PEER-REVIEWED PUBLICATION

2025

Preclinical Validation of a Patient-Specific Patch-Planning Workflow for Congenital Cardiovascular Reconstruction

Kizilski SB, Recco DP, et al.

Annals of Biomedical Engineering

Boston Children's Hospital, Harvard Medical School, U.S. Food and Drug Administration, Baylor University, Dassault Systèmes

RESEARCH SUMMARY
Patient-specific surgical patch planning was examined in the context of congenital cardiovascular reconstruction. Finite-element and analytical models were applied to relate patch geometry to post-repair vessel diameter in simulated branch pulmonary artery stenosis. Central to the workflow is heart valve material quantification, where pediatric heart valve biomechanics are represented using experimentally derived mechanical properties. Mechanical inputs were obtained from biaxial mechanical testing and incorporated into virtual 3D vessel models that account for pressure-dependent expansion and suture interaction. Neonatal and child-scale silicone artery models were fabricated to evaluate the approach using different patch materials, including silicone, pericardium, and porcine tissue. Predicted patch dimensions were compared with reconstructed geometries to assess agreement with target vessel size. The workflow provides a translational biomechanics framework for linking mechanical testing data with surgical decisions in pediatric cardiology.

CELLSCALE INSTRUMENT USED

BioTester

Biaxial mechanical testing of vessel and patch materials was performed using a CellScale BioTester 5000 to determine nonlinear elastic properties under physiological loading. Silicone, pericardial, and porcine tissue samples were mounted along principal fiber axes and subjected to displacement-controlled biaxial tension. Cauchy stress–stretch data were collected to characterize circumferential and axial response curves, which informed the finite-element and analytical models used to predict patch deformation and vessel wall mechanics.
AUTHORS

Shannen B. Kizilski, Dominic P. Recco, Jocelyn M. Davee, Ashley Masterson, Jiang Yao, Patrick D. Earley, Nicholas E. Kneier, Kenneth I. Aycock, Brent A. Craven, Pras Pathmanathan, Peter E. Hammer, David M. Hoganson.

PUBLICATION DETAILS
JOURNAL

Annals of Biomedical Engineering

YEAR

2025

INSTITUTIONS

Boston Children's Hospital, Harvard Medical School, U.S. Food and Drug Administration, Baylor University, Dassault Systèmes

COUNTRIES

United States

INSTRUMENT USED

BioTester

TESTING METHODS

Biaxial TestingHydrated and Temperature Controlled TestingTensile Testing

RESEARCH APPLICATIONS

Cardiac Tissue Engineering & MechanicsHeart Valve Tissue Engineering & MechanicsInjectable & Regenerative BiomaterialsVascular Tissue Engineering & Mechanics

Related Publications:

Instrument Used:
Year:
Testing Method:
Research Application:
Country:

Cell-only bioprinting of articular cartilage progenitor cells within a physically constraining support bath to engineer structurally organized grafts

Karam AS, Kronemberger GS, et al.

Bioactive Materials

BioTester

Hydrated and Temperature Controlled TestingTensile Testing

3D Bioprinting & Bioink Materials TestingCartilage and Meniscus MechanicsECM & Decellularized Matrix MechanicsMechanotransductionMusculoskeletal Tissue Engineering & Mechanics

2026

Biomechanical and Functional Response of 3D Printed Materials and Silicone Elastomers Compared to Human Aortic Tissues

Tan V, Eliathamby D, et al.

Journal of Biomedical Materials Research Part A

BioTester

Biaxial TestingTensile Testing

Heart Valve Tissue Engineering & MechanicsPolymers and Elastomers TestingVascular Tissue Engineering & Mechanics

2026

Electrospun Multilayer Scaffolds Based on Poly (L-Lactic Acid) and Poly (Acrylonitrile) Reinforced with CaO Nanoparticles for Enhanced Skin Regeneration and Wound Healing

Rivera E, Montoille L, et al.

Polymers

BioTester

Tensile Testing

Scaffold Mechanical TestingSkin and Wound Healing Biomechanics

2026

Contact Sales

Product of Interest: