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Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications

Racemic α,α,β-trisubstituted β-lactones are the monomer units of poly((R,S)-3,3-dimethylmalic acid) (PDMMLA) derivatives, new biopolyesters showing great potential for biomedical applications. Using different groups during the synthesis of these β-lactones allows a tailored synthesis of PDMMLA copol...

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Autores principales: Gholizadeh, Elnaz, Belibel, Rima, Bachelart, Thomas, Bounadji, Chérifa, Barbaud, Christel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056615/
https://www.ncbi.nlm.nih.gov/pubmed/35516467
http://dx.doi.org/10.1039/d0ra06033j
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author Gholizadeh, Elnaz
Belibel, Rima
Bachelart, Thomas
Bounadji, Chérifa
Barbaud, Christel
author_facet Gholizadeh, Elnaz
Belibel, Rima
Bachelart, Thomas
Bounadji, Chérifa
Barbaud, Christel
author_sort Gholizadeh, Elnaz
collection PubMed
description Racemic α,α,β-trisubstituted β-lactones are the monomer units of poly((R,S)-3,3-dimethylmalic acid) (PDMMLA) derivatives, new biopolyesters showing great potential for biomedical applications. Using different groups during the synthesis of these β-lactones allows a tailored synthesis of PDMMLA copolymers with adjustable hydrophilic/phobic ratio. The degradation kinetics of the employed material is one of the most important criteria in the development of bioresorbable implants. The degradation time of PDMMLA derivatives can be controlled using different β-lactones of different hydrophilicity levels during the polymerization stage. Furthermore, PDMMLA has chemically available groups on its side chain allowing to graft functional groups on the polymer via covalent bonds. In this work, following a Steglich esterification protocol, the chemical grafting of cholesterol was carried out on a PDMMLA monomer derived β-lactone as well as on homopolymer PDMMLA–H, and copolymer PDMMLAH(40)-co-Hex(60) (PDMMLA 40/60). Nuclear magnetic resonance (NMR) analyses of the products confirm and quantify the grafting ratio. 100% of cholesterol grafting has been realized on the homopolymer PDMMLA–H giving PDMMLA–Chol, and 10% on the copolymer PDMMLA 40/60, giving PDMMLAH(30)-ter-Chol(10)-ter-Hex(60) (PDMMLA–Chol 30/10/60) as wished. Fourier-transform infrared (FT-IR) spectra, elemental analysis on the β-lactones and thermogravimetric analyses on the polymers also confirm the chemical modification of the products.
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spelling pubmed-90566152022-05-04 Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications Gholizadeh, Elnaz Belibel, Rima Bachelart, Thomas Bounadji, Chérifa Barbaud, Christel RSC Adv Chemistry Racemic α,α,β-trisubstituted β-lactones are the monomer units of poly((R,S)-3,3-dimethylmalic acid) (PDMMLA) derivatives, new biopolyesters showing great potential for biomedical applications. Using different groups during the synthesis of these β-lactones allows a tailored synthesis of PDMMLA copolymers with adjustable hydrophilic/phobic ratio. The degradation kinetics of the employed material is one of the most important criteria in the development of bioresorbable implants. The degradation time of PDMMLA derivatives can be controlled using different β-lactones of different hydrophilicity levels during the polymerization stage. Furthermore, PDMMLA has chemically available groups on its side chain allowing to graft functional groups on the polymer via covalent bonds. In this work, following a Steglich esterification protocol, the chemical grafting of cholesterol was carried out on a PDMMLA monomer derived β-lactone as well as on homopolymer PDMMLA–H, and copolymer PDMMLAH(40)-co-Hex(60) (PDMMLA 40/60). Nuclear magnetic resonance (NMR) analyses of the products confirm and quantify the grafting ratio. 100% of cholesterol grafting has been realized on the homopolymer PDMMLA–H giving PDMMLA–Chol, and 10% on the copolymer PDMMLA 40/60, giving PDMMLAH(30)-ter-Chol(10)-ter-Hex(60) (PDMMLA–Chol 30/10/60) as wished. Fourier-transform infrared (FT-IR) spectra, elemental analysis on the β-lactones and thermogravimetric analyses on the polymers also confirm the chemical modification of the products. The Royal Society of Chemistry 2020-09-02 /pmc/articles/PMC9056615/ /pubmed/35516467 http://dx.doi.org/10.1039/d0ra06033j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gholizadeh, Elnaz
Belibel, Rima
Bachelart, Thomas
Bounadji, Chérifa
Barbaud, Christel
Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications
title Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications
title_full Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications
title_fullStr Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications
title_full_unstemmed Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications
title_short Chemical grafting of cholesterol on monomer and PDMMLA polymers, a step towards the development of new polymers for biomedical applications
title_sort chemical grafting of cholesterol on monomer and pdmmla polymers, a step towards the development of new polymers for biomedical applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056615/
https://www.ncbi.nlm.nih.gov/pubmed/35516467
http://dx.doi.org/10.1039/d0ra06033j
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