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Jan Schrooten

KU Leuven · BE
Area of research
Biomedical Engineering · Surgery
Research interest
Research focused on Porosity and Selective laser melting, with related work in Titanium alloy, Mesenchymal stem cell, Composite material. Notable publications include 'The effect of pore geometry on the in vitro biological behavior of human periosteum-derived cells seeded on selective laser-melted Ti6Al4V bone scaffolds', 'Effects of build orientation and heat treatment on the microstructure and mechanical properties of selective laser melted Ti6Al4V lattice structures', and 'A calcium-induced signaling cascade leading to osteogenic differentiation of human bone marrow-derived mesenchymal stromal cells'.
h-index
citations
7,708
works
46
NIH funding
primary concept
email

Recent publications

Mechanical properties and cytocompatibility of dense and porous Zn produced by laser powder bed fusion for biodegradable implant applications
Acta Biomaterialia 2020cited by 78position: middledoi
Bioinspired seeding of biomaterials using three dimensional microtissues induces chondrogenic stem cell differentiation and cartilage formation under growth factor free conditions
Scientific Reports 2016cited by 58position: middledoi
Early BMP, Wnt and Ca2+/PKC pathway activation predicts the bone forming capacity of periosteal cells in combination with calcium phosphates
Biomaterials 2016cited by 55position: middledoi
Large-scale progenitor cell expansion for multiple donors in a monitored hollow fibre bioreactor
Cytotherapy 2016cited by 52position: middledoi
The combined mechanism of bone morphogenetic protein- and calcium phosphate-induced skeletal tissue formation by human periosteum derived cells
European Cells and Materials 2016cited by 44position: middledoi
Additively Manufactured Open-Cell Porous Biomaterials Made from Six Different Space-Filling Unit Cells: The Mechanical and Morphological Properties
Materials 2015cited by 394position: middledoi
Revival of pure titanium for dynamically loaded porous implants using additive manufacturing
Materials Science and Engineering C 2015cited by 159position: lastdoi
Rheological behavior of β-Ti and NiTi powders produced by atomization for SLM production of open porous orthopedic implants
Powder Technology 2015cited by 103position: middledoi
A three‐dimensional computational fluid dynamics model of shear stress distribution during neotissue growth in a perfusion bioreactor
Biotechnology and Bioengineering 2015cited by 84position: middledoi
Effects of anodizing parameters and heat treatment on nanotopographical features, bioactivity, and cell culture response of additively manufactured porous titanium
Materials Science and Engineering C 2015cited by 47position: middledoi
Osteostatin-Coated Porous Titanium Can Improve Early Bone Regeneration of Cortical Bone Defects in Rats
Tissue Engineering Part A 2015cited by 37position: middledoi
Effects of build orientation and heat treatment on the microstructure and mechanical properties of selective laser melted Ti6Al4V lattice structures
Additive manufacturing 2014cited by 463position: middledoi
Mechanical behavior of regular open-cell porous biomaterials made of diamond lattice unit cells
Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials 2014cited by 435position: middledoi
Relationship between unit cell type and porosity and the fatigue behavior of selective laser melted meta-biomaterials
Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials 2014cited by 413position: middledoi
Additively manufactured porous tantalum implants
Acta Biomaterialia 2014cited by 412position: lastdoi
Bone regeneration performance of surface-treated porous titanium
Biomaterials 2014cited by 293position: middledoi
Effect of SLM Parameters on Transformation Temperatures of Shape Memory Nickel Titanium Parts
Advanced Engineering Materials 2014cited by 257position: middledoi
Effects of bio-functionalizing surface treatments on the mechanical behavior of open porous titanium biomaterials
Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials 2014cited by 123position: middledoi
A computational model for cell/ECM growth on 3D surfaces using the level set method: a bone tissue engineering case study
Biomechanics and Modeling in Mechanobiology 2014cited by 106position: middledoi
Expansion of Murine Periosteal Progenitor Cells with Fibroblast Growth Factor 2 Reveals an Intrinsic Endochondral Ossification Program Mediated by Bone Morphogenetic Protein 2
Stem Cells 2014cited by 81position: middledoi
Quantitative Validation of the Presto Blue™ Metabolic Assay for Online Monitoring of Cell Proliferation in a 3D Perfusion Bioreactor System
Tissue Engineering Part C Methods 2014cited by 61position: lastdoi
Cell based advanced therapeutic medicinal products for bone repair: Keep it simple?
Advanced Drug Delivery Reviews 2014cited by 44position: middledoi
Gelatin functionalised porous titanium alloy implants for orthopaedic applications
Materials Science and Engineering C 2014cited by 43position: middledoi
Mechanical analysis of a rodent segmental bone defect model: The effects of internal fixation and implant stiffness on load transfer
Journal of Biomechanics 2014cited by 37position: middledoi
Fatigue behavior of porous biomaterials manufactured using selective laser melting
Materials Science and Engineering C 2013cited by 341position: middledoi
Surface Roughness and Morphology Customization of Additive Manufactured Open Porous Ti6Al4V Structures
Materials 2013cited by 241position: middledoi
Staphylococcal biofilm growth on smooth and porous titanium coatings for biomedical applications
Journal of Biomedical Materials Research Part A 2013cited by 123position: middledoi
Crystal structure and nanotopographical features on the surface of heat-treated and anodized porous titanium biomaterials produced using selective laser melting
Applied Surface Science 2013cited by 79position: middledoi
Peri- and intra-implant bone response to microporous Ti coatings with surface modification
Acta Biomaterialia 2013cited by 73position: middledoi
Mapping calcium phosphate activated gene networks as a strategy for targeted osteoinduction of human progenitors
Biomaterials 2013cited by 68position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Frank P. Luyten · KU Leuven15 papers (2012–2016)Amir A. Zadpoor · Delft University of Technology13 papers (2013–2020)Yoke Chin Chai · Guiyang Medical University13 papers (2012–2016)Saber Amin Yavari · Utrecht University12 papers (2013–2015)Harrie Weinans · Wilhelmina Children's Hospital12 papers (2013–2015)Liesbet Geris · KU Leuven9 papers (2012–2016)Jean‐Pierre Kruth · Flanders Make (Belgium)9 papers (2012–2015)Greet Kerckhofs · KU Leuven9 papers (2012–2013)Simon Van Bael · KU Leuven7 papers (2012–2014)Ioannis Papantoniou · KU Leuven7 papers (2013–2016)R. Wauthle · KU Leuven6 papers (2013–2015)S.M. Ahmadi · Delft University of Technology6 papers (2014–2015)Ruben Wauthlé · KU Leuven6 papers (2013–2015) · 6 papers (2013–2015)Martine Wevers · KU Leuven5 papers (2012–2013)Johanna Bolander · KU Leuven5 papers (2012–2016)Scott J. Roberts · Royal Veterinary College5 papers (2012–2016)Grzegorz Pyka · KU Leuven4 papers (2012–2013)Maarten Sonnaert · KU Leuven4 papers (2013–2020)Michiel Mulier · KU Leuven4 papers (2013–2015)