Laboratory of Cell-Based Assays and Innovations, School of Biotechnology, Institute of Agricultural Technology, Suranaree University of Technology, Nakhon Ratchasima, Thailand.
Laboratory of Cell-Based Assays and Innovations, School of Biotechnology, Institute of Agricultural Technology, Suranaree University of Technology, Nakhon Ratchasima, Thailand
In Vivo. 2020 Jan-Feb;34(1):199-211. doi: 10.21873/invivo.11762.
BACKGROUND/AIM: Among various types of brain tumors, glioblastoma is the most malignant and highly aggressive brain tumor that possesses a high resistance against anticancer drugs. To understand the underlined mechanisms of tumor drug resistance, a new and more effective research approach is required. The three dimensional (3D) in vitro cell culture models could be a potential approach to study cancer features and biology, as well as screen for anti-cancer agents due to the close mimicry of the 3D tumor microenvironments.
With our developed 3D alginate scaffolds, Ilumina RNA-sequencing was used to transcriptomically analyze and compare the gene expression profiles between glioblastoma cells in traditional 2-dimensional (2D) monolayer and in 3D Ca-alginate scaffolds at day 14. To verify the reliability and accuracy of Illumina RNA-Sequencing data, ATP-binding cassette transporter genes were chosen for quantitative real-time polymerase chain reaction) verification.
The results showed that 7,411 and 3,915 genes of the 3D glioblastoma were up-regulated and down-regulated, respectively, compared with the 2D-cultured glioblastoma. Furthermore, the Kyoto Encyclopaedia of Genes and Genomes pathway analysis revealed that genes related to the cell cycle and DNA replication were enriched in the group of down-regulated gene. On the other hand, the genes involved in mitogen-activated protein kinase signaling, autophagy, drug metabolism through cytochrome P450, and ATP-binding cassette transporter were found in the up-regulated gene collection.
3D glioblastoma tumoroids might potentially serve as a powerful platform for exploring glioblastoma biology. They can also be valuable in anti-glioblastoma drug screening, as well as the identification of novel molecular targets in clinical treatment of human glioblastoma.
背景/目的:在各种类型的脑肿瘤中,胶质母细胞瘤是最恶性和高度侵袭性的脑肿瘤,对抗癌药物具有很高的耐药性。为了了解肿瘤耐药的潜在机制,需要一种新的、更有效的研究方法。三维(3D)体外细胞培养模型可能是研究癌症特征和生物学的一种潜在方法,也可以作为筛选抗癌药物的方法,因为它可以很好地模拟 3D 肿瘤微环境。
我们使用开发的 3D 藻酸盐支架,通过 Illumina RNA 测序技术对传统 2 维(2D)单层和 3D Ca-藻酸盐支架中培养的胶质母细胞瘤细胞在第 14 天的基因表达谱进行转录组分析和比较。为了验证 Illumina RNA 测序数据的可靠性和准确性,选择了 ATP 结合盒转运蛋白基因进行定量实时聚合酶链反应验证。
结果表明,与 2D 培养的胶质母细胞瘤相比,3D 胶质母细胞瘤中有 7411 个基因上调,3915 个基因下调。此外,京都基因与基因组百科全书通路分析显示,下调基因群中富集了与细胞周期和 DNA 复制相关的基因。另一方面,在上调基因集中发现了涉及丝裂原激活蛋白激酶信号、自噬、细胞色素 P450 介导的药物代谢和 ATP 结合盒转运蛋白的基因。
3D 胶质母细胞瘤类器官可能是探索胶质母细胞瘤生物学的有力平台。它们也可用于抗胶质母细胞瘤药物筛选,以及鉴定人类胶质母细胞瘤临床治疗中的新分子靶标。