Literature DB >> 27771811

Constitutive description of human femoropopliteal artery aging.

Alexey Kamenskiy1, Andreas Seas2, Paul Deegan3, William Poulson3, Eric Anttila4, Sylvie Sim3, Anastasia Desyatova3, Jason MacTaggart5.   

Abstract

Femoropopliteal artery (FPA) mechanics play a paramount role in pathophysiology and the artery's response to therapeutic interventions, but data on FPA mechanical properties are scarce. Our goal was to characterize human FPAs over a wide population to derive a constitutive description of FPA aging to be used for computational modeling. Fresh human FPA specimens ([Formula: see text]) were obtained from [Formula: see text] predominantly male (80 %) donors 54±15 years old (range 13-82 years). Morphometric characteristics including radius, wall thickness, opening angle, and longitudinal pre-stretch were recorded. Arteries were subjected to multi-ratio planar biaxial extension to determine constitutive parameters for an invariant-based model accounting for the passive contributions of ground substance, elastin, collagen, and smooth muscle. Nonparametric bootstrapping was used to determine unique sets of material parameters that were used to derive age-group-specific characteristics. Physiologic stress-stretch state was calculated to capture changes with aging. Morphometric and constitutive parameters were derived for seven age groups. Vessel radius, wall thickness, and circumferential opening angle increased with aging, while longitudinal pre-stretch decreased ([Formula: see text]). Age-group-specific constitutive parameters portrayed orthotropic FPA stiffening, especially in the longitudinal direction. Structural changes in artery wall elastin were associated with reduction of physiologic longitudinal and circumferential stretches and stresses with age. These data and the constitutive description of FPA aging shed new light on our understanding of peripheral arterial disease pathophysiology and arterial aging. Application of this knowledge might improve patient selection for specific treatment modalities in personalized, precision medicine algorithms and could assist in device development for treatment of peripheral artery disease.

Entities:  

Keywords:  Biaxial testing; Constitutive modeling; Femoropopliteal artery; Mechanical properties; Peripheral artery disease; Remodeling

Mesh:

Substances:

Year:  2016        PMID: 27771811      PMCID: PMC5352506          DOI: 10.1007/s10237-016-0845-7

Source DB:  PubMed          Journal:  Biomech Model Mechanobiol        ISSN: 1617-7940


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8.  Effects of age on the physiological and mechanical characteristics of human femoropopliteal arteries.

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  18 in total

1.  Mechanical stresses associated with flattening of human femoropopliteal artery specimens during planar biaxial testing and their effects on the calculated physiologic stress-stretch state.

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3.  Comparison of femoropopliteal artery stents under axial and radial compression, axial tension, bending, and torsion deformations.

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4.  Limb flexion-induced twist and associated intramural stresses in the human femoropopliteal artery.

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5.  Cross-sectional pinching in human femoropopliteal arteries due to limb flexion, and stent design optimization for maximum cross-sectional opening and minimum intramural stresses.

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6.  Mechanical damage characterization in human femoropopliteal arteries of different ages.

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8.  Effect of aging on mechanical stresses, deformations, and hemodynamics in human femoropopliteal artery due to limb flexion.

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10.  Constitutive modeling of human femoropopliteal artery biaxial stiffening due to aging and diabetes.

Authors:  Anastasia Desyatova; Jason MacTaggart; Alexey Kamenskiy
Journal:  Acta Biomater       Date:  2017-09-30       Impact factor: 8.947

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