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Myeloperoxidase deficiency preserves vasomotor function in humans

AIMS: Observational studies have suggested a mechanistic link between the leucocyte-derived enzyme myeloperoxidase (MPO) and vasomotor function. Here, we tested whether MPO is systemically affecting vascular tone in humans. METHODS AND RESULTS: A total of 12 135 patients were screened for leucocyte...

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Autores principales: Rudolph, Tanja K., Wipper, Sabine, Reiter, Beate, Rudolph, Volker, Coym, Anja, Detter, Christian, Lau, Denise, Klinke, Anna, Friedrichs, Kai, Rau, Thomas, Pekarova, Michaela, Russ, Detlef, Knöll, Kay, Kolk, Mandy, Schroeder, Bernd, Wegscheider, Karl, Andresen, Hilke, Schwedhelm, Edzard, Boeger, Rainer, Ehmke, Heimo, Baldus, Stephan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3388013/
https://www.ncbi.nlm.nih.gov/pubmed/21724624
http://dx.doi.org/10.1093/eurheartj/ehr193
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author Rudolph, Tanja K.
Wipper, Sabine
Reiter, Beate
Rudolph, Volker
Coym, Anja
Detter, Christian
Lau, Denise
Klinke, Anna
Friedrichs, Kai
Rau, Thomas
Pekarova, Michaela
Russ, Detlef
Knöll, Kay
Kolk, Mandy
Schroeder, Bernd
Wegscheider, Karl
Andresen, Hilke
Schwedhelm, Edzard
Boeger, Rainer
Ehmke, Heimo
Baldus, Stephan
author_facet Rudolph, Tanja K.
Wipper, Sabine
Reiter, Beate
Rudolph, Volker
Coym, Anja
Detter, Christian
Lau, Denise
Klinke, Anna
Friedrichs, Kai
Rau, Thomas
Pekarova, Michaela
Russ, Detlef
Knöll, Kay
Kolk, Mandy
Schroeder, Bernd
Wegscheider, Karl
Andresen, Hilke
Schwedhelm, Edzard
Boeger, Rainer
Ehmke, Heimo
Baldus, Stephan
author_sort Rudolph, Tanja K.
collection PubMed
description AIMS: Observational studies have suggested a mechanistic link between the leucocyte-derived enzyme myeloperoxidase (MPO) and vasomotor function. Here, we tested whether MPO is systemically affecting vascular tone in humans. METHODS AND RESULTS: A total of 12 135 patients were screened for leucocyte peroxidase activity. We identified 15 individuals with low MPO expression and activity (MPO(low)), who were matched with 30 participants exhibiting normal MPO protein content and activity (control). Nicotine-dependent activation of leucocytes caused attenuation of endothelial nitric oxide (NO) bioavailability in the control group (P < 0.01), but not in MPO(low) individuals (P = 0.12); here the MPO burden of leucocytes correlated with the degree of vasomotor dysfunction (P = 0.008). To directly test the vasoactive properties of free circulating MPO, the enzyme was injected into the left atrium of anaesthetized, open-chest pigs. Myeloperoxidase plasma levels peaked within minutes and rapidly declined thereafter, reflecting vascular binding of MPO. Blood flow in the left anterior descending artery and the internal mammary artery (IMA) as well as myocardial perfusion decreased following MPO injection when compared with albumin-treated animals (P < 0.001). Isolated IMA-rings from animals subjected to MPO revealed markedly diminished relaxation in response to acetylcholine (P < 0.01) and nitroglycerine as opposed to controls (P < 0.001). CONCLUSION: Myeloperoxidase elicits profound effects on vascular tone of conductance and resistance vessels in vivo. These findings not only call for revisiting the biological functions of leucocytes as systemic and mobile effectors of vascular tone, but also identify MPO as a critical systemic regulator of vasomotion in humans and thus a potential therapeutic target.
