Cargando…

Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s

Non-substituted racemic poly(DL-lactic acid) (PLA) and substituted racemic poly(DL-lactic acid)s or poly(DL-2-hydroxyalkanoic acid)s with different side-chain lengths, i.e., poly(DL-2-hydroxybutanoic acid) (PBA), poly(DL-2-hydroxyhexanoic acid) (PHA), and poly(DL-2-hydroxydecanoic acid) (PDA) were s...

Descripción completa

Detalles Bibliográficos
Autores principales: Tsuji, Hideto, Eto, Takehiko, Sakamoto, Yuzuru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5448671/
https://www.ncbi.nlm.nih.gov/pubmed/28824149
http://dx.doi.org/10.3390/ma4081384
_version_ 1783239599644999680
author Tsuji, Hideto
Eto, Takehiko
Sakamoto, Yuzuru
author_facet Tsuji, Hideto
Eto, Takehiko
Sakamoto, Yuzuru
author_sort Tsuji, Hideto
collection PubMed
description Non-substituted racemic poly(DL-lactic acid) (PLA) and substituted racemic poly(DL-lactic acid)s or poly(DL-2-hydroxyalkanoic acid)s with different side-chain lengths, i.e., poly(DL-2-hydroxybutanoic acid) (PBA), poly(DL-2-hydroxyhexanoic acid) (PHA), and poly(DL-2-hydroxydecanoic acid) (PDA) were synthesized by acid-catalyzed polycondensation of DL-lactic acid (LA), DL-2-hydroxybutanoic acid (BA), DL-2-hydroxyhexanoic acid (HA), and DL-2-hydroxydecanoic acid (DA), respectively. The hydrolytic degradation behavior was investigated in phosphate-buffered solution at 80 and 37 °C by gravimetry and gel permeation chromatography. It was found that the reactivity of monomers during polycondensation as monitored by the degree of polymerization (DP) decreased in the following order: LA > DA > BA > HA. The hydrolytic degradation rate traced by DP and weight loss at 80 °C decreased in the following order: PLA > PDA > PHA > PBA and that monitored by DP at 37 °C decreased in the following order: PLA > PDA > PBA > PHA. LA and PLA had the highest reactivity during polymerization and hydrolytic degradation rate, respectively, and were followed by DA and PDA. BA, HA, PBA, and PHA had the lowest reactivity during polymerization and hydrolytic degradation rate. The findings of the present study strongly suggest that inter-chain interactions play a major role in the reactivity of non-substituted and substituted LA monomers and degradation rate of the non-substituted and substituted PLA, along with steric hindrance of the side chains as can be expected.
format Online
Article
Text
id pubmed-5448671
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-54486712017-07-28 Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s Tsuji, Hideto Eto, Takehiko Sakamoto, Yuzuru Materials (Basel) Article Non-substituted racemic poly(DL-lactic acid) (PLA) and substituted racemic poly(DL-lactic acid)s or poly(DL-2-hydroxyalkanoic acid)s with different side-chain lengths, i.e., poly(DL-2-hydroxybutanoic acid) (PBA), poly(DL-2-hydroxyhexanoic acid) (PHA), and poly(DL-2-hydroxydecanoic acid) (PDA) were synthesized by acid-catalyzed polycondensation of DL-lactic acid (LA), DL-2-hydroxybutanoic acid (BA), DL-2-hydroxyhexanoic acid (HA), and DL-2-hydroxydecanoic acid (DA), respectively. The hydrolytic degradation behavior was investigated in phosphate-buffered solution at 80 and 37 °C by gravimetry and gel permeation chromatography. It was found that the reactivity of monomers during polycondensation as monitored by the degree of polymerization (DP) decreased in the following order: LA > DA > BA > HA. The hydrolytic degradation rate traced by DP and weight loss at 80 °C decreased in the following order: PLA > PDA > PHA > PBA and that monitored by DP at 37 °C decreased in the following order: PLA > PDA > PBA > PHA. LA and PLA had the highest reactivity during polymerization and hydrolytic degradation rate, respectively, and were followed by DA and PDA. BA, HA, PBA, and PHA had the lowest reactivity during polymerization and hydrolytic degradation rate. The findings of the present study strongly suggest that inter-chain interactions play a major role in the reactivity of non-substituted and substituted LA monomers and degradation rate of the non-substituted and substituted PLA, along with steric hindrance of the side chains as can be expected. MDPI 2011-08-10 /pmc/articles/PMC5448671/ /pubmed/28824149 http://dx.doi.org/10.3390/ma4081384 Text en © 2011 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Tsuji, Hideto
Eto, Takehiko
Sakamoto, Yuzuru
Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s
title Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s
title_full Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s
title_fullStr Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s
title_full_unstemmed Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s
title_short Synthesis and Hydrolytic Degradation of Substituted Poly(DL-Lactic Acid)s
title_sort synthesis and hydrolytic degradation of substituted poly(dl-lactic acid)s
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5448671/
https://www.ncbi.nlm.nih.gov/pubmed/28824149
http://dx.doi.org/10.3390/ma4081384
work_keys_str_mv AT tsujihideto synthesisandhydrolyticdegradationofsubstitutedpolydllacticacids
AT etotakehiko synthesisandhydrolyticdegradationofsubstitutedpolydllacticacids
AT sakamotoyuzuru synthesisandhydrolyticdegradationofsubstitutedpolydllacticacids