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Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering

This article reports the electrospinning technique for the manufacturing of multilayered scaffolds for bile duct tissue engineering based on an inner layer of polycaprolactone (PCL) and an outer layer either of a copolymer of D,L-lactide and glycolide (PLGA) or a copolymer of L-lactide and ε-caprola...

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Autores principales: Klabukov, Ilya, Tenchurin, Timur, Shepelev, Alexey, Baranovskii, Denis, Mamagulashvili, Vissarion, Dyuzheva, Tatiana, Krasilnikova, Olga, Balyasin, Maksim, Lyundup, Alexey, Krasheninnikov, Mikhail, Sulina, Yana, Gomzyak, Vitaly, Krasheninnikov, Sergey, Buzin, Alexander, Zayratyants, Georgiy, Yakimova, Anna, Demchenko, Anna, Ivanov, Sergey, Shegay, Peter, Kaprin, Andrey, Chvalun, Sergei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10044742/
https://www.ncbi.nlm.nih.gov/pubmed/36979723
http://dx.doi.org/10.3390/biomedicines11030745
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author Klabukov, Ilya
Tenchurin, Timur
Shepelev, Alexey
Baranovskii, Denis
Mamagulashvili, Vissarion
Dyuzheva, Tatiana
Krasilnikova, Olga
Balyasin, Maksim
Lyundup, Alexey
Krasheninnikov, Mikhail
Sulina, Yana
Gomzyak, Vitaly
Krasheninnikov, Sergey
Buzin, Alexander
Zayratyants, Georgiy
Yakimova, Anna
Demchenko, Anna
Ivanov, Sergey
Shegay, Peter
Kaprin, Andrey
Chvalun, Sergei
author_facet Klabukov, Ilya
Tenchurin, Timur
Shepelev, Alexey
Baranovskii, Denis
Mamagulashvili, Vissarion
Dyuzheva, Tatiana
Krasilnikova, Olga
Balyasin, Maksim
Lyundup, Alexey
Krasheninnikov, Mikhail
Sulina, Yana
Gomzyak, Vitaly
Krasheninnikov, Sergey
Buzin, Alexander
Zayratyants, Georgiy
Yakimova, Anna
Demchenko, Anna
Ivanov, Sergey
Shegay, Peter
Kaprin, Andrey
Chvalun, Sergei
author_sort Klabukov, Ilya
collection PubMed
description This article reports the electrospinning technique for the manufacturing of multilayered scaffolds for bile duct tissue engineering based on an inner layer of polycaprolactone (PCL) and an outer layer either of a copolymer of D,L-lactide and glycolide (PLGA) or a copolymer of L-lactide and ε-caprolactone (PLCL). A study of the degradation properties of separate polymers showed that flat PCL samples exhibited the highest resistance to hydrolysis in comparison with PLGA and PLCL. Irrespective of the liquid-phase nature, no significant mass loss of PCL samples was found in 140 days of incubation. The PLCL- and PLGA-based flat samples were more prone to hydrolysis within the same period of time, which was confirmed by the increased loss of mass and a significant reduction of weight-average molecular mass. The study of the mechanical properties of developed multi-layered tubular scaffolds revealed that their strength in the longitudinal and transverse directions was comparable with the values measured for a decellularized bile duct. The strength of three-layered scaffolds declined significantly because of the active degradation of the outer layer made of PLGA. The strength of scaffolds with the PLCL outer layer deteriorated much less with time, both in the axial (p-value = 0.0016) and radial (p-value = 0.0022) directions. A novel method for assessment of the physiological relevance of synthetic scaffolds was developed and named the phase space approach for assessment of physiological relevance. Two-dimensional phase space (elongation modulus and tensile strength) was used for the assessment and visualization of the physiological relevance of scaffolds for bile duct bioengineering. In conclusion, the design of scaffolds for the creation of physiologically relevant tissue-engineered bile ducts should be based not only on biodegradation properties but also on the biomechanical time-related behavior of various compositions of polymers and copolymers.
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spelling pubmed-100447422023-03-29 Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering Klabukov, Ilya Tenchurin, Timur Shepelev, Alexey Baranovskii, Denis Mamagulashvili, Vissarion Dyuzheva, Tatiana Krasilnikova, Olga Balyasin, Maksim Lyundup, Alexey Krasheninnikov, Mikhail Sulina, Yana Gomzyak, Vitaly Krasheninnikov, Sergey Buzin, Alexander Zayratyants, Georgiy Yakimova, Anna Demchenko, Anna Ivanov, Sergey Shegay, Peter Kaprin, Andrey Chvalun, Sergei Biomedicines Article This article reports the electrospinning technique for the manufacturing of multilayered scaffolds for bile duct tissue engineering based on an inner layer of polycaprolactone (PCL) and an outer layer either of a copolymer of D,L-lactide and glycolide (PLGA) or a copolymer of L-lactide and ε-caprolactone (PLCL). A study of the degradation properties of separate polymers showed that flat PCL samples exhibited the highest resistance to hydrolysis in comparison with PLGA and PLCL. Irrespective of the liquid-phase nature, no significant mass loss of PCL samples was found in 140 days of incubation. The PLCL- and PLGA-based flat samples were more prone to hydrolysis within the same period of time, which was confirmed by the increased loss of mass and a significant reduction of weight-average molecular mass. The study of the mechanical properties of developed multi-layered tubular scaffolds revealed that their strength in the longitudinal and transverse directions was comparable with the values measured for a decellularized bile duct. The strength of three-layered scaffolds declined significantly because of the active degradation of the outer layer made of PLGA. The strength of scaffolds with the PLCL outer layer deteriorated much less with time, both in the axial (p-value = 0.0016) and radial (p-value = 0.0022) directions. A novel method for assessment of the physiological relevance of synthetic scaffolds was developed and named the phase space approach for assessment of physiological relevance. Two-dimensional phase space (elongation modulus and tensile strength) was used for the assessment and visualization of the physiological relevance of scaffolds for bile duct bioengineering. In conclusion, the design of scaffolds for the creation of physiologically relevant tissue-engineered bile ducts should be based not only on biodegradation properties but also on the biomechanical time-related behavior of various compositions of polymers and copolymers. MDPI 2023-03-01 /pmc/articles/PMC10044742/ /pubmed/36979723 http://dx.doi.org/10.3390/biomedicines11030745 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Klabukov, Ilya
Tenchurin, Timur
Shepelev, Alexey
Baranovskii, Denis
Mamagulashvili, Vissarion
Dyuzheva, Tatiana
Krasilnikova, Olga
Balyasin, Maksim
Lyundup, Alexey
Krasheninnikov, Mikhail
Sulina, Yana
Gomzyak, Vitaly
Krasheninnikov, Sergey
Buzin, Alexander
Zayratyants, Georgiy
Yakimova, Anna
Demchenko, Anna
Ivanov, Sergey
Shegay, Peter
Kaprin, Andrey
Chvalun, Sergei
Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering
title Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering
title_full Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering
title_fullStr Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering
title_full_unstemmed Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering
title_short Biomechanical Behaviors and Degradation Properties of Multilayered Polymer Scaffolds: The Phase Space Method for Bile Duct Design and Bioengineering
title_sort biomechanical behaviors and degradation properties of multilayered polymer scaffolds: the phase space method for bile duct design and bioengineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10044742/
https://www.ncbi.nlm.nih.gov/pubmed/36979723
http://dx.doi.org/10.3390/biomedicines11030745
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