Heme, heme oxygenase and ferritin in vascular endothelial cell injury
- 1 November 2005
- journal article
- review article
- Published by Wiley in Molecular Nutrition & Food Research
- Vol. 49 (11) , 1030-1043
- https://doi.org/10.1002/mnfr.200500076
Abstract
Iron‐derived reactive oxygen species are implicated in the pathogenesis of numerous vascular disorders including atherosclerosis, microangiopathic hemolytic anemia, vasculitis, and reperfusion injury. One abundant source of redox active iron is heme, which is inherently dangerous when released from intracellular heme proteins. The present review concerns the involvement of heme in vascular endothelial cell damage and the strategies used by endothelium to minimize such damage. Exposure of endothelium to heme greatly potentiates cell killing mediated by polymorphonuclear leukocytes and other sources of reactive oxygen. Free heme also promotes the conversion of low‐density lipoprotein (LDL) into cytotoxic oxidized products. Only because of its abundance, hemoglobin probably represents the most important potential source of heme within the vascular endothelium; hemoglobin in plasma, when oxidized, transfers heme to endothelium and LDL, thereby enhancing cellular susceptibility to oxidant‐mediated injury. As a defense against such toxicity, upon exposure to heme or hemoglobin, endothelial cells up‐regulate heme oxygenase‐1 and ferritin. Heme oxygenase‐1 is a heme‐degrading enzyme that opens the porphyrin ring, producing biliverdin, carbon monoxide, and the most dangerous product – free redox active iron. The latter can be effectively controlled by ferritin via sequestration and ferroxidase activity. Ferritin serves as a protective gene by virtue of antioxidant, antiapoptotic, and antiproliferative actions. These homeostatic adjustments have been shown effective in the protection of endothelium against the damaging effects of exogenous heme and oxidants. The central importance of this protective system was recently highlighted by a child diagnosed with heme oxygenase‐1 deficiency, who exhibited extensive endothelial damage.Keywords
This publication has 117 references indexed in Scilit:
- Intracranial Heme Metabolism and Cerebral Vasospasm After Aneurysmal Subarachnoid HemorrhageStroke, 2003
- Iron and Iron-Handling Proteins in the Brain After Intracerebral HemorrhageStroke, 2003
- A cis -Acting Region Regulates Oxidized Lipid-Mediated Induction of the Human Heme Oxygenase-1 Gene in Endothelial CellsArteriosclerosis, Thrombosis, and Vascular Biology, 2003
- Links Between Cell-Surface Events Involving Redox-Active Copper and Gene Regulation in the Hemopexin Heme Transport SystemAntioxidants and Redox Signaling, 2000
- Haptoglobin polymorphism, a genetic risk factor in coronary artery bypass surgeryAtherosclerosis, 1997
- The interaction between ruptured erythrocytes and low‐density lipoproteinsFEBS Letters, 1992
- Derepression of Ferritin Mmessenger RNA Translation by Hemin in VitroScience, 1990
- Identification of the ferroxidase centre in ferritinFEBS Letters, 1989
- Book ReviewAmbulatory Pediatric CareNew England Journal of Medicine, 1989
- The antioxidant activity of haptoglobin towards haemoglobin-stimulated lipid peroxidationBiochimica et Biophysica Acta (BBA) - Lipids and Lipid Metabolism, 1987