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1.
J Biol Chem ; 283(8): 5168-77, 2008 Feb 22.
Article in English | MEDLINE | ID: mdl-18073202

ABSTRACT

One consequence of zinc deficiency is an elevation in cell and tissue iron concentrations. To examine the mechanism(s) underlying this phenomenon, Swiss 3T3 cells were cultured in zinc-deficient (D, 0.5 microM zinc), zinc-supplemented (S, 50 microM zinc), or control (C, 4 microM zinc) media. After 24 h of culture, cells in the D group were characterized by a 50% decrease in intracellular zinc and a 35% increase in intracellular iron relative to cells in the S and C groups. The increase in cellular iron was associated with increased transferrin receptor 1 protein and mRNA levels and increased ferritin light chain expression. The divalent metal transporter 1(+)iron-responsive element isoform mRNA was decreased during zinc deficiency-induced iron accumulation. Examination of zinc-deficient cells revealed increased binding of iron regulatory protein 2 (IRP2) and decreased binding of IRP1 to a consensus iron-responsive element. The increased IRP2-binding activity in zinc-deficient cells coincided with an increased level of IRP2 protein. The accumulation of IRP2 protein was independent of zinc deficiency-induced intracellular nitric oxide production but was attenuated by the addition of the antioxidant N-acetylcysteine or ascorbate to the D medium. These data support the concept that zinc deficiency can result in alterations in iron transporter, storage, and regulatory proteins, which facilitate iron accumulation.


Subject(s)
Gene Expression Regulation/physiology , Iron/metabolism , Zinc/deficiency , 3T3 Cells , Acetylcysteine/pharmacology , Animals , Antioxidants/pharmacology , Apoferritins/biosynthesis , Ascorbic Acid/pharmacology , Gene Expression Regulation/drug effects , Iron Regulatory Protein 1/biosynthesis , Iron Regulatory Protein 2/biosynthesis , Mice , Nitric Oxide/metabolism , RNA, Messenger/biosynthesis , Receptors, Transferrin/biosynthesis , Response Elements/physiology
2.
Biochem J ; 383(Pt 1): 63-71, 2004 Oct 01.
Article in English | MEDLINE | ID: mdl-15198639

ABSTRACT

Protein kinases C (PKCs) are a family of serine/threonine kinases that are critical for signal transduction pathways involved in growth, differentiation and cell death. All PKC isoforms have four conserved domains, C1-C4. The C1 domain contains cysteine-rich finger-like motifs, which bind two zinc atoms. The zinc-finger motifs modulate diacylglycerol binding; thus, intracellular zinc concentrations could influence the activity and localization of PKC family members. 3T3 cells were cultured in zinc-deficient or zinc-supplemented medium for up to 32 h. Cells cultured in zinc-deficient medium had decreased zinc content, lowered cytosolic classical PKC activity, increased caspase-3 processing and activity, and reduced cell number. Zinc-deficient cytosols had decreased activity and expression levels of PKC-alpha, whereas PKC-alpha phosphorylation was not altered. Inhibition of PKC-alpha with Gö6976 had no effect on cell number in the zinc-deficient group. Proteolysis of the novel PKC family member, PKC-delta, to its 40-kDa catalytic fragment occurred in cells cultured in the zinc-deficient medium. Occurrence of the PKC-delta fragment in mitochondria was co-incident with caspase-3 activation. Addition of the PKC-delta inhibitor, rottlerin, or zinc to deficient medium reduced or eliminated proteolysis of PKC-delta, activated caspase-3 and restored cell number. Inhibition of caspase-3 processing by Z-DQMD-FMK (Z-Asp-Gln-Met-Asp-fluoromethylketone) did not restore cell number in the zinc-deficient group, but resulted in processing of full-length PKC-delta to a 56-kDa fragment. These results support the concept that intracellular zinc concentrations influence PKC activity and processing, and that zinc-deficiency-induced apoptosis occurs in part through PKC-dependent pathways.


Subject(s)
Apoptosis/physiology , Protein Kinase C/metabolism , Zinc/deficiency , 3T3 Cells , Animals , Caspase 3 , Caspases/metabolism , Cytosol/enzymology , Enzyme Activation , Isoenzymes/metabolism , Mice , Protein Kinase C-alpha , Protein Kinase C-delta , Protein Processing, Post-Translational , Subcellular Fractions/enzymology
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