Literature DB >> 23515935

Aortic valve: mechanical environment and mechanobiology.

Sivakkumar Arjunon1, Swetha Rathan, Hanjoong Jo, Ajit P Yoganathan.   

Abstract

The aortic valve (AV) experiences a complex mechanical environment, which includes tension, flexure, pressure, and shear stress forces due to blood flow during each cardiac cycle. This mechanical environment regulates AV tissue structure by constantly renewing and remodeling the phenotype. In vitro, ex vivo and in vivo studies have shown that pathological states such as hypertension and congenital defect like bicuspid AV (BAV) can potentially alter the AV's mechanical environment, triggering a cascade of remodeling, inflammation, and calcification activities in AV tissue. Alteration in mechanical environment is first sensed by the endothelium, which in turn induces changes in the extracellular matrix, and triggers cell differentiation and activation. However, the molecular mechanism of this process is not understood very well. Understanding these mechanisms is critical for advancing the development of effective medical based therapies. Recently, there have been some interesting studies on characterizing the hemodynamics associated with AV, especially in pathologies like BAV, using different experimental and numerical methods. Here, we review the current knowledge of the local AV mechanical environment and its effect on valve biology, focusing on in vitro and ex vivo approaches.

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Year:  2013        PMID: 23515935      PMCID: PMC5460154          DOI: 10.1007/s10439-013-0785-7

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  119 in total

1.  The congenitally bicuspid aortic valve: how does it function? Why does it fail?

Authors:  Francis Robicsek; Mano J Thubrikar; Joseph W Cook; Brett Fowler
Journal:  Ann Thorac Surg       Date:  2004-01       Impact factor: 4.330

2.  Calcific nodule morphogenesis by heart valve interstitial cells is strain dependent.

Authors:  Charles I Fisher; Joseph Chen; W David Merryman
Journal:  Biomech Model Mechanobiol       Date:  2012-02-04

3.  Cyclic pressure affects the biological properties of porcine aortic valve leaflets in a magnitude and frequency dependent manner.

Authors:  Yun Xing; James N Warnock; Zhaoming He; Stephen L Hilbert; Ajit P Yoganathan
Journal:  Ann Biomed Eng       Date:  2004-11       Impact factor: 3.934

4.  A multiscale computational comparison of the bicuspid and tricuspid aortic valves in relation to calcific aortic stenosis.

Authors:  Eli J Weinberg; Mohammad R Kaazempur Mofrad
Journal:  J Biomech       Date:  2008-11-08       Impact factor: 2.712

Review 5.  Substrates for cardiovascular tissue engineering.

Authors:  C V C Bouten; P Y W Dankers; A Driessen-Mol; S Pedron; A M A Brizard; F P T Baaijens
Journal:  Adv Drug Deliv Rev       Date:  2011-01-25       Impact factor: 15.470

6.  Organ culture as a tool to identify early mechanisms of serotonergic valve disease.

Authors:  Janet E Barzilla; Frances E Acevedo; K Jane Grande-Allen
Journal:  J Heart Valve Dis       Date:  2010-09

7.  Serotonin produces monoamine oxidase-dependent oxidative stress in human heart valves.

Authors:  Ricardo A Peña-Silva; Jordan D Miller; Yi Chu; Donald D Heistad
Journal:  Am J Physiol Heart Circ Physiol       Date:  2009-08-07       Impact factor: 4.733

8.  Experimental measurement of dynamic fluid shear stress on the ventricular surface of the aortic valve leaflet.

Authors:  Choon Hwai Yap; Neelakantan Saikrishnan; Ajit P Yoganathan
Journal:  Biomech Model Mechanobiol       Date:  2011-04-05

9.  Valvular endothelial cells and the mechanoregulation of valvular pathology.

Authors:  Jonathan T Butcher; Robert M Nerem
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2007-08-29       Impact factor: 6.237

10.  The mechanism of opening of the aortic valve.

Authors:  M Thubrikar; L P Bosher; S P Nolan
Journal:  J Thorac Cardiovasc Surg       Date:  1979-06       Impact factor: 5.209

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  32 in total

1.  miR-214 is Stretch-Sensitive in Aortic Valve and Inhibits Aortic Valve Calcification.

