Hypoxia-induced changes in Ca2+ mobilization and protein phosphorylation implicated in impaired wound healing

伤口愈合 磷酸化 缺氧(环境) 细胞生物学 动员 化学 生物 氧气 免疫学 政治学 有机化学 法学
作者
Albert Lee,Kelsey Derricks,Martin Minns,Sophina Ji,Cheryl Chi,Matthew A. Nugent,Vickery Trinkaus‐Randall
出处
期刊:American Journal of Physiology-cell Physiology [American Physical Society]
卷期号:306 (10): C972-C985 被引量:33
标识
DOI:10.1152/ajpcell.00110.2013
摘要

The process of wound healing must be tightly regulated to achieve successful restoration of injured tissue. Previously, we demonstrated that when corneal epithelium is injured, nucleotides and neuronal factors are released to the extracellular milieu, generating a Ca 2+ wave from the origin of the wound to neighboring cells. In the present study we sought to determine how the communication between epithelial cells in the presence or absence of neuronal wound media is affected by hypoxia. A signal-sorting algorithm was developed to determine the dynamics of Ca 2+ signaling between neuronal and epithelial cells. The cross talk between activated corneal epithelial cells in response to neuronal wound media demonstrated that injury-induced Ca 2+ dynamic patterns were altered in response to decreased O 2 levels. These alterations were associated with an overall decrease in ATP and changes in purinergic receptor-mediated Ca 2+ mobilization and localization of N-methyl-d-aspartate receptors. In addition, we used the cornea in an organ culture wound model to examine how hypoxia impedes reepithelialization after injury. There was a change in the recruitment of paxillin to the cell membrane and deposition of fibronectin along the basal lamina, both factors in cell migration. Our results provide evidence that complex Ca 2+ -mediated signaling occurs between sensory neurons and epithelial cells after injury and is critical to wound healing. Information revealed by these studies will contribute to an enhanced understanding of wound repair under compromised conditions and provide insight into ways to effectively stimulate proper epithelial repair.
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