PEER-REVIEWED PUBLICATION

2025

Cell-driven elastomeric particle packing in composite bioinks for engineering and implantation of stable 3D printed structures

A tensile test divider icon

Landau S, Kieda J, et al.

Bioactive Materials

University of Toronto, University Health Network, Duke University Medical Center, Toronto Metropolitan University, Technion - Israel Institute of Technology

RESEARCH SUMMARY
This paper introduces a granular-composite bioink that integrates elastomeric poly(octamethylene maleate anhydride citrate) (POMaC) microparticles into natural hydrogels (fibrin, GelMA, alginate) to overcome hydrogel compaction, swelling, and poor shape fidelity in 3D-printed cell-laden constructs. The hybrid bioink displayed fast UV-crosslinking, high ultimate compressive strength, and excellent printability by stereolithography and extrusion. Micromechanical and finite-element analyses showed that POMaC particle packing distributed stress and preserved geometry under cellular traction. Cardiac and vascular tissues printed with GelMA/POMaC retained architecture, exhibited greater cardiomyocyte contractility (lower excitation threshold, higher capture rate), and developed wider, more stable vessels in vitro and after implantation in mice. In vivo, POMaC constructs promoted angiogenesis and pro-regenerative macrophage recruitment over 4 weeks. This hybrid approach unites mechanical robustness and biocompatibility for next-generation bioinks for tissue repair and implantation.
CellScale hexagons, without text

CELLSCALE INSTRUMENT USED

MicroTester

Micromechanical compression tests were performed using a CellScale MicroTester G2 on POMaC particles and 3D-printed GelMA and alginate constructs. A 0.5588 mm tungsten microbeam with a 2 × 2 mm plate (51 µm thick) was used to apply 10–20 % cyclic strain in aqueous media (30 s load / 10 s hold / 30 s recovery). Force–displacement data at 1 s intervals were converted to stress–strain curves to calculate Young’s modulus and ultimate compressive strength. POMaC-reinforced GelMA constructs exhibited ≈ 2× higher modulus and superior integrity under handling and implantation than unreinforced controls, validating the MicroTester’s role in quantifying hybrid bioink mechanics.
AUTHORS

Shira Landau, Jennifer Kieda, Ramak Khosravi, Sargol Okhovatian, Kaitlyn Ramsay, Chuan Liu, Amid Shakeri, Yimu Zhao, Karen Shen, Orit Bar-Am, Shulamit Levenberg, Scott Tsai, Milica Radisic.

PUBLICATION DETAILS
JOURNAL

Bioactive Materials

YEAR

2025

INSTITUTIONS

University of Toronto, University Health Network, Duke University Medical Center, Toronto Metropolitan University, Technion - Israel Institute of Technology

COUNTRIES

Canada, Israel, United States

INSTRUMENT USED

MicroTester

TESTING METHODS

Compression TestingHydrated and Temperature Controlled TestingMicro-Mechanical TestingStress Relaxation TestingViscoelastic & Time-Dependent Testing

RESEARCH APPLICATIONS

3D Bioprinting & Bioink Materials TestingCardiac Tissue Engineering & MechanicsCell Laden HydrogelsHydrogel Mechanical TestingInjectable & Regenerative BiomaterialsMechanotransductionVascular Tissue Engineering & Mechanics

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Product of Interest:
CellScale hexagon shapes