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Research Article

Analysis of the passive biomechanical behavior of a sheep-specific aortic artery in pulsatile flow conditions

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Pages 1228-1241 | Received 23 Feb 2020, Accepted 04 Jan 2021, Published online: 21 Jan 2021

References

  • Allard L, Soulez G, Chayer B, Treyve F, Qin Z, Cloutier G. 2009. Multimodality vascular imaging phantoms: A new material for the fabrication of realistic 3d vessel geometries. Med Phys. 36(8):3758–3763.
  • Barath K, Cassot F, Rüfenacht DA, Fasel JH. 2004. Anatomically shaped internal carotid artery aneurysm in vitro model for flow analysis to evaluate stent effect. AJNR Am J Neuroradiol. 25(10):1750–1759.
  • Bia D, Grignola JC, Armentano RL, Ginés FF. 2003. Improved pulmonary artery buffering function during phenylephrine-induced pulmonary hypertension. Mol Cell Biochem. 246:19–24.
  • Boekhoven RW, Peters MFJ, Rutten MCM, van Sambeek MR, van de Vosse FN, Lopata RGP. 2016. Inflation and bi-axial tensile testing of healthy Porcine Carotid Arteries. Ultrasound Med Biol. 42 (2):574–585.
  • Bols J, Degroote J, Trachet B, Verhegghe B, Segers P, Vierendeels J. 2013. A computational method to assess the in vivo stresses and unloaded configuration of patient-specific blood vessels. J Comput Appl Math. 246:10–17. doi: https://doi.org/10.1016/j.cam.2012.10.034.
  • Brunon A, Bruyère-Garnier K, Coret M. 2011. Characterization of the nonlinear behaviour and the failure of human liver capsule through inflation tests. J Mech Behav Biomed Mater. 4(8):1572–1581.
  • Bustos CA, García-Herrera C, Celentano DJ. 2016. Modelling and simulation of the mechanical response of a Dacron graft in the pressurization test and an end-to-end anastomosis. J Mech Behav Biomed Mater. 61:36–44.
  • Cardamone L, Valentin A, Eberth JF, Humphrey JD. 2009. Origin of axial prestretch and residual stress in arteries. Biomech Model Mechanobiol. 8(6):431–446.
  • Celentano D. 2001. A large strain thermoviscoplastic formulation for the solidification of S.G. cast iron in a green sand mould. Int J Plast. 17(12):1623–1658.
  • Cleave J, Roach MR. 1983. Comparison of longitudinal elastic properties of proximal and distal strips of aorta-branch junctions from the abdominal aorta of sheep. Can J Physiol Pharmacol. 61(6):614–618.
  • Delfino A, Stergiopulos N, Moore JE, Meister JJ. 1997. Residual strain effects on the stress field in a thick wall finite element model of the human carotid bifurcation. J Biomech. 30(8):777–786.
  • Demiray H. 1972. A note on the elasticity of soft biological tissues. J Biomech. 5(3):309–311.
  • DiVincenti L, Jr, Westcott R, Lee C. 2014. Sheep (Ovis aries) as a model for cardiovascular surgery and management before, during, and after cardiopulmonary bypass. J Am Assoc Lab Anim Sci. 53(5):439–448.
  • Dodson RB, Rozance PJ, Reina-Romo E, Ferguson VL, Hunter KS. 2013. Hyperelastic remodeling in the intrauterine growth restricted (IUGR) carotid artery in the near-term fetus. J Biomech. 46(5):956–963.
  • Esmaeili Monir H, Yamada H, Sakata N. 2016. Finite element modelling of the common carotid artery in the elderly with physiological intimal thickening using layer-specific stress-released geometries and nonlinear elastic properties. Comput Methods Biomech Biomed Engin. 19(12):1286–1296.
  • Fung Y. 1993. Biomechanics. Mechanical properties of living tissues. New York: Springer.
  • Galassi F, Alkhalil M, Lee R, Martindale P, Kharbanda RK, Channon KM, Grau V, Choudhury RP. 2018. 3D reconstruction of coronary arteries from 2D angiographic projections using non-uniform rational basis splines (NURBS) for accurate modelling of coronary stenoses. PloS One. 13(1):e0190650.
