PKCδ/midkine pathway drives hypoxia-induced proliferation and differentiation of human lung epithelial cells

细胞生物学 蛋白激酶C 米德金 缺氧(环境) 生物 罗特勒林 小干扰RNA A549电池 细胞培养 信号转导 间充质干细胞 细胞生长 癌症研究 化学 生长因子 转染 受体 生物化学 遗传学 有机化学 氧气
作者
Hanying Zhang,Miyako Okamoto,Evgeniy Panzhinskiy,W. Michael Zawada,Mita Das
出处
期刊:American Journal of Physiology-cell Physiology [American Physiological Society]
卷期号:306 (7): C648-C658 被引量:23
标识
DOI:10.1152/ajpcell.00351.2013
摘要

Epithelial cells are key players in the pathobiology of numerous hypoxia-induced lung diseases. The mechanisms mediating such hypoxic responses of epithelial cells are not well characterized. Earlier studies reported that hypoxia stimulates protein kinase C (PKC)δ activation in renal cancer cells and an increase in expression of a heparin-binding growth factor, midkine (MK), in lung alveolar epithelial cells. We reasoned that hypoxia might regulate MK levels via a PKCδ-dependent pathway and hypothesized that PKCδ-driven MK expression is required for hypoxia-induced lung epithelial cell proliferation and differentiation. Replication of human lung epithelial cells (A549) was significantly increased by chronic hypoxia (1% O2) and was dependent on expression of PKCδ. Hypoxia-induced proliferation of epithelial cells was accompanied by translocation of PKCδ from Golgi into the nuclei. Marked attenuation in MK protein levels by rottlerin, a pharmacological antagonist of PKC, and by small interfering RNA-targeting PKCδ, revealed that PKCδ is required for MK expression in both normoxic and hypoxic lung epithelial cells. Sequestering MK secreted into the culture media with a neutralizing antibody reduced hypoxia-induced proliferation demonstrating that an increase in MK release from cells is linked with epithelial cell division under hypoxia. In addition, recombinant MK accelerated transition of hypoxic epithelial cells to cells of mesenchymal phenotype characterized by elongated morphology and increased expression of mesenchymal markers, α-smooth muscle actin, and vimentin. We conclude that PKCδ/MK axis mediates hypoxic proliferation and differentiation of lung epithelial cells. Manipulation of PKCδ and MK activity in epithelial cells might be beneficial for the treatment of hypoxia-mediated lung diseases.

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