Team
BIO - Polymères et Composites Biosourcés
Biography
Sijtze Buwalda is a researcher specializing in biomaterials and controlled-release systems for active ingredients. His work focuses primarily on the design and optimization of bio-based polymeric materials—including hydrogels, aerogels, and cryogels—for biomedical applications. His research explores the use of plant-derived polysaccharides, such as alginate, cellulose, pectin, and hyaluronic acid, as well as functionalized synthetic polymers, to develop materials with tunable properties (porosity, degradability, biocompatibility). A significant portion of his work focuses on the application of *click chemistry* and innovative cross-linking methods to improve the performance of hydrogels and drug delivery systems. His studies also include the analysis of mechanisms for the release of therapeutic molecules, the correlation between material structure and functional properties, and the evaluation of their stability and behavior in vitro and in vivo.
Publication(s)
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2024
‘Click’ hydrogels from renewable polysaccharide resources: Bioorthogonal chemistry for the preparation of alginate, cellulose and other plant-based networks with biomedical applications DOI : 10.1016/j.ijbiomac.2024.136695
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2024
Exploring silk fibroin aerogels via different coagulation approaches DOI : 10.1016/j.eurpolymj.2023.112722
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2024
Tuning bio-aerogel properties. Part 3: Exploring silica-pectin composite aerogels for drug delivery DOI : 10.1016/j.bioadv.2024.213954
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2024
Roadmap on multifunctional materials for drug delivery DOI : 10.1088/2515-7639/ad05e8
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2023
Release Kinetics of Dexamethasone Phosphate from Porous Chitosan: Comparison of Aerogels and Cryogels DOI : 10.1021/acs.biomac.2c01408
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2023
Hyaluronic Acid Aerogels Made Via Freeze-Thaw-Induced Gelation DOI : 10.1021/acs.biomac.2c01518
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2023
Advanced Functional Polymers for Unmet Medical Challenges DOI : 10.1021/acs.biomac.3c00332
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2022
Tuning the properties of porous chitosan: Aerogels and cryogels DOI : 10.1016/j.ijbiomac.2022.01.042
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2022
Tuning bio-aerogel properties for controlling drug delivery. Part 2: Cellulose-pectin composite aerogels DOI : 10.1016/j.bioadv.2022.212732
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2022
Crosslinker-Free Hyaluronic Acid Aerogels DOI : 10.1021/acs.biomac.2c00207
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2021
Pectin hydrogels, aerogels, cryogels and xerogels: Influence of drying on structural and release properties DOI : 10.1016/j.eurpolymj.2021.110386
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2021
Tuning bio-aerogel properties for controlling theophylline delivery. Part 1: Pectin aerogels DOI : 10.1016/j.msec.2021.112148
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2020
Synergistic anti-fouling and bactericidal poly(ether ether ketone) surfaces via a one-step photomodification DOI : 10.1016/j.msec.2020.110811
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2020
Bio-based composite hydrogels for biomedical applications DOI : 10.1088/2399-7532/ab80d6
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2020
Biorefinery approach for aerogels DOI : 10.3390/polym12122779
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2020
Double hydrophilic block copolymers self-assemblies in biomedical applications DOI : 10.1016/j.cis.2020.102213
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2020
Cellulose Aerogel Microparticles via Emulsion-Coagulation Technique DOI : 10.1021/acs.biomac.9b01725
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2020
Double-Hydrophilic Block Copolymers Based on Functional Poly(ϵ-caprolactone)s for pH-Dependent Controlled Drug Delivery DOI : 10.1021/acs.biomac.9b01006
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2019
Ultrafast in situ forming poly(ethylene glycol)-poly(amido amine) hydrogels with tunable drug release properties via controllable degradation rates DOI : 10.1016/j.ejpb.2019.04.006
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2019
Reversibly core-crosslinked PEG-P(HPMA) micelles: Platinum coordination chemistry for competitive-ligand-regulated drug delivery DOI : 10.1016/j.jcis.2018.10.001
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2018
Stabilization of poly(ethylene glycol)-poly(ε-caprolactone) star block copolymer micelles via aromatic groups for improved drug delivery properties DOI : 10.1016/j.jcis.2017.12.057
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2017
Robust & thermosensitive poly(ethylene glycol)-poly(ε-caprolactone) star block copolymer hydrogels DOI : 10.1016/j.polymdegradstab.2017.01.015
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2017
In situ forming stereocomplexed and post-photocrosslinked acrylated star poly(ethylene glycol)-poly(lactide) hydrogels DOI : 10.1016/j.eurpolymj.2017.07.002
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2017
