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recapitulation of tumor heterogeneity and molecular signatures in a 3D brain cancer model with decreased sensitivity to histone deacetylase inhibition

Recapitulation of tumor heterogeneity and molecular signatures in a 3D brain cancer model with decreased sensitivity to histone deacetylase inhibition.

机构信息

Children's Brain Tumour Research Centre, School of Clinical Sciences, University of Nottingham, Nottingham, United Kingdom.

出版信息

PLoS One. 2012;7(12):e52335. doi: 10.1371/journal.pone.0052335. Epub 2012 Dec 18.

Abstract

INTRODUCTION

Physiologically relevant pre-clinical ex vivo models recapitulating CNS tumor micro-environmental complexity will aid development of biologically-targeted agents. We present comprehensive characterization of tumor aggregates generated using the 3D Rotary Cell Culture System (RCCS).

METHODS

CNS cancer cell lines were grown in conventional 2D cultures and the RCCS and comparison with a cohort of 53 pediatric high grade gliomas conducted by genome wide gene expression and microRNA arrays, coupled with immunohistochemistry, ex vivo magnetic resonance spectroscopy and drug sensitivity evaluation using the histone deacetylase inhibitor, Vorinostat.

RESULTS

Macroscopic RCCS aggregates recapitulated the heterogeneous morphology of brain tumors with a distinct proliferating rim, necrotic core and oxygen tension gradient. Gene expression and microRNA analyses revealed significant differences with 3D expression intermediate to 2D cultures and primary brain tumors. Metabolic profiling revealed differential profiles, with an increase in tumor specific metabolites in 3D. To evaluate the potential of the RCCS as a drug testing tool, we determined the efficacy of Vorinostat against aggregates of U87 and KNS42 glioblastoma cells. Both lines demonstrated markedly reduced sensitivity when assaying in 3D culture conditions compared to classical 2D drug screen approaches.

CONCLUSIONS

Our comprehensive characterization demonstrates that 3D RCCS culture of high grade brain tumor cells has profound effects on the genetic, epigenetic and metabolic profiles of cultured cells, with these cells residing as an intermediate phenotype between that of 2D cultures and primary tumors. There is a discrepancy between 2D culture and tumor molecular profiles, and RCCS partially re-capitulates tissue specific features, allowing drug testing in a more relevant ex vivo system.

摘要

简介

能够重现中枢神经系统肿瘤微环境复杂性的生理相关临床前离体模型将有助于开发针对生物靶点的药物。我们介绍了使用 3D 旋转细胞培养系统(RCCS)生成肿瘤聚集体的全面特征。

方法

将中枢神经系统癌细胞系在常规的 2D 培养物和 RCCS 中培养,并与 53 例小儿高级别神经胶质瘤的队列进行比较,通过全基因组基因表达和 microRNA 阵列分析,结合免疫组织化学、离体磁共振波谱和使用组蛋白去乙酰化酶抑制剂伏立诺他进行药物敏感性评估。

结果

宏观 RCCS 聚集体再现了脑肿瘤的异质形态,具有明显的增殖边缘、坏死核心和氧张力梯度。基因表达和 microRNA 分析显示,与 3D 培养物和原发性脑瘤相比,存在显著差异。代谢谱分析显示存在差异,3D 中肿瘤特异性代谢物增加。为了评估 RCCS 作为药物测试工具的潜力,我们测定了伏立诺他对 U87 和 KNS42 胶质母细胞瘤细胞聚集体的疗效。与经典的 2D 药物筛选方法相比,这两种细胞系在 3D 培养条件下的检测中敏感性明显降低。

结论

我们的全面特征表明,高级别脑肿瘤细胞的 3D RCCS 培养对培养细胞的遗传、表观遗传和代谢特征具有深远影响,这些细胞的表型介于 2D 培养物和原发性肿瘤之间。2D 培养物和肿瘤分子特征之间存在差异,RCCS 部分重现了组织特异性特征,允许在更相关的离体系统中进行药物测试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a781/3525561/b7112259115f/pone.0052335.g001.jpg

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