eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.

Endothelial nitric oxide synthase (eNOS)-related vessel relaxation is a highly coordinated process that regulates blood flow and pressure and is dependent on caveolae. Here, we investigated the role of caveolar plasma membrane stabilization by the dynamin-related ATPase EHD2 on eNOS-nitric oxide (NO...

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Main Authors: Claudia Matthaeus, Xiaoming Lian, Séverine Kunz, Martin Lehmann, Cheng Zhong, Carola Bernert, Ines Lahmann, Dominik N Müller, Maik Gollasch, Oliver Daumke
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0223620
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spelling doaj-90f0a162800541d2975c2545f206a29d2021-03-03T21:06:25ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-011410e022362010.1371/journal.pone.0223620eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.Claudia MatthaeusXiaoming LianSéverine KunzMartin LehmannCheng ZhongCarola BernertInes LahmannDominik N MüllerMaik GollaschOliver DaumkeEndothelial nitric oxide synthase (eNOS)-related vessel relaxation is a highly coordinated process that regulates blood flow and pressure and is dependent on caveolae. Here, we investigated the role of caveolar plasma membrane stabilization by the dynamin-related ATPase EHD2 on eNOS-nitric oxide (NO)-dependent vessel relaxation. Loss of EHD2 in small arteries led to increased numbers of caveolae that were detached from the plasma membrane. Concomitantly, impaired relaxation of mesenteric arteries and reduced running wheel activity were observed in EHD2 knockout mice. EHD2 deletion or knockdown led to decreased production of nitric oxide (NO) although eNOS expression levels were not changed. Super-resolution imaging revealed that eNOS was redistributed from the plasma membrane to internalized detached caveolae in EHD2-lacking tissue or cells. Following an ATP stimulus, reduced cytosolic Ca2+ peaks were recorded in human umbilical vein endothelial cells (HUVECs) lacking EHD2. Our data suggest that EHD2-controlled caveolar dynamics orchestrates the activity and regulation of eNOS/NO and Ca2+ channel localization at the plasma membrane.https://doi.org/10.1371/journal.pone.0223620
collection DOAJ
language English
format Article
sources DOAJ
author Claudia Matthaeus
Xiaoming Lian
Séverine Kunz
Martin Lehmann
Cheng Zhong
Carola Bernert
Ines Lahmann
Dominik N Müller
Maik Gollasch
Oliver Daumke
spellingShingle Claudia Matthaeus
Xiaoming Lian
Séverine Kunz
Martin Lehmann
Cheng Zhong
Carola Bernert
Ines Lahmann
Dominik N Müller
Maik Gollasch
Oliver Daumke
eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.
PLoS ONE
author_facet Claudia Matthaeus
Xiaoming Lian
Séverine Kunz
Martin Lehmann
Cheng Zhong
Carola Bernert
Ines Lahmann
Dominik N Müller
Maik Gollasch
Oliver Daumke
author_sort Claudia Matthaeus
title eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.
title_short eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.
title_full eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.
title_fullStr eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.
title_full_unstemmed eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization.
title_sort enos-no-induced small blood vessel relaxation requires ehd2-dependent caveolae stabilization.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2019-01-01
description Endothelial nitric oxide synthase (eNOS)-related vessel relaxation is a highly coordinated process that regulates blood flow and pressure and is dependent on caveolae. Here, we investigated the role of caveolar plasma membrane stabilization by the dynamin-related ATPase EHD2 on eNOS-nitric oxide (NO)-dependent vessel relaxation. Loss of EHD2 in small arteries led to increased numbers of caveolae that were detached from the plasma membrane. Concomitantly, impaired relaxation of mesenteric arteries and reduced running wheel activity were observed in EHD2 knockout mice. EHD2 deletion or knockdown led to decreased production of nitric oxide (NO) although eNOS expression levels were not changed. Super-resolution imaging revealed that eNOS was redistributed from the plasma membrane to internalized detached caveolae in EHD2-lacking tissue or cells. Following an ATP stimulus, reduced cytosolic Ca2+ peaks were recorded in human umbilical vein endothelial cells (HUVECs) lacking EHD2. Our data suggest that EHD2-controlled caveolar dynamics orchestrates the activity and regulation of eNOS/NO and Ca2+ channel localization at the plasma membrane.
url https://doi.org/10.1371/journal.pone.0223620
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