Journal of Neurochemistry · 2009 · 47 citations · 29 references
Dna DamageIron MetabolismMolecular BiologyDisrupted Metal HomeostasisElevated MetalsRedox BiologyOxidative StressOxidative Dna DamageIron HomeostasisNeuronal DnaBrain InjuryNeurologyBase Excision RepairNeuroprotectionCell BiologyBioactive MetalMetalloproteinNeuroscienceMedicine
Tissue-specific iron content is tightly regulated to simultaneously satisfy specialized metabolic needs and avoid cytotoxicity. In the brain, disruption of iron homeostasis may occur in acute as well as progressive injuries associated with neuronal dysfunction and death. We hypothesized that adverse effects of disrupted metal homeostasis on brain function may involve impairment of DNA repair processes. Because in the brain, the base excision repair (BER) pathway is central for handling oxidatively damaged DNA, we investigated effects of elevated iron and zinc on key BER enzymes. In vitro DNA repair assays revealed inhibitory effects of metals on BER activities, including the incision of abasic sites, 5'-flap cleavage, gap filling DNA synthesis and ligation. Using the comet assay, we showed that while metals at concentrations which inhibit BER activities in in vitro assays, did not induce direct genomic damage in cultured primary neurons, they significantly delayed repair of genomic DNA damage induced by sublethal exposure to H(2)O(2). Thus, in the brain even a mild transient metal overload, may adversely affect the DNA repair capacity and thereby compromise genomic integrity and initiate long-term deleterious sequelae including neuronal dysfunction and death.
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Gregory J. Brewer, John R. Torricelli, E. K. Evege et al. · Journal of Neuroscience Research · 1993 · 2.3K citations
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Protein-folding location can regulate manganese-binding versus copper- or zinc-binding
Steve Tottey, Kevin J. Waldron, S.J. Firbank et al. · Nature · 2008 · 308 citations · Full text