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Biodegradable Cell Microcarriers Based on Chitosan/Polyester Graft-Copolymers
by
Demina, Tatiana S.
, Drozdova, Maria G.
, Compère, Philippe
, Grandfils, Christian
, Sevrin, Chantal
, Akopova, Tatiana A.
, Markvicheva, Elena
in
Binding sites
/ Biocompatibility
/ Biocompatible Materials - chemistry
/ Cell adhesion & migration
/ Chemistry
/ Chimie
/ Chitosan - chemistry
/ Copolymers
/ Fibroblasts
/ graft-copolymers
/ Interfaces
/ Kinetics
/ Mechanical properties
/ microcarriers
/ Microscopy
/ Microspheres
/ Morphology
/ oil/water emulsion
/ Physical, chemical, mathematical & earth Sciences
/ Physique, chimie, mathématiques & sciences de la terre
/ Polyesters
/ Polyesters - chemistry
/ polylactide
/ Polymers
/ Polymers - chemistry
/ Polyvinyl alcohol
/ Tissue Engineering
2020
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Biodegradable Cell Microcarriers Based on Chitosan/Polyester Graft-Copolymers
by
Demina, Tatiana S.
, Drozdova, Maria G.
, Compère, Philippe
, Grandfils, Christian
, Sevrin, Chantal
, Akopova, Tatiana A.
, Markvicheva, Elena
in
Binding sites
/ Biocompatibility
/ Biocompatible Materials - chemistry
/ Cell adhesion & migration
/ Chemistry
/ Chimie
/ Chitosan - chemistry
/ Copolymers
/ Fibroblasts
/ graft-copolymers
/ Interfaces
/ Kinetics
/ Mechanical properties
/ microcarriers
/ Microscopy
/ Microspheres
/ Morphology
/ oil/water emulsion
/ Physical, chemical, mathematical & earth Sciences
/ Physique, chimie, mathématiques & sciences de la terre
/ Polyesters
/ Polyesters - chemistry
/ polylactide
/ Polymers
/ Polymers - chemistry
/ Polyvinyl alcohol
/ Tissue Engineering
2020
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Biodegradable Cell Microcarriers Based on Chitosan/Polyester Graft-Copolymers
by
Demina, Tatiana S.
, Drozdova, Maria G.
, Compère, Philippe
, Grandfils, Christian
, Sevrin, Chantal
, Akopova, Tatiana A.
, Markvicheva, Elena
in
Binding sites
/ Biocompatibility
/ Biocompatible Materials - chemistry
/ Cell adhesion & migration
/ Chemistry
/ Chimie
/ Chitosan - chemistry
/ Copolymers
/ Fibroblasts
/ graft-copolymers
/ Interfaces
/ Kinetics
/ Mechanical properties
/ microcarriers
/ Microscopy
/ Microspheres
/ Morphology
/ oil/water emulsion
/ Physical, chemical, mathematical & earth Sciences
/ Physique, chimie, mathématiques & sciences de la terre
/ Polyesters
/ Polyesters - chemistry
/ polylactide
/ Polymers
/ Polymers - chemistry
/ Polyvinyl alcohol
/ Tissue Engineering
2020
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Biodegradable Cell Microcarriers Based on Chitosan/Polyester Graft-Copolymers
Journal Article
Biodegradable Cell Microcarriers Based on Chitosan/Polyester Graft-Copolymers
2020
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Overview
Self-stabilizing biodegradable microcarriers were produced via an oil/water solvent evaporation technique using amphiphilic chitosan-g-polyester copolymers as a core material in oil phase without the addition of any emulsifier in aqueous phase. The total yield of the copolymer-based microparticles reached up to 79 wt. %, which is comparable to a yield achievable using traditional emulsifiers. The kinetics of microparticle self-stabilization, monitored during their process, were correlated to the migration of hydrophilic copolymer’s moieties to the oil/water interface. With a favorable surface/volume ratio and the presence of bioadhesive natural fragments anchored to their surface, the performance of these novel microcarriers has been highlighted by evaluating cell morphology and proliferation within a week of cell cultivation in vitro.
Publisher
MDPI AG,MDPI
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