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Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension

The prevalence of hypertension increases with aging and is associated with increased arterial stiffness. Resistant hypertension is presented when drug treatments fail to regulate a sustained increased blood pressure. Given that the mechanisms between the sympathetic nervous system and the kidney pla...

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Autores principales: Gkousioudi, Anastasia, Razzoli, Margherita, Moreira, Jesse D., Wainford, Richard D., Zhang, Yanhang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Journal Experts 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10503847/
https://www.ncbi.nlm.nih.gov/pubmed/37720022
http://dx.doi.org/10.21203/rs.3.rs-3273236/v1
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author Gkousioudi, Anastasia
Razzoli, Margherita
Moreira, Jesse D.
Wainford, Richard D.
Zhang, Yanhang
author_facet Gkousioudi, Anastasia
Razzoli, Margherita
Moreira, Jesse D.
Wainford, Richard D.
Zhang, Yanhang
author_sort Gkousioudi, Anastasia
collection PubMed
description The prevalence of hypertension increases with aging and is associated with increased arterial stiffness. Resistant hypertension is presented when drug treatments fail to regulate a sustained increased blood pressure. Given that the mechanisms between the sympathetic nervous system and the kidney play an important role in blood regulation, renal denervation (RDN) has emerged as a therapeutic potential in resistant hypertension. In this study, we investigated the effects of RDN on the biomechanical response and microstructure of elastic arteries. Common carotid arteries (CCA) were excised from 3-, 8- and 8-month-old denervated rats, and subjected to biaxial extension-inflation test. Our results showed that hypertension developed in the 8-month-old rats. The sustained elevated blood pressure resulted in arterial remodeling which was manifested as a significant stress increase in both axial and circumferential directions after 8 months. RDN had a favorable impact on CCAs with a restoration of stresses in values similar to control arteries at 3 months. After biomechanical testing, arteries were imaged under a multi-photon microscope to identify microstructural changes in extracellular matrix (ECM). Quantification of multi-photon images showed no significant alterations of the main ECM components, elastic and collagen fibers, indicating that arteries remained intact after RDN. Regardless of the experimental group, our microstructural analysis of the multi-photon images revealed that reorientation of the collagen fibers might be the main microstructural mechanism taking place during pressurization with their straightening happening during axial stretching.
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spelling pubmed-105038472023-09-16 Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension Gkousioudi, Anastasia Razzoli, Margherita Moreira, Jesse D. Wainford, Richard D. Zhang, Yanhang Res Sq Article The prevalence of hypertension increases with aging and is associated with increased arterial stiffness. Resistant hypertension is presented when drug treatments fail to regulate a sustained increased blood pressure. Given that the mechanisms between the sympathetic nervous system and the kidney play an important role in blood regulation, renal denervation (RDN) has emerged as a therapeutic potential in resistant hypertension. In this study, we investigated the effects of RDN on the biomechanical response and microstructure of elastic arteries. Common carotid arteries (CCA) were excised from 3-, 8- and 8-month-old denervated rats, and subjected to biaxial extension-inflation test. Our results showed that hypertension developed in the 8-month-old rats. The sustained elevated blood pressure resulted in arterial remodeling which was manifested as a significant stress increase in both axial and circumferential directions after 8 months. RDN had a favorable impact on CCAs with a restoration of stresses in values similar to control arteries at 3 months. After biomechanical testing, arteries were imaged under a multi-photon microscope to identify microstructural changes in extracellular matrix (ECM). Quantification of multi-photon images showed no significant alterations of the main ECM components, elastic and collagen fibers, indicating that arteries remained intact after RDN. Regardless of the experimental group, our microstructural analysis of the multi-photon images revealed that reorientation of the collagen fibers might be the main microstructural mechanism taking place during pressurization with their straightening happening during axial stretching. American Journal Experts 2023-09-05 /pmc/articles/PMC10503847/ /pubmed/37720022 http://dx.doi.org/10.21203/rs.3.rs-3273236/v1 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Gkousioudi, Anastasia
Razzoli, Margherita
Moreira, Jesse D.
Wainford, Richard D.
Zhang, Yanhang
Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension
title Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension
title_full Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension
title_fullStr Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension
title_full_unstemmed Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension
title_short Renal denervation restores biomechanics of carotid arteries in a rat model of hypertension
title_sort renal denervation restores biomechanics of carotid arteries in a rat model of hypertension
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10503847/
https://www.ncbi.nlm.nih.gov/pubmed/37720022
http://dx.doi.org/10.21203/rs.3.rs-3273236/v1
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