Rouba Ghobeira
Ghent University
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Featured researches published by Rouba Ghobeira.
Biomedical Materials | 2017
Rouba Ghobeira; Charlot Philips; Heidi Declercq; Pieter Cools; Nathalie De Geyter; Ria Cornelissen; Rino Morent
For most tissue engineering applications, surface modification and sterilization of polymers are critical aspects determining the implant success. The first part of this study is thus dedicated to modifying polycaprolactone (PCL) surfaces via plasma treatment using a medium pressure dielectric barrier discharge, while the second part focuses on the sterilization of plasma-modified PCL. Chemical and physical surface changes are examined making use of water contact angle goniometry (WCA), x-ray photoelectron spectroscopy and atomic force microscopy. Bioresponsive properties are evaluated by performing cell culture tests. The results show that air and argon plasmas decrease the WCA significantly due to the incorporation of oxygen-containing functionalities onto the PCL surface, without modifying its morphology. Extended treatment times lead to PCL degradation, especially in the case of air plasma. In addition to surface modification, the plasma potential to sterilize PCL is studied with appropriate treatment times, but sterility has not been achieved so far. Therefore, plasma-modified films are subjected to UV, H2O2 plasma (HP) and ethylene oxide (EtO) sterilizations. UV exposure of 3 h does not alter the PCL physico-chemical properties. A decreased wettability is observed after EtO sterilization, attributable to the modification of PCL chain ends reacting with EtO molecules. HP sterilization increases the WCA of the plasma-treated samples, presumably due to the scission of the hydrophilic bonds generated during the prior plasma treatments. Moreover, HP modifies the PCL surface morphology. For all the sterilizations, an improved cell adhesion and proliferation is observed on plasma-treated films compared to untreated ones. EtO shows the lowest proliferation rate compared to HP and UV. Overall, of the three sterilizations, UV is the most effective, since the physical alterations provoked by HP might interfere with the structural integrity when it comes to 3D scaffolds, and the chemical modifications caused by EtO, in addition to its toxicity, interfere with PCL bioactivity.
Plasma science and technology : progress in physical states and chemical reactions | 2016
Pieter Cools; Rouba Ghobeira; Stijn Van Vrekhem; Nathalie DeGeyterand; Rino Morent
Non-thermal plasma technology is one of those techniques that suffer relatively little from diffusion limits, slow kinetics and complex geometries compared to more traditional liquid-based chemical surface modification techniques. Combined with a lack of solvents, preservation of the bulk properties and fast treatment times, it is a well-liked technique for the treatment of materials for biomedical applications. In this book chapter, a review will be given on what the scientific community determined to be essential to obtain appropriate scaffolds for tissue engineering and how plasma scientists have used non-thermal plasma technology to accomplish this. A distinction will be made depending on the scaffold fabrication technique, as each technique has its own set of specific problems that need to be tackled. Fabrication techniques will include traditional fabrication methods, rapid prototyping and electrospinning. As for the different plasma techniques, both plasma activation, grafting and polymerization will be included in the review and linked to the in-vitro/in-vivo response to these treatments. The literature review itself is preceded by a more general overview on cell communication, giving useful insights on how surface modification strategies should be developed.
Scientific Reports | 2018
Pieter Cools; Carlos Mota; Ivan Lorenzo-Moldero; Rouba Ghobeira; Nathalie De Geyter; Lorenzo Moroni; Rino Morent
The current generation of tissue engineered additive manufactured scaffolds for cartilage repair shows high potential for growing adult cartilage tissue. This study proposes two surface modification strategies based on non-thermal plasma technology for the modification of poly(ethylene oxide terephthalate/poly(butylene terephthalate) additive manufactured scaffolds to enhance their cell-material interactions. The first, plasma activation in a helium discharge, introduced non-specific polar functionalities. In the second approach, a carboxylic acid plasma polymer coating, using acrylic acid as precursor, was deposited throughout the scaffolds. Both surface modifications were characterized by significant changes in wettability, linked to the incorporation of new oxygen-containing functional groups. Their capacity for chondrogenesis was studied using ATDC5 chondroblasts as a model cell-line. The results demonstrate that the carboxylic acid-rich plasma coating had a positive effect on the generation of the glucoaminoglycans (GAG) matrix and stimulated the migration of cells throughout the scaffold. He plasma activation stimulated the formation of GAGs but did not stimulate the migration of chondroblasts throughout the scaffolds. Both plasma treatments spurred chondrogenesis by favoring GAG deposition. This leads to the overall conclusion that acrylic acid based plasma coatings exhibit potential as a surface modification technique for cartilage tissue engineering applications.
Journal of Biomedical Nanotechnology | 2017
Rouba Ghobeira; Charlot Philips; Valerie De Naeyer; Heidi Declercq; Pieter Cools; Nathalie De Geyter; Maria Cornelissen; Rino Morent
Surface & Coatings Technology | 2018
Pieter Cools; Heidi Declercq; Rouba Ghobeira; Rino Morent; Nathalie De Geyter
Biomaterials | 2018
Emiel De Jaeghere; Elly De Vlieghere; Jasper Van Hoorick; Sandra Van Vlierberghe; Glenn Wagemans; Leen Pieters; Elodie Melsens; Marleen Praet; Jo Van Dorpe; Matthieu Boone; Rouba Ghobeira; Nathalie De Geyter; Marc Bracke; Christian Vanhove; Sara Neyt; Geert Berx; Bruno G. De Geest; Peter Dubruel; Heidi Declercq; Wim Ceelen; Olivier De Wever
Polymer | 2018
Rouba Ghobeira; Mahtab Asadian; Chris Vercruysse; Heidi Declercq; Nathalie De Geyter; Rino Morent
Archive | 2018
Gaelle Aziz; Rouba Ghobeira; Rino Morent; Nathalie De Geyter
Conference on Advanced Materials for Biomedical Applications (AMBA 2017) | 2017
Charlot Philips; Rouba Ghobeira; Heidi Declercq; Pieter Cools; Nathalie De Geyter; Rino Morent; Maria Cornelissen
Biodegradable polymers : recent developments and new perspectives | 2017
Rouba Ghobeira; Nathalie De Geyter; Rino Morent