Medical Journals

Age-related Changes in Iron Homeostasis and Cell Death in the Cerebellum of Ceruloplasmin-deficient Mice.

Authors:
  • Jeong Suh Young
  • David Samuel

From: Centre for Research in Neuroscience, McGill University Health Centre Research Institute, Montreal, Québec, Canada H3G 1A4.

The Journal of neuroscience : the official journal of the Society for Neuroscience

  • Publish Date: Sep 2006
  • ISSN: 1529-2401
  • Volume: 26
  • Issue: 38
  • Pages: 9810-9
  • Medium: Internet
  • Language: English
  • Citation (JAMA): Jeong Suh Young, David Samuel, et al. Age-related Changes in Iron Homeostasis and Cell Death in the Cerebellum of Ceruloplasmin-deficient Mice.. J. Neurosci. Sep 2006;26:9810-9

Abstract

Iron is essential for a variety of cellular functions, but its levels and bioavailability must be tightly regulated because of its toxic redox activity. A number of transporters, binding proteins, reductases, and ferroxidases help maintain iron homeostasis to prevent cell damage. The multi-copper ferroxidase ceruloplasmin (Cp) converts toxic ferrous iron to its nontoxic ferric form and is required for iron efflux from cells. Absence of this enzyme in humans leads to iron accumulation and neurodegeneration in the CNS. Here we report on the changes that occur in the cerebellum of Cp null (Cp-/-) mice with aging. We show that iron accumulation, which is reflected in increased ferritin expression, occurs mainly in astrocytes by 24 months in Cp-/- mice and is accompanied by a significant loss of these cells. In contrast, Purkinje neurons and the large neurons in the deep nuclei of Cp-/- mice do not accumulate iron but express high levels of the iron importer divalent metal transporter 1, suggesting that these cells may be iron deprived. This is also accompanied by a significant reduction in the number of Purkinje neurons. These data suggest that astrocytes play a central role in the acquisition of iron from the circulation and that two different mechanisms underlie the loss of astrocytes and neurons in Cp-/- mice. These findings provide a better understanding of the degenerative changes seen in humans with aceruloplasminemia and have implications for normal aging and neurodegenerative diseases in which iron accumulation occurs.

Mesh Headings (Keywords): Aging, Animals, Cell Death, Cerebellum, Ceruloplasmin, Homeostasis, Iron, Mice, Mice, Inbred C57BL, Mice, Knockout, Mice, Transgenic, RNA, Messenger


Check for Full Text / PubMed Unique Identifier (PMID): 16988052


This abstract is part of PubMed, a service of the U.S. National Library of Medicine. PubMed includes more than 17 million citations from MEDLINE and other life science journals for biomedical articles. See Copyright and Disclaimers.

Linked medical terms appearing on this page are added by Healia to help readers find more information and are not part of the original PubMed document.

The data herein was last updated on July 8th, 2008 and may not reflect the most current and accurate data available from NLM.


Advertisements

About | Privacy Policy | Business Solutions | Advertise | Contact | Add Healia to your site

©2012. Healia / Meredith Corporation  

Use of this site constitutes acceptance of our Terms of Service and Privacy Policy. All content on this Web site, including medical opinion and any other health-related information, is for informational purposes only and should not be used for a specific diagnosis or individual treatment plan for any situation. Use of this site and the information contained herein does not create a doctor-patient relationship. Always seek the direct advice of your doctor in connection with any questions or issues you may have regarding your own health or the health of others.