Literature DB >> 23624625

Mitochondrial-localized NADPH oxidase 4 is a source of superoxide in angiotensin II-stimulated neurons.

Adam J Case1, Shumin Li, Urmi Basu, Jun Tian, Matthew C Zimmerman.   

Abstract

Angiotensin II (ANG II) plays an important role in the central regulation of systemic cardiovascular function. ANG II-mediated intraneuronal signaling has been shown to be predicated by an increase in mitochondrial superoxide (O₂∙-), yet the source of this reactive oxygen species (ROS) production remains unclear. NADPH oxidase 4 (Nox4), a member of the NADPH oxidase family, has been reported to be localized in mitochondria of various cell types and has been implicated in brain angiotensinergic signaling. However, the subcellular localization and function of Nox4 in neurons has not been fully elucidated. In this study, we hypothesized that Nox4 is expressed in neuron mitochondria and is involved in ANG II-dependent O₂∙--mediated intraneuronal signaling. To query this, Nox4 immunofluorescent staining and mitochondrial enrichment were performed in a mouse catecholaminergic neuronal cell model (CATH.a). Nox4 was shown to be present in neuron mitochondria as evidenced by colocalization with both the mitochondrial-localized protein manganese superoxide dismutase (MnSOD) and dye MitoTracker Red. Moreover, Nox4 expression was significantly increased in enriched mitochondrial fractions compared with whole cell lysates. Additionally, adenoviral-encoded small interfering RNA for Nox4 (AdsiNox4) caused a robust knockdown in Nox4 mRNA and protein levels, which led to the attenuation of ANG II-induced mitochondrial O₂∙- production. Finally, in the subfornical organ (SFO) of the brain, Nox4 not only demonstrated mitochondrial localization but was induced by chronic, peripheral infusion of ANG II. Collectively, these data suggest that Nox4 is a source of O₂∙- in neuron mitochondria that contributes to ANG II intraneuronal signaling.

Entities:  

Keywords:  CATH.a neurons; Nox4; angiotensin II; mitochondria; siRNA; subfornical organ

Mesh:

Substances:

Year:  2013        PMID: 23624625      PMCID: PMC3727106          DOI: 10.1152/ajpheart.00974.2012

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  41 in total

1.  Angiotensin II stimulates superoxide production in the thick ascending limb by activating NOX4.

Authors:  Katherine J Massey; Nancy J Hong; Jeffrey L Garvin
Journal:  Am J Physiol Cell Physiol       Date:  2012-08-08       Impact factor: 4.249

2.  Homologs of gp91phox: cloning and tissue expression of Nox3, Nox4, and Nox5.

Authors:  G Cheng; Z Cao; X Xu; E G van Meir; J D Lambeth
Journal:  Gene       Date:  2001-05-16       Impact factor: 3.688

3.  Superoxide mediates the actions of angiotensin II in the central nervous system.

Authors:  Matthew C Zimmerman; Eric Lazartigues; Julie A Lang; Puspha Sinnayah; Iman M Ahmad; Douglas R Spitz; Robin L Davisson
Journal:  Circ Res       Date:  2002-11-29       Impact factor: 17.367

4.  Identification of renox, an NAD(P)H oxidase in kidney.

Authors:  M Geiszt; J B Kopp; P Várnai; T L Leto
Journal:  Proc Natl Acad Sci U S A       Date:  2000-07-05       Impact factor: 11.205

5.  Superoxide mediates angiotensin II-induced influx of extracellular calcium in neural cells.

Authors:  Matthew C Zimmerman; Ram V Sharma; Robin L Davisson
Journal:  Hypertension       Date:  2005-02-07       Impact factor: 10.190

6.  NAD(P)H oxidase inhibition attenuates neuronal chronotropic actions of angiotensin II.

Authors:  Chengwen Sun; Kathleen W Sellers; Colin Sumners; Mohan K Raizada
Journal:  Circ Res       Date:  2005-03-03       Impact factor: 17.367

7.  Superoxide is involved in the central nervous system activation and sympathoexcitation of myocardial infarction-induced heart failure.

Authors:  Timothy E Lindley; Marc F Doobay; Ram V Sharma; Robin L Davisson
Journal:  Circ Res       Date:  2003-12-18       Impact factor: 17.367

8.  Modulation of delayed rectifier potassium current by angiotensin II in CATH.a cells.

Authors:  Chengwen Sun; Jiangqing Du; Mohan K Raizada; Colin Sumners
Journal:  Biochem Biophys Res Commun       Date:  2003-10-24       Impact factor: 3.575

9.  Requirement for Rac1-dependent NADPH oxidase in the cardiovascular and dipsogenic actions of angiotensin II in the brain.