  • García-Herrera C, Celentano D. 2013. Modelling and numerical simulation of the human aortic arch under in vivo conditions. Biomech Model Mechanobiol. 12(6):1143–1154. doi:https://doi.org/10.1007/s10237-013-0471-6.
  • García-Herrera C, Celentano DJ, Cruchaga M. 2013. Bending and pressurisation test of the human aortic arch: experiments, modelling and simulation of a patient-specific case. Comput Methods Biomech Biomed Eng. 16 (8):830–839.
  • Garcia-Herrera C, Celentano DJ, Herrera EA. 2017. Modelling and numerical simulation of the in vivo mechanical response of the ascending aortic aneurysm in Marfan syndrome. Med Biol Eng Comput. 55(3):419–428.
  • Gulan U, Luthi B, Holzner M, Liberzon A, Tsinober A, Kinzelbach W. 2012. Experimental study of aortic flow in the ascending aorta via particle tracking velocimetry. Exp Fluids. 53(5):1469–1485.
  • Holzapfel G. 2000. Non linear solid mechanics. New York: Wiley.
  • Huh U, Lee CW, You J, Song C, Lee C, Ryu D. 2019. Determination of the material parameters in the Holzapfel-Gasser-Ogden constitutive model for simulation of age-dependent material nonlinear behavior for aortic wall tissue under uniaxial tension. Appl Sci. 9(14):2851. doi:https://doi.org/10.3390/app9142851.
  • Joszko K, Gzik-Zroska B, Kawlewska E, Klama-Baryła A, Suchoń S, Burkacki M, Wolański W. 2019. Evaluation of the impact of decellularization and sterilization on tensile strength transgenic porcinedermal dressings. Acta Bioeng Biomech. 21(3):87–97.
  • Kaimovitz B, Lanir Y, Kassab GS. 2005. Large-scale 3-D geometric reconstruction of the porcine coronary arterial vasculature based on detailed anatomical data. Ann Biomed Eng. 33(11):1517–1535.
  • Karimi A, Navidbakhsh M, Rezaee T, Hassani K. 2015. Measurement of the circumferential mechanical properties of the umbilical vein: experimental and numerical analyses. Comput Methods Biomech Biomed Eng. 18 (13):1418–1419.
  • Khamdaeng T, Luo J, Vappou J, Terdtoon P, Konofagou EE. 2012. Arterial stiffness identification of the human carotid artery using the stress-strain relationship in vivo. Ultrasonics. 52(3):402–411.
  • Kroon M, Holzapfel GA. 2009. Elastic properties of anisotropic vascular membranes examined by inverse analysis. Comput Methods Appl Mech Eng. 198 (45–46):3622–3632.
  • Labrosse MR, Gerson ER, Veinot JP, Beller CJ. 2013. Mechanical characterization of human aortas from pressurization testing and a paradigm shift for circumferential residual stress. J Mech Behav Biomed Mater. 17:44–55.
  • Laurent S, Cockcroft J, Bortel LV, Boutouyrie P, Giannattasio C, Hayoz D, Pannier B, Vlachopoulos C, Wilkinson I, Struijker-Boudier H. 2006. Expert consensus document on arterial stiffness: methodological issues and clinical applications. Eur Heart J. 27(21):2588–2605.
  • Martínez-Martínez F, Lago MA, Rupérez MJ, Monserrat C. 2013. Analysis of several biomechanical models for the simulation of lamb liver behaviour using similarity coefficients from medical image. Comput Methods Biomech Biomed Eng. 16 (7):747–757.
  • Masson I, Boutouyrie P, Laurent S, Humphrey JD, Zidi M. 2008. Characterization of arterial wall mechanical behavior and stresses from human clinical data. J Biomech. 41 (12):2618–2627.
  • Mihai LA, Chin L, Janmey PA, Goriely A. 2015. A comparison of hyperelastic constitutive models applicable to brain and fat tissues. J R Soc Interface. 12(110):0486.
  • Montorzi-Thorell G. 2004. Arterial in-vitro remodeling: analysis biomechanical and biological factors influencing the adaptive response [Doctoral dissertation]. Ecole Polytechnique Federale de Lausanne.
