PEER-REVIEWED PUBLICATION

2025

Variations in stiffness and structure of the human aorta along its length

A tensile test divider icon

Shahbad R, Kazim M, et al.

Scientific Reports

University of Nebraska Omaha

RESEARCH SUMMARY
This study provides a detailed analysis of the regional mechanical, structural, and morphological variations of the human aorta using freshly excised tissue from 10 middle-aged and elderly donors. Samples from four anatomical regions—the descending thoracic, supraceliac, infrarenal, and distal abdominal aorta—were subjected to planar biaxial mechanical testing, morphometric analysis, and histology. The results revealed a progressive distal stiffening associated with decreasing elastin density (from 23.5% to 8.9%), fragmentation of elastic lamellae, and reduced circumferential and longitudinal stretch ratios. Constitutive modeling using four material models showed that a four-fiber family model best described the aortic stress–strain response, providing region-specific material parameters for computational modeling and medical device design.
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CELLSCALE INSTRUMENT USED

BioTester

Planar biaxial tests were performed using a CellScale BioTester equipped with 2.5 N load cells while samples were submerged in 0.9% phosphate-buffered saline at 37 °C. Rectangular aortic segments (13 × 13 mm) were mounted using BioRake tines in both circumferential and longitudinal orientations. The BioTester system enabled precise stretch-controlled protocols (21 multi-ratio loading conditions) to characterize anisotropy and nonlinearity across four aortic regions, providing high-fidelity stress–strain data for constitutive model fitting.
AUTHORS

Ramin Shahbad, Madihah Kazim, Sayed Ahmadreza Razian, Anastasia Desyatova, Majid Jadidi.

PUBLICATION DETAILS
JOURNAL

Scientific Reports

YEAR

2025

INSTITUTIONS

University of Nebraska Omaha

COUNTRIES

United States

INSTRUMENT USED

BioTester

TESTING METHODS

Biaxial TestingHydrated and Temperature Controlled TestingTensile Testing

RESEARCH APPLICATIONS

Cardiac Tissue Engineering & MechanicsFibrosis & Tissue RemodelingVascular Tissue Engineering & Mechanics

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