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Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II

BACKGROUND: This study was performed to determine the characteristics and mechanism of hypertension in SHR/NDmcr‐cp(+/+) rats (SHRcp), a new model of metabolic syndrome, with a focus on the autonomic nervous system, aldosterone, and angiotensin II. METHODS AND RESULTS: We measured arterial blood pre...

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Autores principales: Sueta, Daisuke, Kataoka, Keiichiro, Koibuchi, Nobutaka, Toyama, Kensuke, Uekawa, Ken, Katayama, Tetsuji, MingJie, Ma, Nakagawa, Takashi, Waki, Hidefumi, Maeda, Masanobu, Yasuda, Osamu, Matsui, Kunihiko, Ogawa, Hisao, Kim‐Mitsuyama, Shokei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3698757/
https://www.ncbi.nlm.nih.gov/pubmed/23629805
http://dx.doi.org/10.1161/JAHA.113.000035
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author Sueta, Daisuke
Kataoka, Keiichiro
Koibuchi, Nobutaka
Toyama, Kensuke
Uekawa, Ken
Katayama, Tetsuji
MingJie, Ma
Nakagawa, Takashi
Waki, Hidefumi
Maeda, Masanobu
Yasuda, Osamu
Matsui, Kunihiko
Ogawa, Hisao
Kim‐Mitsuyama, Shokei
author_facet Sueta, Daisuke
Kataoka, Keiichiro
Koibuchi, Nobutaka
Toyama, Kensuke
Uekawa, Ken
Katayama, Tetsuji
MingJie, Ma
Nakagawa, Takashi
Waki, Hidefumi
Maeda, Masanobu
Yasuda, Osamu
Matsui, Kunihiko
Ogawa, Hisao
Kim‐Mitsuyama, Shokei
author_sort Sueta, Daisuke
collection PubMed
description BACKGROUND: This study was performed to determine the characteristics and mechanism of hypertension in SHR/NDmcr‐cp(+/+) rats (SHRcp), a new model of metabolic syndrome, with a focus on the autonomic nervous system, aldosterone, and angiotensin II. METHODS AND RESULTS: We measured arterial blood pressure (BP) in SHRcp by radiotelemetry combined with spectral analysis using a fast Fourier transformation algorithm and examined the effect of azilsartan, an AT1 receptor blocker. Compared with control Wistar‐Kyoto rats (WKY) and SHR, SHRcp exhibited a nondipper‐type hypertension and displayed increased urinary norepinephrine excretion and increased urinary and plasma aldosterone levels. Compared with WKY and SHR, SHRcp were characterized by an increase in the low‐frequency power (LF) of systolic BP and a decrease in spontaneous baroreflex gain (sBRG), indicating autonomic dysfunction. Thus, SHRcp are regarded as a useful model of human hypertension with metabolic syndrome. Oral administration of azilsartan once daily persistently lowered BP during the light period (inactive phase) and the dark period (active phase) in SHRcp more than in WKY and SHR. Thus, angiotensin II seems to be involved in the mechanism of disrupted diurnal BP rhythm in SHRcp. Azilsartan significantly reduced urinary norepinephrine and aldosterone excretion and significantly increased urinary sodium excretion in SHRcp. Furthermore, azilsartan significantly reduced LF of systolic BP and significantly increased sBRG in SHRcp. CONCLUSIONS: These results strongly suggest that impairment of autonomic function and increased aldosterone in SHRcp mediate the effect of angiotensin II on circadian blood pressure rhythms.
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spelling pubmed-36987572013-09-03 Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II Sueta, Daisuke Kataoka, Keiichiro Koibuchi, Nobutaka Toyama, Kensuke Uekawa, Ken Katayama, Tetsuji MingJie, Ma Nakagawa, Takashi Waki, Hidefumi Maeda, Masanobu Yasuda, Osamu Matsui, Kunihiko Ogawa, Hisao Kim‐Mitsuyama, Shokei J Am Heart Assoc Original Research BACKGROUND: This study was performed to determine the characteristics and mechanism of hypertension in SHR/NDmcr‐cp(+/+) rats (SHRcp), a new model of metabolic syndrome, with a focus on the autonomic nervous system, aldosterone, and angiotensin II. METHODS AND RESULTS: We measured arterial blood pressure (BP) in SHRcp by radiotelemetry combined with spectral analysis using a fast Fourier transformation algorithm and examined the effect of azilsartan, an AT1 receptor blocker. Compared with control Wistar‐Kyoto rats (WKY) and SHR, SHRcp exhibited a nondipper‐type hypertension and displayed increased urinary norepinephrine excretion and increased urinary and plasma aldosterone levels. Compared with WKY and SHR, SHRcp were characterized by an increase in the low‐frequency power (LF) of systolic BP and a decrease in spontaneous baroreflex gain (sBRG), indicating autonomic dysfunction. Thus, SHRcp are regarded as a useful model of human hypertension with metabolic syndrome. Oral administration of azilsartan once daily persistently lowered BP during the light period (inactive phase) and the dark period (active phase) in SHRcp more than in WKY and SHR. Thus, angiotensin II seems to be involved in the mechanism of disrupted diurnal BP rhythm in SHRcp. Azilsartan significantly reduced urinary norepinephrine and aldosterone excretion and significantly increased urinary sodium excretion in SHRcp. Furthermore, azilsartan significantly reduced LF of systolic BP and significantly increased sBRG in SHRcp. CONCLUSIONS: These results strongly suggest that impairment of autonomic function and increased aldosterone in SHRcp mediate the effect of angiotensin II on circadian blood pressure rhythms. Blackwell Publishing Ltd 2013-06-21 /pmc/articles/PMC3698757/ /pubmed/23629805 http://dx.doi.org/10.1161/JAHA.113.000035 Text en © 2013 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley-Blackwell. http://creativecommons.org/licenses/by/2.5/ This is an Open Access article under the terms of the Creative Commons Attribution Noncommercial License, which permits use, distribution, and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Research
Sueta, Daisuke
Kataoka, Keiichiro
Koibuchi, Nobutaka
Toyama, Kensuke
Uekawa, Ken
Katayama, Tetsuji
MingJie, Ma
Nakagawa, Takashi
Waki, Hidefumi
Maeda, Masanobu
Yasuda, Osamu
Matsui, Kunihiko
Ogawa, Hisao
Kim‐Mitsuyama, Shokei
Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II
title Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II
title_full Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II
title_fullStr Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II
title_full_unstemmed Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II
title_short Novel Mechanism for Disrupted Circadian Blood Pressure Rhythm in a Rat Model of Metabolic Syndrome—The Critical Role of Angiotensin II
title_sort novel mechanism for disrupted circadian blood pressure rhythm in a rat model of metabolic syndrome—the critical role of angiotensin ii
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3698757/
https://www.ncbi.nlm.nih.gov/pubmed/23629805
http://dx.doi.org/10.1161/JAHA.113.000035
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