Ceruloplasmin protects injured spinal cord from iron-mediated oxidative damage

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Abstract

CNS injury-induced hemorrhage and tissue damage leads to excess iron, which can cause secondary degeneration. The mechanisms that handle this excess iron are not fully understood. We report that spinal cord contusion injury (SCI) in mice induces an "iron homeostatic response" that partially limits iron-catalyzed oxidative damage. We show that ceruloplasmin (Cp), a ferroxidase that oxidizes toxic ferrous iron, is important for this process. SCI in Cp-deficient mice demonstrates that Cp detoxifies and mobilizes iron and reduces secondary tissue degeneration and functional loss. Our results provide new insights into how astrocytes and macrophages handle iron after SCI. Importantly, we show that iron chelator treatment has a delayed effect in improving locomotor recovery between 3 and 6 weeks after SCI. These data reveal important aspects of the molecular control of CNS iron homeostasis after SCI and suggest that iron chelator therapy may improve functional recovery after CNS trauma and hemorrhagic stroke. Copyright © 2008 Society for Neuroscience.

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APA

Rathore, K. I., Kerr, B. J., Redensek, A., López-Vales, R., Suh, Y. J., Ponka, P., & David, S. (2008). Ceruloplasmin protects injured spinal cord from iron-mediated oxidative damage. Journal of Neuroscience, 28(48), 12736–12747. https://doi.org/10.1523/JNEUROSCI.3649-08.2008

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