Evidence map›Paper›PMID 42484716›Full record

ArticleBiomechanics and modeling in mechanobiology2026

Computational modeling of tissue damage preceding aortic dissection: a coupled biphasic and reactive viscoelastic framework.

Laura Pellerito, Stéphane Avril, Elisabetta Morici, Giuseppe Sancataldo, Massimiliano Zingales

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Article in Biomechanics and modeling in mechanobiology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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4 · The record

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5 · Who and what money

Authors and funding

5 authors.

Laura PelleritoDepartment of Me.Pre.C.C., University of Palermo, Via Liborio Giuffrè n°5, 90127, Palermo, Italy. laura.pellerito@unipa.it.
Stéphane Avril *Mines Saint-Étienne, University Jean Monnet, INSERM, U 1059 Sainbiose, 42023, Saint-Étienne, France.
Elisabetta Morici *Advanced Technologies Network (ATeN) Center, University of Palermo, Viale delle Scienze, Ed. 18, 90128, Palermo, Italy.
Giuseppe Sancataldo *Department of Physics and Chemistry, University of Palermo, Viale delle Scienze, Ed. 18, 90128, Palermo, Italy.
Massimiliano Zingales *Department of Engineering, University of Palermo, Viale delle Scienze, Ed. 8, 90128, Palermo, Italy.

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

Aortic dissection is a life-threatening pathology characterized by the progressive delamination of adjacent lamellar units within the aortic media. Because this internal damage propagates predominantly along the radial direction of the arterial wall, radial tensile testing has emerged as a particularly relevant experimental configuration to reproduce the mechanical conditions associated with dissection. Several experimental studies have reported the mechanical response of arterial tissues under radial tension, highlighting pronounced viscoelasticity, fluid-driven effects, and progressive damage. However, despite these advances, a coherent constitutive framework capable of reproducing the full mechanical response of arterial tissue subjected to radial tensile loading is still lacking. In this study, we propose a computational model specifically designed to describe arterial tissue behavior under radial tensile testing. The model combines a biphasic formulation, accounting for fluid-solid interactions, with a reactive viscoelastic damage framework to capture time-dependent response and progressive mechanical degradation. Implemented within the FEBio environment, the model is calibrated using experimental radial tensile tests on aortic tissue. The proposed formulation accurately reproduces key experimental features, including stress relaxation, nonlinear stiffening, and damage progression. These results demonstrate that the model provides a physically consistent description of arterial tissue behavior under radial tension and represents a relevant tool for investigating the mechanical mechanisms preceding aortic dissection.

Indexed as

AortaAortic DissectionComputer SimulationElasticityModels, CardiovascularAnimalsBiomechanical PhenomenaDissection, Thoracic AortaHumansStress, MechanicalTensile StrengthViscosityAortic dissectionBiphasic modelingDamage mechanicsRadial tensile testingReactive viscoelasticity

Identifiers

PMID42484716
PMCPMC13391696

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.