Authors:  Md Tausif Salim; Joan Fernández Esmerats; Sivakkumar Arjunon; Nicolas Villa-Roel; Robert M Nerem; Hanjoong Jo; Ajit P Yoganathan
Journal:  Ann Biomed Eng       Date:  2019-01-22       Impact factor: 3.934

2.  A novel in vivo assessment of fluid dynamics on aortic valve leaflet using epi-aortic echocardiogram.

Authors:  Hideyuki Hayashi; Koichi Akiyama; Keiichi Itatani; Scott DeRoo; Joseph Sanchez; Giovanni Ferrari; Paolo C Colombo; Koji Takeda; Isaac Y Wu; Atsushi Kainuma; Hiroo Takayama
Journal:  Echocardiography       Date:  2020-01-31       Impact factor: 1.724

3.  Systolic hypertension and progression of aortic valve calcification in patients with aortic stenosis: results from the PROGRESSA study.

Authors:  Lionel Tastet; Romain Capoulade; Marie-Annick Clavel; Éric Larose; Mylène Shen; Abdellaziz Dahou; Marie Arsenault; Patrick Mathieu; Élisabeth Bédard; Jean G Dumesnil; Alexe Tremblay; Yohan Bossé; Jean-Pierre Després; Philippe Pibarot
Journal:  Eur Heart J Cardiovasc Imaging       Date:  2016-02-18       Impact factor: 6.875

4.  The role of inorganic pyrophosphate in aortic valve calcification.

Authors:  Swetha Rathan; Ajit P Yoganathan; Charles W O'Neill
Journal:  J Heart Valve Dis       Date:  2014-07

Review 5.  In vitro 3D model and miRNA drug delivery to target calcific aortic valve disease.

Authors:  Casper F T van der Ven; Pin-Jou Wu; Mark W Tibbitt; Alain van Mil; Joost P G Sluijter; Robert Langer; Elena Aikawa
Journal:  Clin Sci (Lond)       Date:  2017-02-01       Impact factor: 6.124

Review 6.  Mechanical considerations for polymeric heart valve development: Biomechanics, materials, design and manufacturing.

Authors:  Richard L Li; Jonathan Russ; Costas Paschalides; Giovanni Ferrari; Haim Waisman; Jeffrey W Kysar; David Kalfa
Journal:  Biomaterials       Date:  2019-09-17       Impact factor: 12.479

7.  Aortic valve calcification is mediated by a differential response of aortic valve interstitial cells to inflammation.

Authors:  Neil Venardos; Nicole A Nadlonek; Qiong Zhan; Michael J Weyant; Thomas Brett Reece; Xianzhong Meng; David A Fullerton
Journal:  J Surg Res       Date:  2014-03-22       Impact factor: 2.192

8.  Valve Endothelial Cell-Derived Tgfβ1 Signaling Promotes Nuclear Localization of Sox9 in Interstitial Cells Associated With Attenuated Calcification.

Authors:  Danielle J Huk; Blair F Austin; Tori E Horne; Robert B Hinton; William C Ray; Donald D Heistad; Joy Lincoln
Journal:  Arterioscler Thromb Vasc Biol       Date:  2015-12-03       Impact factor: 8.311

Review 9.  In vitro models of aortic valve calcification: solidifying a system.

Authors:  Meghan A Bowler; W David Merryman
Journal:  Cardiovasc Pathol       Date:  2014-08-15       Impact factor: 2.185

10.  Role of TGF-β1 Signaling in Heart Valve Calcification Induced by Abnormal Mechanical Stimulation in a Tissue Engineering Model.

Authors:  Xing-Jian Hu; Wen-Cong-Hui Wu; Nian-Guo Dong; Jia-Wei Shi; Jun-Wei Liu; Si Chen; Chen Deng; Feng Shi
Journal:  Curr Med Sci       Date:  2018-10-20
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