Children's Brain Tumour Research Centre, Biodiscovery Institute, University of Nottingham, Nottingham, UK.
School of Life Sciences, University of Nottingham, Nottingham, UK.
Sci Rep. 2021 Feb 19;11(1):4259. doi: 10.1038/s41598-021-83809-6.
Studying medulloblastoma, the most common malignant paediatric brain tumour, requires simple yet realistic in vitro models. In this study, we optimised a robust, reliable, three-dimensional (3D) culture method for medulloblastoma able to recapitulate the spatial conformation, cell-cell and cell-matrix interactions that exist in vivo and in patient tumours. We show that, when grown under the same stem cell enriching conditions, SHH subgroup medulloblastoma cell lines established tight, highly reproducible 3D spheroids that could be maintained for weeks in culture and formed pathophysiological oxygen gradients. 3D spheroid culture also increased resistance to standard-of-care chemotherapeutic drugs compared to 2D monolayer culture. We exemplify how this model can enhance in vitro therapeutic screening approaches through dual-inhibitor studies and continual monitoring of drug response. Next, we investigated the initial stages of metastatic dissemination using brain-specific hyaluronan hydrogel matrices. RNA sequencing revealed downregulation of cell cycle genes and upregulation of cell movement genes and key fibronectin interactions in migrating cells. Analyses of these upregulated genes in patients showed that their expression correlated with early relapse and overall poor prognosis. Our 3D spheroid model is a significant improvement over current in vitro techniques, providing the medulloblastoma research community with a well-characterised and functionally relevant culture method.
研究髓母细胞瘤(最常见的小儿脑恶性肿瘤)需要简单而现实的体外模型。在这项研究中,我们优化了一种稳健、可靠的三维(3D)培养方法,用于髓母细胞瘤,能够重现体内和患者肿瘤中存在的空间构象、细胞-细胞和细胞-基质相互作用。我们表明,在相同的干细胞富集条件下生长时,SHH 亚组髓母细胞瘤细胞系形成紧密、高度可重复的 3D 球体,能够在培养中维持数周,并形成生理病理氧梯度。与 2D 单层培养相比,3D 球体培养还增加了对标准化疗药物的耐药性。我们举例说明了这种模型如何通过双重抑制剂研究和持续监测药物反应来增强体外治疗筛选方法。接下来,我们使用脑特异性透明质酸水凝胶基质研究了转移扩散的初始阶段。RNA 测序显示,细胞周期基因下调,细胞迁移基因上调,细胞运动相关基因和关键纤维连接蛋白相互作用上调。对这些上调基因在患者中的分析表明,它们的表达与早期复发和总体预后不良相关。我们的 3D 球体模型是对现有体外技术的重大改进,为髓母细胞瘤研究界提供了一种特征明确且功能相关的培养方法。