A novel neutrophil elastase inhibitor prevents elastase activation and surface cleavage of the epithelial sodium channel expressed in Xenopus laevis oocytes.


Autoria(s): Harris M.; Firsov D.; Vuagniaux G.; Stutts M.J.; Rossier B.C.
Data(s)

2007

Resumo

The amiloride-sensitive epithelial sodium channel (ENaC) constitutes a limiting step in sodium reabsorption across distal airway epithelium and controlling mucociliary clearance. ENaC is activated by serine proteases secreted in the extracellular milieu. In cystic fibrosis lungs, high concentrations of secreted neutrophil elastase (NE) are observed. hNE could activate ENaC and contribute to further decreased mucociliary clearance. The aims of this study were (i) to test the ability of an engineered human neutrophil elastase inhibitor (EPI-hNE4) to specifically inhibit the elastase activation of ENaC-mediated amiloride-sensitive currents (I(Na)) and (ii) to examine the effect of elastase on cell surface expression of ENaC and its cleavage pattern (exogenous proteolysis). Oocytes were exposed to hNE (10-100 microg/ml) and/or trypsin (10 microg/ml) for 2-5 min in the presence or absence of EPI-hNE4 (0.7 microm). hNE activated I(Na) 3.6-fold (p < 0.001) relative to non-treated hENaC-injected oocytes. EPI-hNE4 fully inhibited hNE-activated I(Na) but had no effect on trypsin- or prostasin-activated I(Na). The co-activation of I(Na) by hNE and trypsin was not additive. Biotinylation experiments revealed that cell surface gamma ENaC (but not alpha or beta ENaC) exposed to hNE for 2 min was cleaved (as a 67-kDa fragment) and correlated with increased I(Na). The elastase-induced exogenous proteolysis pattern is distinct from the endogenous proteolysis pattern induced upon preferential assembly, suggesting a causal relationship between gamma ENaC cleavage and ENaC activation, taking place at the plasma membrane.

Identificador

http://serval.unil.ch/?id=serval:BIB_35E5FA553DC5

isbn:0021-9258 (Print)

pmid:17090546

doi:10.1074/jbc.M605125200

isiid:000243166500007

Idioma(s)

en

Fonte

Journal of Biological Chemistry, vol. 282, no. 1, pp. 58-64

Palavras-Chave #Animals; Cell Membrane/metabolism; Enzyme Activation; Enzyme Inhibitors/chemistry; Epithelial Sodium Channel/metabolism; Epithelial Sodium Channel/physiology; Leukocyte Elastase/antagonists & inhibitors; Oocytes/metabolism; Peptides/chemistry; Peptides/pharmacology; Protein Engineering; RNA, Complementary/metabolism; Serine Endopeptidases/chemistry; Surface Properties; Trypsin/chemistry; Xenopus laevis
Tipo

info:eu-repo/semantics/article

article