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首页> 外文期刊>Molecular biology of the cell >Low oxygen levels induce the expression of the embryonic morphogen Nodal
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Low oxygen levels induce the expression of the embryonic morphogen Nodal

机译:低氧水平诱导胚胎形态发生素节点表达

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Low oxygen (O_2) levels characterize the microenvironment of both stem cells and rapidly growing tumors. Moreover, hypoxia is associated with the maintenance of stem cell-like phenotypes and increased invasion, angiogenesis and metastasis in cancer patients. Metastatic cancers, such as breast cancer and melanoma, aberrantly express the embryonic morphogen Nodal, and the presence of this protein is correlated with metastatic disease. In this paper, we demonstrate that hypoxia induces Nodal expression in melanoma and breast cancer cells concomitant with increased cellular invasion and angiogenic phenotypes. Of note, Nodal expression remains up-regulated up to 48 h following reoxygenation. The oxygen-mediated regulation of Nodal expression occurs via a combinatorial mechanism. Within the first 24 h of exposure to low O_2, there is an increase in protein stability. This increase in stability is accompanied by an induction of transcription, mediated by the HIF-1α-dependent activation of Notch-responsive elements in the node-specific enhancer of the Nodal gene locus. Finally, Nodal expression is maintained upon reoxygenation by a canonical SMAD-dependent feed-forward mechanism. This work provides insight into the O_2-mediated regulation of Nodal, a key stem cell-associated factor, and reveals that Nodal may be a target for the treatment and prevention of hypoxia-induced tumor progression.
机译:低氧(O_2)水平表征干细胞和快速生长的肿瘤的微环境。此外,缺氧与癌症患者中干细胞样表型的维持以及侵袭,血管生成和转移增加有关。转移性癌症,例如乳腺癌和黑色素瘤,异常表达了胚胎形态发生素Nodal,并且这种蛋白质的存在与转移性疾病相关。在本文中,我们证明低氧诱导黑色素瘤和乳腺癌细胞中的Nodal表达,并伴随细胞侵袭和血管生成表型的增加。值得注意的是,复氧后最多48小时,节点表达仍保持上调。氧介导的节点表达调控是通过组合机制进行的。在暴露于低O_2的前24小时内,蛋白质稳定性增加。这种稳定性的提高伴随着转录的诱导,该转录的诱导是由Nodal基因位点的节点特异性增强子中Notch反应元件的HIF-1α依赖性激活介导的。最后,通过经典的SMAD依赖性前馈机制在复氧时维持节点表达。这项工作提供了对O_2介导的Nodal(一种关键的干细胞相关因子)调节的见解,并揭示了Nodal可能是治疗和预防缺氧诱导的肿瘤进展的靶标。

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