Area of research
Biomedical Engineering · Rheumatology
Research interest
Research interests include Materials science, Cartilage, Biomedical engineering, Self-healing hydrogels, Biofabrication, and Extracellular matrix.
Restoring articular cartilage: insights from structure, composition and development
Engineering Anisotropic Mechanical Properties in Large‐Scale Fabricated Cartilage Constructs Using Microfiber Reinforcement
Covalent Grafting of Functionalized MEW Fibers to Silk Fibroin Hydrogels to Obtain Reinforced Tissue Engineered Constructs
Volumetric Printing Across Melt Electrowritten Scaffolds Fabricates Multi‐Material Living Constructs with Tunable Architecture and Mechanics
Composite Graded Melt Electrowritten Scaffolds for Regeneration of the Periodontal Ligament-to-Bone Interface
Convergence of melt electrowriting and extrusion-based bioprinting for vascular patterning of a myocardial construct
Orthotopic equine study confirms the pivotal importance of structural reinforcement over the pre‐culture of cartilage implants
Bioink with cartilage-derived extracellular matrix microfibers enables spatial control of vascular capillary formation in bioprinted constructs
Hydrogel-Based Bioinks for Cell Electrowriting of Well-Organized Living Structures with Micrometer-Scale Resolution
Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
The Complexity of Joint Regeneration: How an Advanced Implant could Fail by Its In Vivo Proven Bone Component
Potential of Melt Electrowritten Scaffolds Seeded with Meniscus Cells and Mesenchymal Stromal Cells
Combining multi-scale 3D printing technologies to engineer reinforced hydrogel-ceramic interfaces
Multitechnology Biofabrication: A New Approach for the Manufacturing of Functional Tissue Structures?
Melt electrowriting onto anatomically relevant biodegradable substrates: Resurfacing a diarthrodial joint
Simultaneous Micropatterning of Fibrous Meshes and Bioinks for the Fabrication of Living Tissue Constructs
3D bioprinting of methacrylated hyaluronic acid (MeHA) hydrogel with intrinsic osteogenicity
Out‐of‐Plane 3D‐Printed Microfibers Improve the Shear Properties of Hydrogel Composites
Hydrogel-based reinforcement of 3D bioprinted constructs