PEER-REVIEWED PUBLICATION

2025

Biohybrid microvascular interponates with integrated elastin-like recombinamers – validation of stability and biomimetic elasticity in human vessels

Heitzer, Marius, et al.

Scientific Reports

RWTH Aachen University, University Hospital RWTH Aachen, University of Valladolid

RESEARCH SUMMARY
This ex vivo study evaluates a novel biohybrid microvascular interposition graft designed for microsurgical reconstruction, combining elastin-like recombinamers (ELRs) with a textile-reinforced architecture to achieve biomimetic elasticity and mechanical robustness. The grafts were fabricated with a warp-knitted PET textile core embedded within an ELR hydrogel matrix to replicate the compliance and elastic recoil of native human vessels. Mechanical performance was benchmarked against human radial arteries and autologous saphenous vein grafts using compliance testing, burst pressure analysis, and tensile strength measurements. The ELR biohybrid grafts exhibited significantly higher compliance than native arteries across physiological pressure ranges while maintaining burst pressures exceeding five times physiological blood pressure. Tensile testing of artery–graft–artery interpositions demonstrated superior anastomotic strength compared to artery–vein–artery controls. Collectively, the results demonstrate that ELR-based biohybrid microvascular grafts offer mechanically favorable and surgically compatible alternatives to autologous vein grafts for microvascular interposition in reconstructive surgery. :contentReference[oaicite:1]{index=1}

CELLSCALE INSTRUMENT USED

UniVert

Uniaxial tensile testing of human vessel–graft interposition constructs was performed using a CellScale UniVert mechanical testing system equipped with a 10 N load cell. Biohybrid ELR grafts and control vein grafts were sutured between human radial artery segments and mounted on custom rods to preserve tubular geometry. Tests were conducted with samples fully immersed in phosphate-buffered saline at 37 °C, and tensile force was applied at 50 mm/min in accordance with ISO 7198 guidelines until failure. The UniVert enabled precise quantification of anastomotic tensile strength, revealing significantly higher failure loads for ELR graft interpositions compared to venous graft controls, directly supporting assessment of microsurgical handling robustness and graft stability. :contentReference[oaicite:2]{index=2}
AUTHORS

Heitzer, Marius; Andre, Dominic; Winnand, Philipp; Ooms, Mark; Vohl, Nils; Rodríguez-Cabello, José Carlos; Jockenhoevel, Stefan; Hölzle, Frank; Modabber, Ali; Fernández-Colino, Alicia.

PUBLICATION DETAILS
JOURNAL

Scientific Reports

YEAR

2025

INSTITUTIONS

RWTH Aachen University, University Hospital RWTH Aachen, University of Valladolid

COUNTRIES

Germany, Spain

INSTRUMENT USED

UniVert

TESTING METHODS

Hydrated and Temperature Controlled TestingTensile Testing

RESEARCH APPLICATIONS

ECM & Decellularized Matrix MechanicsInjectable & Regenerative BiomaterialsMaterial Fatigue and DurabilityPolymers and Elastomers TestingVascular Tissue Engineering & Mechanics

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