Literature DB >> 25465618

Bio-Chemo-Mechanical Models of Vascular Mechanics.

Jungsil Kim1, Jessica E Wagenseil.   

Abstract

Models of vascular mechanics are necessary to predict the response of an artery under a variety of loads, for complex geometries, and in pathological adaptation. Classic constitutive models for arteries are phenomenological and the fitted parameters are not associated with physical components of the wall. Recently, microstructurally-linked models have been developed that associate structural information about the wall components with tissue-level mechanics. Microstructurally-linked models are useful for correlating changes in specific components with pathological outcomes, so that targeted treatments may be developed to prevent or reverse the physical changes. However, most treatments, and many causes, of vascular disease have chemical components. Chemical signaling within cells, between cells, and between cells and matrix constituents affects the biology and mechanics of the arterial wall in the short- and long-term. Hence, bio-chemo-mechanical models that include chemical signaling are critical for robust models of vascular mechanics. This review summarizes bio-mechanical and bio-chemo-mechanical models with a focus on large elastic arteries. We provide applications of these models and challenges for future work.

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Year:  2014        PMID: 25465618      PMCID: PMC4454634          DOI: 10.1007/s10439-014-1201-7

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


  88 in total

1.  Model of geometrical and smooth muscle tone adaptation of carotid artery subject to step change in pressure.

Authors:  P Fridez; A Rachev; J J Meister; K Hayashi; N Stergiopulos
Journal:  Am J Physiol Heart Circ Physiol       Date:  2001-06       Impact factor: 4.733

2.  Strain distribution in small blood vessels with zero-stress state taken into consideration.

Authors:  Y C Fung; S Q Liu
Journal:  Am J Physiol       Date:  1992-02

3.  Role of elastin anisotropy in structural strain energy functions of arterial tissue.

Authors:  R Rezakhaniha; E Fonck; C Genoud; N Stergiopulos
Journal:  Biomech Model Mechanobiol       Date:  2010-10-07

4.  Biomechanical and microstructural properties of common carotid arteries from fibulin-5 null mice.

Authors:  William Wan; Hiromi Yanagisawa; Rudolph L Gleason
Journal:  Ann Biomed Eng       Date:  2010-07-08       Impact factor: 3.934

5.  A mechanochemical 3D continuum model for smooth muscle contraction under finite strains.

Authors:  J Stålhand; A Klarbring; G A Holzapfel
Journal:  J Theor Biol       Date:  2010-10-12       Impact factor: 2.691

6.  Biomechanical behavior of the arterial wall and its numerical characterization.

Authors:  G A Holzapfel; H W Weizsäcker
Journal:  Comput Biol Med       Date:  1998-07       Impact factor: 4.589

7.  Differential passive and active biaxial mechanical behaviors of muscular and elastic arteries: basilar versus common carotid.

Authors:  H P Wagner; J D Humphrey
Journal:  J Biomech Eng       Date:  2011-05       Impact factor: 2.097

8.  Longitudinal differences in the mechanical properties of the thoracic aorta depend on circumferential regions.

Authors:  Jungsil Kim; Jung-Wuk Hong; Seungik Baek
Journal:  J Biomed Mater Res A       Date:  2012-11-05       Impact factor: 4.396

9.  Regional variation of series elasticity in canine arterial smooth muscles.

Authors:  R H Cox
Journal:  Am J Physiol       Date:  1978-05

10.  Characterization of biaxial mechanical behavior of porcine aorta under gradual elastin degradation.

Authors:  Shahrokh Zeinali-Davarani; Ming-Jay Chow; Raphaël Turcotte; Yanhang Zhang
Journal:  Ann Biomed Eng       Date:  2013-01-08       Impact factor: 3.934

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  3 in total

Review 1.  Elastic Fibers and Large Artery Mechanics in Animal Models of Development and Disease.

Authors:  Maria Gabriela Espinosa; Marius Catalin Staiculescu; Jungsil Kim; Eric Marin; Jessica E Wagenseil
Journal:  J Biomech Eng       Date:  2018-02-01       Impact factor: 2.097

2.  The crescendo pulse frequency of shear stress stimulates the endothelialization of bone marrow mesenchymal stem cells on the luminal surface of decellularized scaffold in the bioreactor.

Authors:  Yuhao Jiao; Yuanguo Zhang; Yonghao Xiao; Yuehao Xing; Zhiwen Cai; Cong Wang; Zhengtong Zhou; Zengguo Feng; Yongquan Gu
Journal:  Bioengineered       Date:  2022-03       Impact factor: 6.832

3.  A computational bio-chemo-mechanical model of in vivo tissue-engineered vascular graft development.

Authors:  Ramak Khosravi; Abhay B Ramachandra; Jason M Szafron; Daniele E Schiavazzi; Christopher K Breuer; Jay D Humphrey
Journal:  Integr Biol (Camb)       Date:  2020-04-14       Impact factor: 2.192

  3 in total

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