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PMID: 14555222 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

Apoptosis in the normal and inflamed airway epithelium: role of zinc in epithelial protection and procaspase-3 regulation.

Biochemical pharmacology ·Vol. 66 ·No. 8 ·2003-10-15 ·Pages 1459-68

Truong-Tran AQ, Grosser D, Ruffin RE, Murgia C, Zalewski PD

Abstract

The epithelium lining the airways is a physical barrier as well as a regulator of physiological and pathological events in the respiratory system. Damage to the epithelium by oxidants released from inflammatory cells is a critical factor in the pathogenesis of airway inflammatory diseases such as bronchial asthma. In these diseases, excessive apoptosis may be a likely mechanism responsible for damage to, and sloughing, of airway epithelial cells. Factors that increase the airway epithelium's resilience to apoptosis are likely to lessen the severity of this disease. One such factor is the dietary metal zinc. A special role for labile intracellular pools of zinc as anti-apoptotic agents in the regulation of the caspases, has emerged over the past two decades. This review focuses on caspase-inhibitory functions of zinc in airway epithelial cells, apparent abnormalities of zinc homeostasis in asthmatics and studies from the authors' laboratory which showed that zinc was strategically localized in the apical cytoplasm of airway epithelium to control caspase-3 activated apoptosis. These findings are discussed in the context of recent data from a murine model of allergic asthma, showing that loss of airway epithelial zinc was accompanied by changes in levels of both procaspase-3 and active caspase-3 and that nutritional zinc deprivation further increased airway epithelial apoptosis. We hypothesize that zinc has a protective role for the airway epithelium against oxyradicals and other noxious agents, with important implications for asthma and other inflammatory diseases where the epithelial barrier is vulnerable and compromised.

MeSH Terms
Animals Apoptosis Asthma/pathology Caspase 3 Caspases/metabolism Enzyme Precursors/metabolism Epithelium/drug effects Humans Inflammation/pathology Protective Agents/pharmacology Quinolones/pharmacology Respiratory Mucosa/drug effects,pathology Tosyl Compounds/pharmacology Zinc/pharmacology
Chemicals
Enzyme Precursors Protective Agents Quinolones Tosyl Compounds CASP3 protein, human Caspase 3 Caspases Zinc zinquin
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Truong-Tran Ai Q
Department of Medicine, University of Adelaide, The Queen Elizabeth Hospital, Woodville, South Australia 5011, Australia.
Grosser Dion
Ruffin Richard E
Murgia Chiara
Zalewski Peter D
Article Info
Journal
Biochemical pharmacology
Abbr.
Biochem Pharmacol
ISSN
0006-2952
Published
2003-10-15
Pages
1459-68
Language
English
Region
England
NLM ID
0101032
Subset
IM
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