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spelling pubmed-33880132012-07-03 Myeloperoxidase deficiency preserves vasomotor function in humans Rudolph, Tanja K. Wipper, Sabine Reiter, Beate Rudolph, Volker Coym, Anja Detter, Christian Lau, Denise Klinke, Anna Friedrichs, Kai Rau, Thomas Pekarova, Michaela Russ, Detlef Knöll, Kay Kolk, Mandy Schroeder, Bernd Wegscheider, Karl Andresen, Hilke Schwedhelm, Edzard Boeger, Rainer Ehmke, Heimo Baldus, Stephan Eur Heart J Basic Science AIMS: Observational studies have suggested a mechanistic link between the leucocyte-derived enzyme myeloperoxidase (MPO) and vasomotor function. Here, we tested whether MPO is systemically affecting vascular tone in humans. METHODS AND RESULTS: A total of 12 135 patients were screened for leucocyte peroxidase activity. We identified 15 individuals with low MPO expression and activity (MPO(low)), who were matched with 30 participants exhibiting normal MPO protein content and activity (control). Nicotine-dependent activation of leucocytes caused attenuation of endothelial nitric oxide (NO) bioavailability in the control group (P < 0.01), but not in MPO(low) individuals (P = 0.12); here the MPO burden of leucocytes correlated with the degree of vasomotor dysfunction (P = 0.008). To directly test the vasoactive properties of free circulating MPO, the enzyme was injected into the left atrium of anaesthetized, open-chest pigs. Myeloperoxidase plasma levels peaked within minutes and rapidly declined thereafter, reflecting vascular binding of MPO. Blood flow in the left anterior descending artery and the internal mammary artery (IMA) as well as myocardial perfusion decreased following MPO injection when compared with albumin-treated animals (P < 0.001). Isolated IMA-rings from animals subjected to MPO revealed markedly diminished relaxation in response to acetylcholine (P < 0.01) and nitroglycerine as opposed to controls (P < 0.001). CONCLUSION: Myeloperoxidase elicits profound effects on vascular tone of conductance and resistance vessels in vivo. These findings not only call for revisiting the biological functions of leucocytes as systemic and mobile effectors of vascular tone, but also identify MPO as a critical systemic regulator of vasomotion in humans and thus a potential therapeutic target. Oxford University Press 2012-07 2011-06-30 /pmc/articles/PMC3388013/ /pubmed/21724624 http://dx.doi.org/10.1093/eurheartj/ehr193 Text en Published on behalf of the European Society of Cardiology. All rights reserved. © The Author 2011. For permissions please email: journals.permissions@oup.com http://creativecommons.org/licenses/by-nc/2.5/ The online version of this article has been published under an open access model. Users are entitled to use, reproduce, disseminate, or display the open access version of this article for non-commercial purposes provided that the original authorship is properly and fully attributed; the Journal, Learned Society and Oxford University Press are attributed as the original place of publication with correct citation details given; if an article is subsequently reproduced or disseminated not in its entirety but only in part or as a derivative work this must be clearly indicated. For commercial re-use, please contact journals.permissions@oup.com.
spellingShingle Basic Science
Rudolph, Tanja K.
Wipper, Sabine
Reiter, Beate
Rudolph, Volker
Coym, Anja
Detter, Christian
Lau, Denise
Klinke, Anna
Friedrichs, Kai
Rau, Thomas
Pekarova, Michaela
Russ, Detlef
Knöll, Kay
Kolk, Mandy
Schroeder, Bernd
Wegscheider, Karl
Andresen, Hilke
Schwedhelm, Edzard
Boeger, Rainer
Ehmke, Heimo
Baldus, Stephan
Myeloperoxidase deficiency preserves vasomotor function in humans
title Myeloperoxidase deficiency preserves vasomotor function in humans
title_full Myeloperoxidase deficiency preserves vasomotor function in humans
title_fullStr Myeloperoxidase deficiency preserves vasomotor function in humans
title_full_unstemmed Myeloperoxidase deficiency preserves vasomotor function in humans
title_short Myeloperoxidase deficiency preserves vasomotor function in humans
title_sort myeloperoxidase deficiency preserves vasomotor function in humans
topic Basic Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3388013/
https://www.ncbi.nlm.nih.gov/pubmed/21724624
http://dx.doi.org/10.1093/eurheartj/ehr193
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