Changes in the structure-function relationship of elastin and its impact on the proximal pulmonary arterial mechanics of hypertensive calves
- 1 October 2008
- journal article
- research article
- Published by American Physiological Society in American Journal of Physiology-Heart and Circulatory Physiology
- Vol. 295 (4) , H1451-H1459
- https://doi.org/10.1152/ajpheart.00127.2008
Abstract
Extracellular matrix remodeling has been proposed as one mechanism by which proximal pulmonary arteries stiffen during pulmonary arterial hypertension (PAH). Although some attention has been paid to the role of collagen and metallomatrix proteins in affecting vascular stiffness, much less work has been performed on changes in elastin structure-function relationships in PAH. Such work is warranted, given the importance of elastin as the structural protein primarily responsible for the passive elastic behavior of these conduit arteries. Here, we study structure-function relationships of fresh arterial tissue and purified arterial elastin from the main, left, and right pulmonary artery branches of normotensive and hypoxia-induced pulmonary hypertensive neonatal calves. PAH resulted in an average 81 and 72% increase in stiffness of fresh and digested tissue, respectively. Increase in stiffness appears most attributable to elevated elastic modulus, which increased 46 and 65%, respectively, for fresh and digested tissue. Comparison between fresh and digested tissues shows that, at 35% strain, a minimum of 48% of the arterial load is carried by elastin, and a minimum of 43% of the change in stiffness of arterial tissue is due to the change in elastin stiffness. Analysis of the stress-strain behavior revealed that PAH causes an increase in the strains associated with the physiological pressure range but had no effect on the strain of transition from elastin-dominant to collagen-dominant behavior. These results indicate that mechanobiological adaptations of the continuum and geometric properties of elastin, in response to PAH, significantly elevate the circumferential stiffness of proximal pulmonary arterial tissue.Keywords
This publication has 50 references indexed in Scilit:
- Pulmonary vascular input impedance is a combined measure of pulmonary vascular resistance and stiffness and predicts clinical outcomes better than pulmonary vascular resistance alone in pediatric patients with pulmonary hypertensionAmerican Heart Journal, 2007
- Application of A Microstructural Constitutive Model of the Pulmonary Artery to Patient-Specific Studies: Validation and Effect of OrthotropyJournal of Biomechanical Engineering, 2006
- Noninvasive Doppler Tissue Measurement of Pulmonary Artery Compliance in Children with Pulmonary HypertensionJournal of the American Society of Echocardiography, 2006
- Determination of strain energy function for arterial elastin: Experiments using histology and mechanical testsJournal of Biomechanics, 2006
- A Microstructural Hyperelastic Model of Pulmonary Arteries Under Normo- and Hypertensive ConditionsAnnals of Biomedical Engineering, 2005
- A strain energy function for arteries accounting for wall composition and structureJournal of Biomechanics, 2004
- Vascular Remodeling in HypertensionHypertension, 2001
- Arterial Wave Reflections and Survival in End-Stage Renal FailureHypertension, 2001
- Structure and Mechanical Properties of Resistance Arteries in HypertensionHypertension, 2000
- Fibronectin Expression and Aortic Wall Elastic Modulus in Spontaneously Hypertensive RatsArteriosclerosis, Thrombosis, and Vascular Biology, 1998