In pulmonary arteries (PA), mechanical function is largely driven by the underlying microstructure of the structural proteins collagen and elastin, which reside within the extracellular matrix (ECM) of the arterial tissue. It has long been established that much of the mechanical non-linearity associated with arterial tissue is the result of collagen mechanics. Arterial collagen is arranged within the vascular wall as tortuous fibrils with a bulk fiber orientation of roughly helical configuration. When arterial tissue is deformed, these collagen fibers become straightened in the direction of applied load. At some critical deformation, termed the transition stretch (λTrans), collagen fibers begin to carry load, thus significantly altering material stiffness. This in turn gives rise to the non-linear force-stretch (F-λ) response typical of these tissues, Figure 1. We have recently found that λTrans is significantly reduced in the hypoxia-induced pulmonary hypertensive (PH) rat model. We therefore propose that this model constitutes an ideal system to study the effect of collagen microstructure on the mechanics of arterial tissues in response to PH vascular remodeling. We hypothesize that quantitative characterization of collagen microstructure will predict pulmonary artery (PA) λTrans within this model system. By directly relating collagen microstructural changes to bulk tissue mechanics in response to PH-induced vascular remodeling we can better understand how changes in collagen structure impact pulmonary hemodynamic capacitance, a major component of cardiac load and contributing factor to right heart failure.
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ASME 2011 Summer Bioengineering Conference
June 22–25, 2011
Farmington, Pennsylvania, USA
Conference Sponsors:
- Bioengineering Division
ISBN:
978-0-7918-5458-7
PROCEEDINGS PAPER
Microstructural Changes in Collagen and Elastin and Their Impact on the Mechanics of the Pulmonary Artery in Hypertension Available to Purchase
Steven Lammers,
Steven Lammers
University of Colorado, Aurora, CO
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Tosin Feyintola,
Tosin Feyintola
University of Colorado, Aurora, CO
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Kendall Hunter,
Kendall Hunter
University of Colorado, Aurora, CO
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Emily Gibson,
Emily Gibson
University of Colorado, Aurora, CO
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H. Jerry Qi,
H. Jerry Qi
University of Colorado, Boulder, CO
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Craig Lanning,
Craig Lanning
University of Colorado, Aurora, CO
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Robin Shandas,
Robin Shandas
University of Colorado, Aurora, CO
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Kurt Stenmark
Kurt Stenmark
University of Colorado, Aurora, CO
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Steven Lammers
University of Colorado, Aurora, CO
Tosin Feyintola
University of Colorado, Aurora, CO
Kendall Hunter
University of Colorado, Aurora, CO
Emily Gibson
University of Colorado, Aurora, CO
Tim Lei
University of Colorado, Aurora, CO
Phil Kao
University of Colorado, Boulder, CO
H. Jerry Qi
University of Colorado, Boulder, CO
Craig Lanning
University of Colorado, Aurora, CO
Robin Shandas
University of Colorado, Aurora, CO
Kurt Stenmark
University of Colorado, Aurora, CO
Paper No:
SBC2011-53958, pp. 1319-1320; 2 pages
Published Online:
July 17, 2013
Citation
Lammers, S, Feyintola, T, Hunter, K, Gibson, E, Lei, T, Kao, P, Qi, HJ, Lanning, C, Shandas, R, & Stenmark, K. "Microstructural Changes in Collagen and Elastin and Their Impact on the Mechanics of the Pulmonary Artery in Hypertension." Proceedings of the ASME 2011 Summer Bioengineering Conference. ASME 2011 Summer Bioengineering Conference, Parts A and B. Farmington, Pennsylvania, USA. June 22–25, 2011. pp. 1319-1320. ASME. https://doi.org/10.1115/SBC2011-53958
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