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Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia

BACKGROUND: Prenatal hypoxia is suggested to be associated with increased risks of hypertension in offspring. This study tested whether prenatal hypoxia resulted in salt‐sensitive offspring and its related mechanisms of vascular ion channel remodeling. METHODS AND RESULTS: Pregnant rats were housed...

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Detalles Bibliográficos
Autores principales: Liu, Bailin, Shi, Ruixiu, Li, Xiang, Liu, Yanping, Feng, Xueqin, Chen, Xueyi, Fan, Xiaorong, Zhang, Yingying, Zhang, Wenna, Tang, Jiaqi, Zhou, Xiuwen, Li, Na, Lu, Xiyuan, Xu, Zhice
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5907567/
https://www.ncbi.nlm.nih.gov/pubmed/29545262
http://dx.doi.org/10.1161/JAHA.117.008148
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author Liu, Bailin
Shi, Ruixiu
Li, Xiang
Liu, Yanping
Feng, Xueqin
Chen, Xueyi
Fan, Xiaorong
Zhang, Yingying
Zhang, Wenna
Tang, Jiaqi
Zhou, Xiuwen
Li, Na
Lu, Xiyuan
Xu, Zhice
author_facet Liu, Bailin
Shi, Ruixiu
Li, Xiang
Liu, Yanping
Feng, Xueqin
Chen, Xueyi
Fan, Xiaorong
Zhang, Yingying
Zhang, Wenna
Tang, Jiaqi
Zhou, Xiuwen
Li, Na
Lu, Xiyuan
Xu, Zhice
author_sort Liu, Bailin
collection PubMed
description BACKGROUND: Prenatal hypoxia is suggested to be associated with increased risks of hypertension in offspring. This study tested whether prenatal hypoxia resulted in salt‐sensitive offspring and its related mechanisms of vascular ion channel remodeling. METHODS AND RESULTS: Pregnant rats were housed in a normoxic (21% O(2)) or hypoxic (10.5% O(2)) chamber from gestation days 5 to 21. A subset of male offspring received a high‐salt diet (8% NaCl) from 4 to 12 weeks after birth. Blood pressure was significantly increased only in the salt‐loading offspring exposed to prenatal hypoxia, not in the offspring that received regular diets and in control offspring provided with high‐salt diets. In mesenteric artery myocytes from the salt‐loading offspring with prenatal hypoxia, depolarized resting membrane potential was associated with decreased density of L‐type voltage‐gated Ca(2+) (Cav1.2) and voltage‐gated K(+) channel currents and decreased calcium sensitive to the large‐conductance Ca(2+)‐activated K(+) channels. Protein expression of the L‐type voltage‐gated Ca(2+) α1C subunit, large‐conductance calcium‐activated K(+) channel (β1, not α subunits), and voltage‐gated K(+) channel (K(V)2.1, not K(V)1.5 subunits) was also decreased in the arteries of salt‐loading offspring with prenatal hypoxia. CONCLUSIONS: The results demonstrated that chronic prenatal hypoxia may program salt‐sensitive hypertension in male offspring, providing new information of ion channel remodeling in hypertensive myocytes. This information paves the way for early prevention and treatments of salt‐induced hypertension related to developmental problems in fetal origins.
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spelling pubmed-59075672018-05-01 Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia Liu, Bailin Shi, Ruixiu Li, Xiang Liu, Yanping Feng, Xueqin Chen, Xueyi Fan, Xiaorong Zhang, Yingying Zhang, Wenna Tang, Jiaqi Zhou, Xiuwen Li, Na Lu, Xiyuan Xu, Zhice J Am Heart Assoc Original Research BACKGROUND: Prenatal hypoxia is suggested to be associated with increased risks of hypertension in offspring. This study tested whether prenatal hypoxia resulted in salt‐sensitive offspring and its related mechanisms of vascular ion channel remodeling. METHODS AND RESULTS: Pregnant rats were housed in a normoxic (21% O(2)) or hypoxic (10.5% O(2)) chamber from gestation days 5 to 21. A subset of male offspring received a high‐salt diet (8% NaCl) from 4 to 12 weeks after birth. Blood pressure was significantly increased only in the salt‐loading offspring exposed to prenatal hypoxia, not in the offspring that received regular diets and in control offspring provided with high‐salt diets. In mesenteric artery myocytes from the salt‐loading offspring with prenatal hypoxia, depolarized resting membrane potential was associated with decreased density of L‐type voltage‐gated Ca(2+) (Cav1.2) and voltage‐gated K(+) channel currents and decreased calcium sensitive to the large‐conductance Ca(2+)‐activated K(+) channels. Protein expression of the L‐type voltage‐gated Ca(2+) α1C subunit, large‐conductance calcium‐activated K(+) channel (β1, not α subunits), and voltage‐gated K(+) channel (K(V)2.1, not K(V)1.5 subunits) was also decreased in the arteries of salt‐loading offspring with prenatal hypoxia. CONCLUSIONS: The results demonstrated that chronic prenatal hypoxia may program salt‐sensitive hypertension in male offspring, providing new information of ion channel remodeling in hypertensive myocytes. This information paves the way for early prevention and treatments of salt‐induced hypertension related to developmental problems in fetal origins. John Wiley and Sons Inc. 2018-03-15 /pmc/articles/PMC5907567/ /pubmed/29545262 http://dx.doi.org/10.1161/JAHA.117.008148 Text en © 2018 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ 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
Liu, Bailin
Shi, Ruixiu
Li, Xiang
Liu, Yanping
Feng, Xueqin
Chen, Xueyi
Fan, Xiaorong
Zhang, Yingying
Zhang, Wenna
Tang, Jiaqi
Zhou, Xiuwen
Li, Na
Lu, Xiyuan
Xu, Zhice
Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia
title Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia
title_full Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia
title_fullStr Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia
title_full_unstemmed Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia
title_short Downregulation of L‐Type Voltage‐Gated Ca(2+), Voltage‐Gated K(+), and Large‐Conductance Ca(2+)‐Activated K(+) Channels in Vascular Myocytes From Salt‐Loading Offspring Rats Exposed to Prenatal Hypoxia
title_sort downregulation of l‐type voltage‐gated ca(2+), voltage‐gated k(+), and large‐conductance ca(2+)‐activated k(+) channels in vascular myocytes from salt‐loading offspring rats exposed to prenatal hypoxia
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5907567/
https://www.ncbi.nlm.nih.gov/pubmed/29545262
http://dx.doi.org/10.1161/JAHA.117.008148
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