Hydrogels for Therapeutic Delivery: Current Developments and Future Directions DOI : 10.1021/acs.biomac.6b01604
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2016
Redox Reducible and Hydrolytically Degradable PEG–PLA Elastomers as Biomaterial for Temporary Drug-Eluting Medical Devices DOI : 10.1002/mabi.201600132
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2016
PEG-PLGA copolymers bearing carboxylated side chains: Novel hydrogels with enhanced crosslinking via ionic interactions DOI : 10.1002/pola.27962
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2014
Release behavior and intra-articular biocompatibility of celecoxib-loaded acetyl-capped PCLA-PEG-PCLA thermogels DOI : 10.1016/j.biomaterials.2014.05.064
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2014
Hydrogels in a historical perspective: From simple networks to smart materials DOI : 10.1016/j.jconrel.2014.03.052
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2012
Poly(ethylene glycol)-poly(L -lactide) star block copolymer hydrogels crosslinked by metal-ligand coordination DOI : 10.1002/pola.25945
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2012
Stereocomplexed 8-armed poly(ethylene glycol)-poly(lactide) star block copolymer hydrogels: Gelation mechanism, mechanical properties and degradation behavior DOI : 10.1016/j.polymer.2012.05.006
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2012
In situ forming poly(ethylene glycol)- Poly(L -lactide) hydrogels via michael addition: Mechanical properties, degradation, and protein release DOI : 10.1002/macp.201100640
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2011
Solid-state NMR study of stereocomplexes formed by enantiomeric star-shaped PEG-PLA copolymers in water DOI : 10.1021/ma201199a
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2011
Self-assembly and photo-cross-linking of eight-armed PEG-PTMC star block copolymers DOI : 10.1021/bm200515h
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2011
Biodegradable, in situ forming poly(ethylene glycol)-poly(lactide) hydrogels by Michael addition chemistry.
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2010
Influence of amide versus ester linkages on the properties of eight-armed PEG-PLA star block copolymer hydrogels DOI : 10.1021/bm901080d
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2010
Stereocomplexed & photocrosslinked poly(ethylene glycol)-poly(lactide) star block copolymer hydrogels. DOI : 10.1016/j.jconrel.2010.07.035
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2010
Self-aggregation of gel forming PEG-PLA star block copolymers in water DOI : 10.1021/la101613b
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2008
Biodegradable chemically crosslinked peg-plla hydrogels for drug delivery purposes
Teaching
Implantable Devices and Materials for Medical Use
Syllabus The numerous and extremely varied concepts covered in this course will be illustrated by the teaching team using one or two real-life cases involving organs or tissues (dental, osteoarticular, cardiovascular, etc.) to serve as “guiding themes” throughout the course. During the first session, students will take on the role of an R&D team tasked with developing a material for a healthcare application. They will thus choose their own “guiding theme,” to which they will apply the various concepts covered from one class to the next. Each class session will be organized into three phases: - I - a presentation followed by a discussion during which a pair or trio of students will present how the material from the previous class applies to their project; - II - an introductory lecture on fundamental concepts or a presentation by a guest speaker (a physician, industry professional, or regulatory specialist); - III - a group work session to apply the concepts covered to the selected case study. Furthermore, once the case study has been selected, the teaching team will work with the students to contact one or more specialists in the field (physician, researcher, engineer, etc.), to whom a summary of the study will be presented at the end of the course in the form of a report and a project defense presentation. Students will thus be able to test their approach against the critical opinions of experts and professionals. Content The program will consist of six sessions during which the following concepts will be addressed: • the composition and organization of biological materials, • biocompatibility, bioactivity, biointegration, and bioresorbability, • the mechanical properties of tissues and their mechanical characterization in vivo and in vitro, • the major classes of biomaterials (polymers, metals, ceramics), • new manufacturing processes and the tissue engineering approach, • methods for evaluating the in-service performance of biomaterials and medical devices, • regulatory aspects, • consideration of medical constraints, • the industrial context.
PhD supervision
- 2025 Magnetic granular aerogels for soft robotics PELLA Dario
- 2024 Composite hydrogels for dual drug delivery VINCENT Carla
- 2022 Biosourced nanocomposite hydrogels and aerogels for biomedical applications BOURAS Hiba
- 2021 Development of hyaluronic acid-based materials LEGAY Laurianne
- 2019 Chitosan-based aerogels and cryogels for wound treatment CHARTIER Coraline
