Literature DB >> 18720007

A microstructurally motivated model of the mechanical behavior of tissue engineered blood vessels.

Shannon L M Dahl1, Megann E Vaughn, Jin-Jia Hu, Niels J B Driessen, Frank P T Baaijens, Jay D Humphrey, Laura E Niklason.   

Abstract

Mechanical models have potential to guide the development and use of engineered blood vessels as well as other engineered tissues. This paper presents a microstructurally motivated, pseudoelastic, mechanical model of the biaxial mechanics of engineered vessels in the physiologic pressure range. The model incorporates experimentally measured densities and alignments of engineered collagen. Specifically, these microstructural and associated mechanical inputs were measured directly from engineered blood vessels that were cultured over periods of 5-7.5 weeks. To the best of our knowledge, this is the first successful application of either a phenomenological or a microstructurally motivated mechanical model to engineered vascular tissues. Model development revealed the need to use novel theoretical configurations to describe the strain history of engineered vessels. The constitutive equations developed herein suggested that collagen remodeled between 5 and 7.5 weeks during a 7.5-week culture period. This remodeling led to strain energies for collagen that differed with alignment, which likely resulted from undulations that varied with alignment. Finally, biaxial data emphasized that axial extensions increase stresses in engineered vessels in the physiologic pressure range, thereby providing a guideline for surgical use: engineered vessels should be implanted at appropriate axial extension to minimize adverse stress responses.

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Year:  2008        PMID: 18720007      PMCID: PMC2605792          DOI: 10.1007/s10439-008-9554-4

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


  35 in total

1.  Remodeling of a collagenous tissue at fixed lengths.

Authors:  J D Humphrey
Journal:  J Biomech Eng       Date:  1999-12       Impact factor: 2.097

2.  Wall tissue remodeling regulates longitudinal tension in arteries.

Authors:  Zane S Jackson; Avrum I Gotlieb; B Lowell Langille
Journal:  Circ Res       Date:  2002-05-03       Impact factor: 17.367

Review 3.  Requirements for growing tissue-engineered vascular grafts.

Authors:  Shannon L Mitchell; Laura E Niklason
Journal:  Cardiovasc Pathol       Date:  2003 Mar-Apr       Impact factor: 2.185

4.  Incorporation of experimentally-derived fiber orientation into a structural constitutive model for planar collagenous tissues.

Authors:  Michael S Sacks
Journal:  J Biomech Eng       Date:  2003-04       Impact factor: 2.097

5.  A computational model for collagen fibre remodelling in the arterial wall.

Authors:  N J B Driessen; W Wilson; C V C Bouten; F P T Baaijens
Journal:  J Theor Biol       Date:  2004-01-07       Impact factor: 2.691

6.  Comparison of a multi-layer structural model for arterial walls with a fung-type model, and issues of material stability.

Authors:  Gerhard A Holzapfel; Thomas C Gasser; Ray W Ogden
Journal:  J Biomech Eng       Date:  2004-04       Impact factor: 2.097

7.  A strain energy function for arteries accounting for wall composition and structure.

Authors:  Martin A Zulliger; Pierre Fridez; Kozaburo Hayashi; Nikos Stergiopulos
Journal:  J Biomech       Date:  2004-07       Impact factor: 2.712

8.  The effect of strain rate on the viscoelastic response of aortic valve tissue: a direct-fit approach.

Authors:  Todd C Doehring; Evelyn O Carew; Ivan Vesely
Journal:  Ann Biomed Eng       Date:  2004-02       Impact factor: 3.934

9.  A structural theory for the homogeneous biaxial stress-strain relationships in flat collagenous tissues.

Authors:  Y Lanir
Journal:  J Biomech       Date:  1979       Impact factor: 2.712

10.  Effect of pulse rate on collagen deposition in the tissue-engineered blood vessel.

Authors:  Amy Solan; Shannon Mitchell; Marsha Moses; Laura Niklason
Journal:  Tissue Eng       Date:  2003-08
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  7 in total

1.  Biomechanical Comparison of Glutaraldehyde-Crosslinked Gelatin Fibrinogen Electrospun Scaffolds to Porcine Coronary Arteries.

Authors:  E Tamimi; D C Ardila; D G Haskett; T Doetschman; M J Slepian; R S Kellar; J P Vande Geest
Journal:  J Biomech Eng       Date:  2016-01       Impact factor: 2.097

2.  Enabling tools for engineering collagenous tissues integrating bioreactors, intravital imaging, and biomechanical modeling.

Authors:  Laura E Niklason; Alvin T Yeh; Elizabeth A Calle; Yuqiang Bai; Arturo Valentín; Jay D Humphrey
Journal:  Proc Natl Acad Sci U S A       Date:  2009-12-01       Impact factor: 11.205

Review 3.  Disruptive technological advances in vascular access for dialysis: an overview.

Authors:  Wee-Song Yeo; Qin Xiang Ng
Journal:  Pediatr Nephrol       Date:  2017-11-29       Impact factor: 3.714

4.  Biaxial Stretch Improves Elastic Fiber Maturation, Collagen Arrangement, and Mechanical Properties in Engineered Arteries.

Authors:  Angela H Huang; Jenna L Balestrini; Brooks V Udelsman; Kevin C Zhou; Liping Zhao; Jacopo Ferruzzi; Barry C Starcher; Michael J Levene; Jay D Humphrey; Laura E Niklason
Journal:  Tissue Eng Part C Methods       Date:  2016-06       Impact factor: 3.056

5.  A Micromechanics Finite-Strain Constitutive Model of Fibrous Tissue.

Authors:  Huan Chen; Yi Liu; Xuefeng Zhao; Yoram Lanir; Ghassan S Kassab
Journal:  J Mech Phys Solids       Date:  2011-09-01       Impact factor: 5.471

6.  Microstructural constitutive model of active coronary media.

Authors:  Huan Chen; Tong Luo; Xuefeng Zhao; Xiao Lu; Yunlong Huo; Ghassan S Kassab
Journal:  Biomaterials       Date:  2013-07-13       Impact factor: 12.479

7.  Computational model of the in vivo development of a tissue engineered vein from an implanted polymeric construct.

Authors:  K S Miller; Y U Lee; Y Naito; C K Breuer; J D Humphrey
Journal:  J Biomech       Date:  2013-10-21       Impact factor: 2.712

  7 in total

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