Authors:  Matthew C Zimmerman; Ryan P Dunlay; Eric Lazartigues; Yulong Zhang; Ram V Sharma; John F Engelhardt; Robin L Davisson
Journal:  Circ Res       Date:  2004-07-22       Impact factor: 17.367

Review 10.  Redox signaling in central neural regulation of cardiovascular function.

Authors:  Matthew C Zimmerman; Robin L Davisson
Journal:  Prog Biophys Mol Biol       Date:  2004 Feb-Apr       Impact factor: 3.667

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  57 in total

1.  Synergistic effects of hypertension and aging on cognitive function and hippocampal expression of genes involved in β-amyloid generation and Alzheimer's disease.

Authors:  Anna Csiszar; Zsuzsanna Tucsek; Peter Toth; Danuta Sosnowska; Tripti Gautam; Akos Koller; Ferenc Deak; William E Sonntag; Zoltan Ungvari
Journal:  Am J Physiol Heart Circ Physiol       Date:  2013-08-16       Impact factor: 4.733

Review 2.  Manganese superoxide dismutase (SOD2): is there a center in the universe of mitochondrial redox signaling?

Authors:  Xianghui Zou; Bianca A Ratti; Joseph Gerald O'Brien; Sueli O Lautenschlager; David R Gius; Marcelo G Bonini; Yueming Zhu
Journal:  J Bioenerg Biomembr       Date:  2017-06-14       Impact factor: 2.945

Review 3.  New insights on NOX enzymes in the central nervous system.

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Journal:  Antioxid Redox Signal       Date:  2014-01-16       Impact factor: 8.401

4.  Role of Nox4 and p67phox subunit of Nox2 in ROS production in response to increased tubular flow in the mTAL of Dahl salt-sensitive rats.

Authors:  Nadezhda N Zheleznova; Chun Yang; Allen W Cowley
Journal:  Am J Physiol Renal Physiol       Date:  2016-06-08

Review 5.  Oxidative stress in chronic lung disease: From mitochondrial dysfunction to dysregulated redox signaling.

Authors:  Albert van der Vliet; Yvonne M W Janssen-Heininger; Vikas Anathy
Journal:  Mol Aspects Med       Date:  2018-08-22

6.  Nox2-induced production of mitochondrial superoxide in angiotensin II-mediated endothelial oxidative stress and hypertension.

Authors:  Sergey I Dikalov; Rafal R Nazarewicz; Alfiya Bikineyeva; Lula Hilenski; Bernard Lassègue; Kathy K Griendling; David G Harrison; Anna E Dikalova
Journal:  Antioxid Redox Signal       Date:  2013-10-30       Impact factor: 8.401

Review 7.  NADPH oxidases-do they play a role in TRPC regulation under hypoxia?

Authors:  Monika Malczyk; Christine Veith; Ralph T Schermuly; Thomas Gudermann; Alexander Dietrich; Natascha Sommer; Norbert Weissmann; Oleg Pak
Journal:  Pflugers Arch       Date:  2015-10-01       Impact factor: 3.657

8.  Caloric restriction confers persistent anti-oxidative, pro-angiogenic, and anti-inflammatory effects and promotes anti-aging miRNA expression profile in cerebromicrovascular endothelial cells of aged rats.

Authors:  Anna Csiszar; Tripti Gautam; Danuta Sosnowska; Stefano Tarantini; Eszter Banki; Zsuzsanna Tucsek; Peter Toth; Gyorgy Losonczy; Akos Koller; Dora Reglodi; Cory B Giles; Jonathan D Wren; William E Sonntag; Zoltan Ungvari
Journal:  Am J Physiol Heart Circ Physiol       Date:  2014-06-06       Impact factor: 4.733

9.  Activation of the ACE2/Ang-(1-7)/Mas pathway reduces oxygen-glucose deprivation-induced tissue swelling, ROS production, and cell death in mouse brain with angiotensin II overproduction.

Authors:  J Zheng; G Li; S Chen; J Bihl; J Buck; Y Zhu; H Xia; E Lazartigues; Y Chen; J E Olson
Journal:  Neuroscience       Date:  2014-05-09       Impact factor: 3.590

Review 10.  Role of mitochondrial oxidative stress in hypertension.

Authors:  Sergey I Dikalov; Zoltan Ungvari
Journal:  Am J Physiol Heart Circ Physiol       Date:  2013-09-16       Impact factor: 4.733

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