Characterization and comparison of hypoxia inducing factors on tumor growth and metastasis between two- and three-dimensional cancer models

IF 2.7 4区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS SLAS Discovery Pub Date : 2024-01-01 DOI:10.1016/j.slasd.2023.10.007
Leo Li-Ying Chan , Sarah L. Kessel , Bo Lin , Anna Juncker-Jensen , Paul Weingarten
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Abstract

The monocarboxylic acid transporter 4 (Mct-4), a downstream biomarker of hypoxia inducing factor (HIF)-1α, is involved in the cellular response to hypoxia, as indicated by the hypoxic response element in its promoter region. Using a tumorsphere assay as an in vitro 3-dimensional (3D) model generated using 384-well ultra-low attachment (ULA) plates for cell proliferation analysis using a plate-based image cytometer, we identify a hypoxic response in the tumorsphere model that is distinct from that of cells grown under 2-dimensional (2D) normoxic conditions and demonstrate a key role for Mct-4 in enabling 3D growth. The tumorsphere model yields evidence of an essential role for Mct-4 in multiple cell lines, which were genetically modified to underexpress and overexpress Mct-4, evidence not apparent in a standard 2D model of growth in the same cell lines. In addition, we identify the effects of overexpressing Mct-4 in cancer cell migration using a transwell chamber assay. We also show that the response to hypoxia may be circumvented by transfection with a CMV promoter driven Mct-4, which confers constitutive 3D growth, wherein tumorsphere growth inhibition by small molecule HIF-1α inhibitors is mitigated. Finally, we demonstrate quantifiable gene/protein expression differences between 2D and 3D cancer models based on the normoxic and hypoxic conditions. Therefore, the tumorsphere 3D model generated using 384-well ULA plates in combination with high-throughput image cytometer is demonstrated to provide a convenient, robust, and reproducible tool and method for the elucidation of mechanisms of action underlying tumor growth and migration in the hypoxic tumor microenvironment.

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缺氧诱导因子对二维和三维癌症模型中肿瘤生长和转移的影响特征及比较
单羧酸转运体 4(Mct-4)是缺氧诱导因子(HIF)-1α 的下游生物标记物,其启动子区域的缺氧反应元件表明,它参与了细胞对缺氧的反应。我们将瘤球试验作为一种体外三维(3D)模型,使用 384 孔超低附着力(ULA)平板生成,利用基于平板的图像细胞计数器进行细胞增殖分析,在瘤球模型中发现了一种有别于在二维(2D)常氧条件下生长的细胞的缺氧反应,并证明了 Mct-4 在三维生长中的关键作用。肿瘤球模型证明了 Mct-4 在多个细胞系中的重要作用,这些细胞系经过基因修饰,使 Mct-4 低表达和高表达,而这些证据在相同细胞系的标准二维生长模型中并不明显。此外,我们还利用透孔室试验确定了过表达 Mct-4 对癌细胞迁移的影响。我们还表明,通过转染 CMV 启动子驱动的 Mct-4,可以规避对缺氧的反应,从而获得组成型三维生长,小分子 HIF-1α 抑制剂对肿瘤球生长的抑制作用也会减轻。最后,我们展示了基于常氧和缺氧条件的二维和三维癌症模型之间可量化的基因/蛋白质表达差异。因此,使用 384 孔 ULA 板生成的肿瘤球三维模型与高通量图像细胞仪相结合,为阐明缺氧肿瘤微环境中肿瘤生长和迁移的作用机制提供了一种方便、稳健、可重复的工具和方法。
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来源期刊
SLAS Discovery
SLAS Discovery Chemistry-Analytical Chemistry
CiteScore
7.00
自引率
3.20%
发文量
58
审稿时长
39 days
期刊介绍: Advancing Life Sciences R&D: SLAS Discovery reports how scientists develop and utilize novel technologies and/or approaches to provide and characterize chemical and biological tools to understand and treat human disease. SLAS Discovery is a peer-reviewed journal that publishes scientific reports that enable and improve target validation, evaluate current drug discovery technologies, provide novel research tools, and incorporate research approaches that enhance depth of knowledge and drug discovery success. SLAS Discovery emphasizes scientific and technical advances in target identification/validation (including chemical probes, RNA silencing, gene editing technologies); biomarker discovery; assay development; virtual, medium- or high-throughput screening (biochemical and biological, biophysical, phenotypic, toxicological, ADME); lead generation/optimization; chemical biology; and informatics (data analysis, image analysis, statistics, bio- and chemo-informatics). Review articles on target biology, new paradigms in drug discovery and advances in drug discovery technologies. SLAS Discovery is of particular interest to those involved in analytical chemistry, applied microbiology, automation, biochemistry, bioengineering, biomedical optics, biotechnology, bioinformatics, cell biology, DNA science and technology, genetics, information technology, medicinal chemistry, molecular biology, natural products chemistry, organic chemistry, pharmacology, spectroscopy, and toxicology. SLAS Discovery is a member of the Committee on Publication Ethics (COPE) and was published previously (1996-2016) as the Journal of Biomolecular Screening (JBS).
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