  • Moore KL. 2010. Clinically oriented anatomy. Philadelphia: Wolters Kluwer.
  • Ogden RW. 1984. Non-linear elastic deformations. New York: Dover.
  • Oijen CV. 2003. Mechanics and design of fiber-reinforced vascular prostheses [Ph.D. thesis]. Technische Universiteit Eindhoiven.
  • Prendergast PJ, Lally C, Daly S, Reid AJ, Lee TC, Quinn D, Dolan F. 2003. Analysis of prolapse in cardiovascular stents: a constitutive equation for vascular tissue and finite-element modelling. J Biomech Eng. 125(5):692–699.
  • Raghavan ML, Vorp DA. 2000. Toward a biomechanical tool to evaluate rupture potential of abdominal aortic aneurysm: identification of a finite strain constitutive model and evaluation of its applicability. J Biomech. 33 (4):475–482.
  • Redheuil A, Yu WC, Wu CO, Mousseaux E, de Cesare A, Yan R, Kachenoura N, Bluemke D, Lima JA. 2010. Reduced ascending aortic strain and distensibility: earliest manifestations of vascular aging in humans. Hypertension. 55(2):319–326.
  • Rivera E, Garcia-Herrera C, Gonzalez A, Celentano D, Herrera E. 2020. Effects of melatonin on the passive mechanical response of arteries in chronic hypoxic newborn lambs. J Mech Behav Biomed Mater. 112:104013–1016. /j.jmbbm.2020.104013.
  • Roy S, Chen J, Kumar SB, Al-Dahhan MH, Dudukovic MP. 1997. Tomographic and Particle Tracking Studies in a Liquid-Solid Riser. Ind Eng Chem Res. 36(11):4666–4669.
  • Safshekan F, Tafazzoli-Shadpour M, Abdouss M, Shadmehr MB. 2016. Mechanical characterization and constitutive modeling of human trachea: age and gender dependency. Materials. 9(6):456.
  • Stowe CM, Good AL. 1960. Estimation of cardiac output in calves and sheep by the dye and Fick oxygen techniques. Am J Physiol. 198:987–990.
  • Sugiu K, Martin J-B, Jean B, Gailloud P, Mandai S, Rufenacht DA. 2003. Artificial cerebral aneurysm model for medical testing, training, and research. Neurol Med Chir (Tokyo). 43(2):69–72.
  • Torres-Farfan C, Valenzuela FJ, Mondaca M, Valenzuela GJ, Krause B, Herrera EA, Riquelme R, Llanos AJ, Seron-Ferre M. 2008. Evidence of a role for melatonin in fetal sheep physiology: direct actions of melatonin on fetal cerebral artery, brown adipose tissue and adrenal gland. J Physiol. 586(16):4017–4027.
  • Tricerri P, Dede L, Gambaruto A, Quarteroni A, Sequeira A. 2016. A numerical study of isotropic and anisotropic constitutive models with relevance to healthy and unhealthy cerebral arterial tissues. Int J Eng Sci. 101:126–155.
  • Urbina J, Sotelo JA, Springmüller D, Montalba C, Letelier K, Tejos C, Irarrázaval P, Andia ME, Razavi R, Valverde I, et al. 2016. Realistic aortic phantom to study hemodynamics using MRI and cardiac catheterization in normal and aortic coarctation conditions. J Magn Reson Imaging. 44(3):683–697.
  • Wex C, Arndt S, Stoll A, Bruns C, Kupriyanova Y. 2015. Isotropic incompressible hyperelastic models for modelling the mechanical behaviour of biological tissues: a review. Biomed Eng Biomed Tech. 60(6):577–592.
  • Wolanski W, Gzik-Zroska B, Joszko K, Gzik M, Sołtan D. 2017. Numerical analysis of blood flow through artery with elastic wall of vessel. In: Innovations in Biomedical Engineering, IiBE 2016. Zabrze: Springer; p. 193–200.
  • World Health Organization (WHO). 2017. Cardiovascular diseases, media centre. Fact sheet Updated May 2017. http://www.who.int/mediacentre/factsheets/fs317/en.
  • Zhang Q, Li X, Yang Q. 2018. Extracting the isotropic uniaxial stress-strain relationship of hyperelastic soft materials based on new nonlinear indentation strain and stress measure. AIP Adv. 8(11):115013. doi:https://doi.org/10.1063/1.5063384.

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