Literature DB >> 9571238

Nuclear ferritin protects DNA from UV damage in corneal epithelial cells.

C X Cai1, D E Birk, T F Linsenmayer.   

Abstract

Previously, we identified the heavy chain of ferritin as a developmentally regulated nuclear protein of embryonic chicken corneal epithelial cells. The nuclear ferritin is assembled into a supramolecular form indistinguishable from the cytoplasmic form of ferritin found in other cell types and thus most likely has iron-sequestering capabilities. Free iron, via the Fenton reaction, is known to exacerbate UV-induced and other oxidative damage to cellular components, including DNA. Since corneal epithelial cells are constantly exposed to UV light, we hypothesized that the nuclear ferritin might protect the DNA of these cells from free radical damage. To test this possibility, primary cultures of cells from corneal epithelium and stroma, and from skin epithelium and stroma, were UV irradiated, and DNA strand breaks were detected by an in situ 3'-end labeling method. Corneal epithelial cells without nuclear ferritin were also examined. We observed that the corneal epithelial cells with nuclear ferritin had significantly less DNA breakage than other cell types examined. Furthermore, increasing the iron concentration of the culture medium exacerbated the generation of UV-induced DNA strand breaks in corneal and skin fibroblasts, but not in the corneal epithelial cells. Most convincingly, corneal epithelial cells in which the expression of nuclear ferritin was inhibited became much more susceptible to UV-induced DNA damage. Therefore, it seems that corneal epithelial cells have evolved a novel, nuclear ferritin-based mechanism for protecting their DNA against UV damage.

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Year:  1998        PMID: 9571238      PMCID: PMC25328          DOI: 10.1091/mbc.9.5.1037

Source DB:  PubMed          Journal:  Mol Biol Cell        ISSN: 1059-1524            Impact factor:   4.138


  31 in total

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  31 in total

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Review 2.  Iron metabolism in the eye: a review.

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3.  Human aldehyde dehydrogenase 3A1 (ALDH3A1): biochemical characterization and immunohistochemical localization in the cornea.

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Review 4.  Ultraviolet radiation: cellular antioxidant response and the role of ocular aldehyde dehydrogenase enzymes.

Authors:  Satori A Marchitti; Ying Chen; David C Thompson; Vasilis Vasiliou
Journal:  Eye Contact Lens       Date:  2011-07       Impact factor: 2.018

5.  Dysregulated heme oxygenase-ferritin system in pterygium pathogenesis.

Authors:  Timothy Fox; Katherine H Gotlinger; Michael W Dunn; Olivia L Lee; Tatyana Milman; Gerald Zaidman; Michal L Schwartzman; Lars Bellner
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6.  Hemin-mediated regulation of an antioxidant-responsive element of the human ferritin H gene and role of Ref-1 during erythroid differentiation of K562 cells.

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Review 7.  Antioxidant defenses in the ocular surface.

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Journal:  Ocul Surf       Date:  2009-10       Impact factor: 5.033

8.  Developmental regulation of the nuclear ferritoid-ferritin complex of avian corneal epithelial cells: roles of systemic factors and thyroxine.

Authors:  Kelly E Beazley; James P Canner; Thomas F Linsenmayer
Journal:  Exp Eye Res       Date:  2009-07-21       Impact factor: 3.467

9.  Multiple and additive functions of ALDH3A1 and ALDH1A1: cataract phenotype and ocular oxidative damage in Aldh3a1(-/-)/Aldh1a1(-/-) knock-out mice.

Authors:  Natalie Lassen; J Bronwyn Bateman; Tia Estey; Jer R Kuszak; David W Nees; Joram Piatigorsky; Gregg Duester; Brian J Day; Jie Huang; Lisa M Hines; Vasilis Vasiliou
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10.  Deficiency of ferritin heavy-chain nuclear import in triple a syndrome implies nuclear oxidative damage as the primary disease mechanism.

Authors:  Helen L Storr; Barbara Kind; David A Parfitt; J Paul Chapple; M Lorenz; Katrin Koehler; Angela Huebner; Adrian J L Clark
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