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RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization

Arterial stiffness predicts cardiovascular disease and all-cause mortality, but its treatment remains challenging. Mice treated with angiotensin II (Ang II) develop hypertension, arterial stiffness, vascular dysfunction, and a downregulation of Rho-related BTB domain–containing protein 1 (RhoBTB1) i...

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Autores principales: Fang, Shi, Wu, Jing, Reho, John J., Lu, Ko-Ting, Brozoski, Daniel T., Kumar, Gaurav, Werthman, Alec M., Silva, Sebastiao Donato, Muskus Veitia, Patricia C., Wackman, Kelsey K., Mathison, Angela J., Teng, Bi Qing, Lin, Chien-Wei, Quelle, Frederick W., Sigmund, Curt D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9090250/
https://www.ncbi.nlm.nih.gov/pubmed/35358093
http://dx.doi.org/10.1172/jci.insight.158043
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author Fang, Shi
Wu, Jing
Reho, John J.
Lu, Ko-Ting
Brozoski, Daniel T.
Kumar, Gaurav
Werthman, Alec M.
Silva, Sebastiao Donato
Muskus Veitia, Patricia C.
Wackman, Kelsey K.
Mathison, Angela J.
Teng, Bi Qing
Lin, Chien-Wei
Quelle, Frederick W.
Sigmund, Curt D.
author_facet Fang, Shi
Wu, Jing
Reho, John J.
Lu, Ko-Ting
Brozoski, Daniel T.
Kumar, Gaurav
Werthman, Alec M.
Silva, Sebastiao Donato
Muskus Veitia, Patricia C.
Wackman, Kelsey K.
Mathison, Angela J.
Teng, Bi Qing
Lin, Chien-Wei
Quelle, Frederick W.
Sigmund, Curt D.
author_sort Fang, Shi
collection PubMed
description Arterial stiffness predicts cardiovascular disease and all-cause mortality, but its treatment remains challenging. Mice treated with angiotensin II (Ang II) develop hypertension, arterial stiffness, vascular dysfunction, and a downregulation of Rho-related BTB domain–containing protein 1 (RhoBTB1) in the vasculature. RhoBTB1 is associated with blood pressure regulation, but its function is poorly understood. We tested the hypothesis that restoring RhoBTB1 can attenuate arterial stiffness, hypertension, and vascular dysfunction in Ang II–treated mice. Genetic complementation of RhoBTB1 in the vasculature was achieved using mice expressing a tamoxifen-inducible, smooth muscle–specific RhoBTB1 transgene. RhoBTB1 restoration efficiently and rapidly alleviated arterial stiffness but not hypertension or vascular dysfunction. Mechanistic studies revealed that RhoBTB1 had no substantial effect on several classical arterial stiffness contributors, such as collagen deposition, elastin content, and vascular smooth muscle remodeling. Instead, Ang II increased actin polymerization in the aorta, which was reversed by RhoBTB1. Changes in the levels of 2 regulators of actin polymerization, cofilin and vasodilator-stimulated phosphoprotein, in response to RhoBTB1 were consistent with an actin depolymerization mechanism. Our study reveals an important function of RhoBTB1, demonstrates its vital role in antagonizing established arterial stiffness, and further supports a functional and mechanistic separation among hypertension, vascular dysfunction, and arterial stiffness.
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spelling pubmed-90902502022-05-13 RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization Fang, Shi Wu, Jing Reho, John J. Lu, Ko-Ting Brozoski, Daniel T. Kumar, Gaurav Werthman, Alec M. Silva, Sebastiao Donato Muskus Veitia, Patricia C. Wackman, Kelsey K. Mathison, Angela J. Teng, Bi Qing Lin, Chien-Wei Quelle, Frederick W. Sigmund, Curt D. JCI Insight Research Article Arterial stiffness predicts cardiovascular disease and all-cause mortality, but its treatment remains challenging. Mice treated with angiotensin II (Ang II) develop hypertension, arterial stiffness, vascular dysfunction, and a downregulation of Rho-related BTB domain–containing protein 1 (RhoBTB1) in the vasculature. RhoBTB1 is associated with blood pressure regulation, but its function is poorly understood. We tested the hypothesis that restoring RhoBTB1 can attenuate arterial stiffness, hypertension, and vascular dysfunction in Ang II–treated mice. Genetic complementation of RhoBTB1 in the vasculature was achieved using mice expressing a tamoxifen-inducible, smooth muscle–specific RhoBTB1 transgene. RhoBTB1 restoration efficiently and rapidly alleviated arterial stiffness but not hypertension or vascular dysfunction. Mechanistic studies revealed that RhoBTB1 had no substantial effect on several classical arterial stiffness contributors, such as collagen deposition, elastin content, and vascular smooth muscle remodeling. Instead, Ang II increased actin polymerization in the aorta, which was reversed by RhoBTB1. Changes in the levels of 2 regulators of actin polymerization, cofilin and vasodilator-stimulated phosphoprotein, in response to RhoBTB1 were consistent with an actin depolymerization mechanism. Our study reveals an important function of RhoBTB1, demonstrates its vital role in antagonizing established arterial stiffness, and further supports a functional and mechanistic separation among hypertension, vascular dysfunction, and arterial stiffness. American Society for Clinical Investigation 2022-05-09 /pmc/articles/PMC9090250/ /pubmed/35358093 http://dx.doi.org/10.1172/jci.insight.158043 Text en © 2022 Fang et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Fang, Shi
Wu, Jing
Reho, John J.
Lu, Ko-Ting
Brozoski, Daniel T.
Kumar, Gaurav
Werthman, Alec M.
Silva, Sebastiao Donato
Muskus Veitia, Patricia C.
Wackman, Kelsey K.
Mathison, Angela J.
Teng, Bi Qing
Lin, Chien-Wei
Quelle, Frederick W.
Sigmund, Curt D.
RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization
title RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization
title_full RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization
title_fullStr RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization
title_full_unstemmed RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization
title_short RhoBTB1 reverses established arterial stiffness in angiotensin II–induced hypertension by promoting actin depolymerization
title_sort rhobtb1 reverses established arterial stiffness in angiotensin ii–induced hypertension by promoting actin depolymerization
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9090250/
https://www.ncbi.nlm.nih.gov/pubmed/35358093
http://dx.doi.org/10.1172/jci.insight.158043
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