Aortic valve mechanobiology - the effect of cyclic stretch

Aortic valve disease is among the third most common cardiovascular disease worldwide, and is also a strong predictor for other cardiac related deaths. Altered mechanical forces are believed to cause changes in aortic valve biosynthetic activity, eventually leading to valve disease, however little is...

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Main Author: Balachandran, Kartik
Published: Georgia Institute of Technology 2011
Subjects:
Online Access:http://hdl.handle.net/1853/39486
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-394862013-01-07T20:37:25ZAortic valve mechanobiology - the effect of cyclic stretchBalachandran, KartikCyclic stretchMechanobiologyAortic valveAortic valveCell interactionExtracellular matrixBiomechanicsAortic valve disease is among the third most common cardiovascular disease worldwide, and is also a strong predictor for other cardiac related deaths. Altered mechanical forces are believed to cause changes in aortic valve biosynthetic activity, eventually leading to valve disease, however little is known about the cellular and molecular events involved in these processes. To gain a fundamental understanding into aortic valve disease mechanobiology, an ex vivo experimental model was used to study the effects of normal and elevated cyclic stretch on aortic valve remodeling and degenerative disease. The hypothesis of this proposal was that elevated cyclic stretch will result in increased expression of markers related to degenerative valve disease. Three aspects of aortic valve disease were studied: (i) Altered extracellular matrix remodeling; (ii) Aortic Valve Calcification; and (iii) Serotonin-induced valvulopathy. Results showed that elevated stretch resulted in increased matrix remodeling and calcification via a bone morphogenic protein-dependent pathway. In addition, elevated stretch and serotonin resulted in increased collagen biosynthesis and tissue stiffness via a serotonin-2A receptor-mediated pathway. This work adds to current knowledge on aortic valve disease mechanisms, and could pave the way for the development of novel treatments for valve disease and for the design of tissue engineered valve constructs.Georgia Institute of Technology2011-07-06T16:25:10Z2011-07-06T16:25:10Z2010-01-15Dissertationhttp://hdl.handle.net/1853/39486
collection NDLTD
sources NDLTD
topic Cyclic stretch
Mechanobiology
Aortic valve
Aortic valve
Cell interaction
Extracellular matrix
Biomechanics
spellingShingle Cyclic stretch
Mechanobiology
Aortic valve
Aortic valve
Cell interaction
Extracellular matrix
Biomechanics
Balachandran, Kartik
Aortic valve mechanobiology - the effect of cyclic stretch
description Aortic valve disease is among the third most common cardiovascular disease worldwide, and is also a strong predictor for other cardiac related deaths. Altered mechanical forces are believed to cause changes in aortic valve biosynthetic activity, eventually leading to valve disease, however little is known about the cellular and molecular events involved in these processes. To gain a fundamental understanding into aortic valve disease mechanobiology, an ex vivo experimental model was used to study the effects of normal and elevated cyclic stretch on aortic valve remodeling and degenerative disease. The hypothesis of this proposal was that elevated cyclic stretch will result in increased expression of markers related to degenerative valve disease. Three aspects of aortic valve disease were studied: (i) Altered extracellular matrix remodeling; (ii) Aortic Valve Calcification; and (iii) Serotonin-induced valvulopathy. Results showed that elevated stretch resulted in increased matrix remodeling and calcification via a bone morphogenic protein-dependent pathway. In addition, elevated stretch and serotonin resulted in increased collagen biosynthesis and tissue stiffness via a serotonin-2A receptor-mediated pathway. This work adds to current knowledge on aortic valve disease mechanisms, and could pave the way for the development of novel treatments for valve disease and for the design of tissue engineered valve constructs.
author Balachandran, Kartik
author_facet Balachandran, Kartik
author_sort Balachandran, Kartik
title Aortic valve mechanobiology - the effect of cyclic stretch
title_short Aortic valve mechanobiology - the effect of cyclic stretch
title_full Aortic valve mechanobiology - the effect of cyclic stretch
title_fullStr Aortic valve mechanobiology - the effect of cyclic stretch
title_full_unstemmed Aortic valve mechanobiology - the effect of cyclic stretch
title_sort aortic valve mechanobiology - the effect of cyclic stretch
publisher Georgia Institute of Technology
publishDate 2011
url http://hdl.handle.net/1853/39486
work_keys_str_mv AT balachandrankartik aorticvalvemechanobiologytheeffectofcyclicstretch
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