The living aortic valve: From molecules to function.
File(s)The living aortic valve: From molecules to function.pdf (844.82 KB)
Published version
Author(s)
Type
Journal Article
Abstract
The aortic valve lies in a unique hemodynamic environment, one characterized by a range of stresses (shear stress, bending forces, loading forces and strain) that vary in intensity and direction throughout the cardiac cycle. Yet, despite its changing environment, the aortic valve opens and closes over 100,000 times a day and, in the majority of human beings, will function normally over a lifespan of 70-90 years. Until relatively recently heart valves were considered passive structures that play no active role in the functioning of a valve, or in the maintenance of its integrity and durability. However, through clinical experience and basic research the aortic valve can now be characterized as a living, dynamic organ with the capacity to adapt to its complex mechanical and biomechanical environment through active and passive communication between its constituent parts. The clinical relevance of a living valve substitute in patients requiring aortic valve replacement has been confirmed. This highlights the importance of using tissue engineering to develop heart valve substitutes containing living cells which have the ability to assume the complex functioning of the native valve.
Date Issued
2014-05-02
Date Acceptance
2014-04-28
Citation
Global Cardiology Science and Practice, 2014, 2014 (1), pp.52-77
ISSN
2305-7823
Publisher
Bloomsbury Qatar Foundation Journals
Start Page
52
End Page
77
Journal / Book Title
Global Cardiology Science and Practice
Volume
2014
Issue
1
Copyright Statement
© 2014 Chester, El-Hamamsy,
Butcher, Latif, Bertazzo, Yacoub,
licensee Bloomsbury Qatar
Foundation Journals. This is an open
access article distributed under the
terms of the Creative Commons
Attribution license CC BY 4.0, which
permits unrestricted use,
distribution and reproduction in any
medium, provided the original work
is properly cited.
Butcher, Latif, Bertazzo, Yacoub,
licensee Bloomsbury Qatar
Foundation Journals. This is an open
access article distributed under the
terms of the Creative Commons
Attribution license CC BY 4.0, which
permits unrestricted use,
distribution and reproduction in any
medium, provided the original work
is properly cited.
License URL
Identifier
PII: gcsp.2014.11
Subjects
Cells
calcification
developmental biology
endothelium
mechanobiology
nanostructure aortic stenosis
nerves
Publication Status
Published
Article Number
11