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Oxidative stress induces myeloperoxidase expression in endocardial endothelial cells from patients with chronic heart
Giampiero La Rocca1, Antonino Di Stefano, Ermanno Eleuteri
1Sezione di Anatomia Umana, Dipto. di Medicina Sperimentale, Università degli Studi di Palermo, Palermo, Italy. giampylr@hotmail.com
Abstract:
Increased oxidative stress has been implicated in the pathogenesis of a number of cardiovascular diseases. Recent findings suggest that myeloperoxidase (MPO) may play a key role in the initiation and maintenance of chronic heart failure (CHF) by contributing to the depletion of the intracellular reservoir of nitric oxide (NO). NO consumption through MPO activity may lead to protein chlorination or nitration, leading to tissue damage. Primary cultures of human endocardial endothelial cells (EEC) obtained at heart transplantation of patients with CHF and human umbilical vein endothelial cells (HUVEC) were subjected to oxidative stress by incubation with hydrogen peroxide at non lethal (60 microM) dose for different exposure times (3 and 6 h). Treated and control cells were tested by immunohistochemistry and RT-PCR for MPO and 3-chlorotyrosine expression. Both endothelial cell types expressed myeloperoxidase following oxidative stress, with higher levels in EEC. Moreover, 3-chlorotyrosine accumulation in treated cells alone indicated the presence of MPO-derived hypochlorous acid. Immunohistochemistry on sections from post-infarcted heart confirmed in vivo the endothelial positivity to MPO, 3-chlorotyrosine and, to a minor extent, nitrotyrosine. Immunohistochemical observations were confirmed by detection of MPO mRNA in both stimulated EEC and HUVEC cells. This study demonstrates for the first time that EEC can express MPO after oxidative stress, both in vitro and in vivo, followed by accumulation of 3-chlorotyrosine, an end product of oxidative stress. Deregulation of endothelial functions may contribute to the development of a number of cardiovascular diseases, including CHF. The results also highlight the notion that endothelium is not only a target but also a key player in oxidative-driven cardiovascular stress.
Insights
Oxidative stress induces myeloperoxidase (MPO) in human endothelial cells, leading to 3-chlorotyrosine formation. This highlights the endothelium's role in cardiovascular diseases like chronic heart failure (CHF).
Area of Science:
- Cardiovascular Science
- Oxidative Stress Research
- Endothelial Cell Biology
Background:
- Oxidative stress is linked to cardiovascular diseases.
- Myeloperoxidase (MPO) may contribute to chronic heart failure (CHF) by depleting nitric oxide (NO).
- MPO activity can cause protein modification and tissue damage.
Purpose of the Study:
- To investigate MPO expression and activity in human endothelial cells under oxidative stress.
- To determine the role of endothelial MPO in the pathogenesis of cardiovascular diseases.
Main Methods:
- Primary cultures of human endocardial endothelial cells (EEC) and human umbilical vein endothelial cells (HUVEC) were exposed to hydrogen peroxide.
- Immunohistochemistry and RT-PCR were used to detect MPO and 3-chlorotyrosine expression.
- In vivo analysis was performed on post-infarcted heart sections.
Main Results:
- Both EEC and HUVEC expressed MPO after oxidative stress, with higher levels in EEC.
- 3-chlorotyrosine, an MPO-derived product, accumulated in stressed cells.
- Endothelial MPO and 3-chlorotyrosine were confirmed in vivo in post-infarcted hearts.
Conclusions:
- Human endothelial cells express MPO in response to oxidative stress, both in vitro and in vivo.
- Endothelial MPO activity contributes to oxidative stress and may play a role in cardiovascular disease development.
- The endothelium is an active participant in oxidative stress-driven cardiovascular pathology.
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