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Biomechanical properties and microstructure of neonatal porcine ventricles

Ahmad, Faizan; Prabhu, Ra?j; Liao, Jun; Soe, Shwe; Jones, Michael D.; Miller, Jonathan; Berthelson, Parker; Enge, Daniel; Copeland, Katherine M.; Shaabeth, Samar; Johnston, Richard; Maconochie, Ian; Theobald, Peter S.

Authors

Faizan Ahmad

Ra?j Prabhu

Jun Liao

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Dr Shwe Soe Shwe.Soe@uwe.ac.uk
Associate Professor in Digital Manufacturing

Michael D. Jones

Jonathan Miller

Parker Berthelson

Daniel Enge

Katherine M. Copeland

Samar Shaabeth

Richard Johnston

Ian Maconochie

Peter S. Theobald



Abstract

© 2018 Elsevier Ltd Neonatal heart disorders represent a major clinical challenge, with congenital heart disease alone affecting 36,000 new-borns annually within the European Union. Surgical intervention to restore normal function includes the implantation of synthetic and biological materials; however, a lack of experimental data describing the mechanical behaviour of neonatal cardiac tissue is likely to contribute to the relatively poor short- and long-term outcome of these implants. This study focused on characterising the mechanical behaviour of neonatal cardiac tissue using a porcine model, to enhance the understanding of how this differs to the equivalent mature tissue. The biomechanical properties of neonatal porcine cardiac tissue were characterised by uniaxial tensile, biaxial tensile, and simple shear loading modes, using samples collected from the anterior and posterior walls of the right and left ventricles. Histological images were prepared using Masson's trichrome staining, to enable assessment of the microstructure and correlation with tissue behaviour. The mechanical tests demonstrated that the neonatal cardiac tissue is non–linear, anisotropic, viscoelastic and heterogeneous. Our data provide a baseline describing the biomechanical behaviour of immature porcine cardiac tissue. Comparison with published data also indicated that the neonatal porcine cardiac tissue exhibits one-half the stiffness of mature porcine tissue in uniaxial extension testing, one-third in biaxial extension testing, and one-fourth stiffness in simple shear testing; hence, it provides an indication as to the relative change in characteristics associated with tissue maturation. These data may prove valuable to researchers investigating neonatal cardiac mechanics.

Citation

Ahmad, F., Prabhu, R., Liao, J., Soe, S., Jones, M. D., Miller, J., …Theobald, P. S. (2018). Biomechanical properties and microstructure of neonatal porcine ventricles. Journal of the Mechanical Behavior of Biomedical Materials, 88, 18-28. https://doi.org/10.1016/j.jmbbm.2018.07.038

Journal Article Type Article
Acceptance Date Jul 27, 2018
Online Publication Date Jul 29, 2018
Publication Date Dec 1, 2018
Deposit Date Aug 22, 2019
Publicly Available Date Jul 29, 2019
Journal Journal of the Mechanical Behavior of Biomedical Materials
Print ISSN 1751-6161
Electronic ISSN 1878-0180
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 88
Pages 18-28
DOI https://doi.org/10.1016/j.jmbbm.2018.07.038
Keywords Neonate; Cardiac mechanics; Congenital heart disease; Passive mechanical behaviour; Age-dependent variations
Public URL https://uwe-repository.worktribe.com/output/2368073
Publisher URL http://orca.cf.ac.uk/114158/
Related Public URLs http://orca.cf.ac.uk/114158/

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