Local inhibition of elastase reduces EMILIN1 cleavage reactivating lymphatic vessel function in a mouse lymphoedema model Journal Article


Authors: Pivetta, E.; Wassermann, B.; Del Bel Belluz, L.; Danussi, C.; Modica, T. M. E.; Maiorani, O.; Bosisio, G.; Boccardo, F.; Canzonieri, V.; Colombatti, A.; Spessotto, P.
Article Title: Local inhibition of elastase reduces EMILIN1 cleavage reactivating lymphatic vessel function in a mouse lymphoedema model
Abstract: Lymphatic vasculature critically depends on the connections of lymphatic endothelial cells with the extracellular matrix (ECM), which are mediated by anchoring filaments (AFs). The ECM protein EMILIN1 is a component of AFs and is involved in the regulation of lymphatic vessel functions: accordingly, Emilin1-/- mice display lymphatic vascular morphological alterations, leading to functional defects such as mild lymphoedema, lymph leakage and compromised lymph drainage. In the present study, using a mouse post-surgical tail lymphoedema model, we show that the acute phase of acquired lymphoedema correlates with EMILIN1 degradation due to neutrophil elastase (NE) released by infiltrating neutrophils. As a consequence, the intercellular junctions of lymphatic endothelial cells are weakened and drainage to regional lymph nodes is severely affected. The local administration of sivelestat, a specific NE inhibitor, prevents EMILIN1 degradation and reduces lymphoedema, restoring a normal lymphatic functionality. The finding that, in human secondary lymphoedema samples, we also detected cleaved EMILIN1 with the typical bands of an NE-dependent pattern of fragmentation establishes a rationale for a powerful strategy that targets NE inhibition. In conclusion, the attempts to block EMILIN1 degradation locally represent the basis for a novel 'ECM' pharmacological approach to assessing new lymphoedema treatments. © 2016 The Author(s).
Keywords: extracellular matrix; emilin1; human lymphoedematous tissue; neutrophil elastase; secondary lymphoedema; sivelestat
Journal Title: Clinical Science
Volume: 130
Issue: 14
ISSN: 0143-5221
Publisher: Portland Press Ltd  
Date Published: 2016-06-01
Start Page: 1221
End Page: 1236
Language: English
DOI: 10.1042/cs20160064
PROVIDER: scopus
PMCID: PMC4888021
PUBMED: 26920215
DOI/URL:
Notes: Article -- Export Date: 3 April 2017 -- Source: Scopus
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