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1.
Biol. Res ; 39(1): 59-66, 2006. ilus
Article in English | LILACS | ID: lil-430698

ABSTRACT

Translational control is a common regulatory mechanism for the expression of iron-related proteins. For example, three enzymes involved in erythrocyte development are regulated by three different control mechanisms: globin synthesis is modulated by heme-regulated translational inhibitor; erythroid 5-aminolevulinate synthase translation is inhibited by binding of the iron regulatory protein to the iron response element in the 5'-untranslated region (UTR); and 15-lipoxygenase is regulated by specific proteins binding to the 3'-UTR. Ceruloplasmin (Cp) is a multi-functional, copper protein made primarily by the liver and by activated macrophages. Cp has important roles in iron homeostasis and in inflammation. Its role in iron metabolism was originally proposed because of its ferroxidase activity and because of its ability to stimulate iron loading into apo-transferrin and iron efflux from liver. We have shown that Cp mRNA is induced by interferon (IFN)-ã in U937 monocytic cells, but synthesis of Cp protein is halted by translational silencing. The silencing mechanism requires binding of a cytosolic inhibitor complex, IFN-Gamma-Activated Inhibitor of Translation (GAIT), to a specific GAIT element in the Cp 3'-UTR. Here, we describe our studies that define and characterize the GAIT element and elucidate the specific trans-acting proteins that bind the GAIT element. Our experiments describe a new mechanism of translational control of an iron-related protein and may shed light on the role that macrophage-derived Cp plays at the intersection of iron homeostasis and inflammation.


Subject(s)
Animals , Humans , /physiology , Ceruloplasmin/physiology , Iron-Regulatory Proteins/physiology , Iron/metabolism , Protein Biosynthesis/physiology , /genetics , Ceruloplasmin/genetics , Gene Expression Regulation/genetics , Gene Expression Regulation/physiology , Homeostasis/genetics , Homeostasis/physiology , Inflammation/metabolism , Interferon-gamma/metabolism , Iron-Regulatory Proteins/genetics , Protein Biosynthesis/genetics , RNA, Messenger
2.
Biol. Res ; 39(1): 167-171, 2006. ilus, tab
Article in English | LILACS | ID: lil-430709

ABSTRACT

Bioiron _ central to respiration, photosynthesis and DNA synthesis and complicated by radical chemistry with oxygen _ depends on ferritin, the super family of protein nanocages (maxi-ferritins in humans, animals, plants and bacteria, and mini-ferritins, also called DPS proteins, in bacteria) for iron and oxygen control. Regulation of ferritin synthesis, best studied in animals, uses DNA transcription and mRNA translation check points. Ferritin is a member of both the "oxidant stress response" gene family that includes thioredoxin reductase and quinine reductase, and a member of the iron responsive gene family that includes ferroportin and mt-aconitase ferritin DNA regulation responds preferentially to oxidant response inducers and ferritin mRNA to iron inducers; heme confers regulator synergy. Ferritin proteins manage iron and oxygen, with ferroxidase sites and iron + oxygen substrates to form mineral of both Fe and O atoms; maxi-ferritins contribute more to cellular iron metabolism and mini-ferritins to stress responses. Iron recovery from ferritin is controlled by gated protein pores, possibly contributing to iron absorption from ferritin, a significant dietary iron source. Ferritin gene regulation is a model for integrating DNA/mRNA controls, while ferritin protein function is central to molecular nutrition cellular metabolism at the crossroads of iron and oxygen in biology.


Subject(s)
Animals , Humans , Ferritins/biosynthesis , Homeostasis , Iron-Regulatory Proteins/metabolism , Iron/metabolism , Oxygen/metabolism , DNA , Gene Expression Regulation , Iron-Regulatory Proteins/genetics , RNA, Messenger/metabolism , Transcription, Genetic
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