether correlations existed between blood vessel density, tumor cell density and proliferation in control tumors. Extensive vascular remodeling and the formation of new vessels accompanied U87 tumor cell growth, but no strong correlation was found between local cell density and the extent of local blood vessel density irrespective of the tumor area or time points. The technique moreover proves useful for comparative analysis of mice subjected either to Bevacizumab anti-angiogenic treatment that targets VEGF or to AMD3100, an antagonist of CXCR4 receptor. Bevacizumab treatment massively reduced tumoral vessel densities but only transiently reduced U87 tumor growth rate. Again, there was no correlation between local blood vessel density and local cell density. Moreover, Bev applied only prior to tumor implantation inhibited tumor growth to the same extent as post-grafting treatment. AMD3100 achieved a potent inhibition of tumor growth without significant reduction in blood vessel density. These results indicate that in the brain, in this model, tumor growth can be sustained without an increase in blood vessel density and suggest that GBM growth is rather governed by stromal properties.
机译:肿瘤中发生的细胞过程的时空和纵向监测对于肿瘤学研究至关重要。我们专注于多形性胶质母细胞瘤(GBM),这是一种无法治愈的高度血管化的脑瘤,其进展被认为主要取决于血管提供的氧气和代谢产物。我们优化了小鼠原位GBM移植协议,该协议能够概括通常控制肿瘤进展的生物物理限制条件,并适合于活体多光子显微镜检查。我们在GBM发育过程中反复对肿瘤细胞和血管成像。我们建立了广泛的领域动态成像数据定量相关分析的方法,以覆盖整个肿瘤。我们研究了在对照肿瘤中血管密度,肿瘤细胞密度和增殖之间是否存在相关性。伴随U87肿瘤细胞的生长,广泛的血管重塑和新血管的形成,但是,无论肿瘤的面积或时间点如何,在局部细胞密度和局部血管密度的程度之间均未发现强相关性。此外,该技术被证明可用于比较分析接受靶向VEGF的贝伐单抗抗血管生成治疗小鼠或CXCR4受体拮抗剂AMD3100的小鼠。贝伐单抗治疗大大降低了肿瘤血管密度,但仅暂时降低了U87肿瘤的生长速率。同样,局部血管密度和局部细胞密度之间没有相关性。此外,仅在肿瘤植入之前应用Bev就可以抑制肿瘤的生长,其程度与移植后治疗相同。 AMD3100在不显着降低血管密度的情况下实现了对肿瘤生长的有效抑制。这些结果表明,在该模型中的大脑中,肿瘤的生长可以持续而不会增加血管的密度,这表明GBM的生长受基质性质的支配。

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