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缺氧诱导因子脯氨酰-4-羟化酶(PHD2)在调节肿瘤形成潜能中的双相作用。

The biphasic role of the hypoxia-inducible factor prolyl-4-hydroxylase, PHD2, in modulating tumor-forming potential.

作者信息

Lee KangAe, Lynd Jeremy D, O'Reilly Sandra, Kiupel Matti, McCormick J Justin, LaPres John J

机构信息

Department of Biochemistry and Molecular Biology, 224 Biochemistry Building, Michigan State University, East Lansing, MI 48824-1319, USA.

出版信息

Mol Cancer Res. 2008 May;6(5):829-42. doi: 10.1158/1541-7786.MCR-07-2113.

Abstract

Hypoxia is a common feature of solid tumors. The cellular response to hypoxic stress is controlled by a family of prolyl hydroxylases (PHD) and the transcription factor hypoxia-inducible factor 1 (HIF1). To investigate the relationship between PHD and HIF1 activity and cellular transformation, we characterized the expression levels of PHD isoforms across a lineage of cell strains with varying transformed characteristics. We found that PHD2 is the primary functional isoform in these cells and its levels are inversely correlated to tumor-forming potential. When PHD2 levels were altered with RNA interference in nontumorigenic fibroblasts, we found that small decreases can lead to malignant transformation, whereas severe decreases do not. Consistent with these results, direct inhibition of PHD2 was also shown to influence tumor-forming potential. Furthermore, we found that overexpression of PHD2 in malignant fibroblasts leads to loss of the tumorigenic phenotype. These changes correlated with HIF1alpha activity, glycolytic rates, vascular endothelial growth factor expression, and the ability to grow under hypoxic stress. These findings support a biphasic model for the relationship between PHD2 activity and malignant transformation.

摘要

缺氧是实体瘤的一个常见特征。细胞对缺氧应激的反应受脯氨酰羟化酶(PHD)家族和转录因子缺氧诱导因子1(HIF1)的控制。为了研究PHD与HIF1活性和细胞转化之间的关系,我们对一系列具有不同转化特征的细胞株中PHD亚型的表达水平进行了表征。我们发现PHD2是这些细胞中的主要功能亚型,其水平与肿瘤形成潜力呈负相关。当用RNA干扰在非致瘤性成纤维细胞中改变PHD2水平时,我们发现小幅降低可导致恶性转化,而大幅降低则不会。与这些结果一致,对PHD2的直接抑制也显示会影响肿瘤形成潜力。此外,我们发现在恶性成纤维细胞中过表达PHD2会导致肿瘤表型丧失。这些变化与HIF1α活性、糖酵解速率、血管内皮生长因子表达以及在缺氧应激下生长的能力相关。这些发现支持了PHD2活性与恶性转化之间关系的双相模型。

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