Poly(lactic acid) and Nanocrystalline Cellulose Methacrylated Particles for Preparation of Cryogelated and 3D-Printed Scaffolds for Tissue Engineering

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Mariia Leonovich
  • Viktor Korzhikov-Vlakh
  • Antonina Lavrentieva
  • Iliyana Pepelanova
  • Evgenia Korzhikova-Vlakh
  • Tatiana Tennikova

Organisationseinheiten

Externe Organisationen

  • Staatliche Universität Sankt Petersburg
  • Russian Academy of Sciences (RAS)
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Details

OriginalspracheEnglisch
Aufsatznummer651
FachzeitschriftPolymers
Jahrgang15
Ausgabenummer3
PublikationsstatusVeröffentlicht - 27 Jan. 2023

Abstract

Different parts of bones possess different properties, such as the capacity for remodeling cell content, porosity, and protein composition. For various traumatic or surgical tissue defects, the application of tissue-engineered constructs seems to be a promising strategy. Despite significant research efforts, such constructs are still rarely available in the clinic. One of the reasons is the lack of resorbable materials, whose properties can be adjusted according to the intended tissue or tissue contacts. Here, we present our first results on the development of a toolbox, by which the scaffolds with easily tunable mechanical and biological properties could be prepared. Biodegradable poly(lactic acid) and nanocrystalline cellulose methacrylated particles were obtained, characterized, and used for preparation of three-dimensional scaffolds via cryogelation and 3D printing approaches. The composition of particles-based ink for 3D printing was optimized in order to allow formation of stable materials. Both the modified-particle cytotoxicity and the matrix-supported cell adhesion were evaluated and visualized in order to confirm the perspectives of materials application.

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Poly(lactic acid) and Nanocrystalline Cellulose Methacrylated Particles for Preparation of Cryogelated and 3D-Printed Scaffolds for Tissue Engineering. / Leonovich, Mariia; Korzhikov-Vlakh, Viktor; Lavrentieva, Antonina et al.
in: Polymers, Jahrgang 15, Nr. 3 , 651, 27.01.2023.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Leonovich M, Korzhikov-Vlakh V, Lavrentieva A, Pepelanova I, Korzhikova-Vlakh E, Tennikova T. Poly(lactic acid) and Nanocrystalline Cellulose Methacrylated Particles for Preparation of Cryogelated and 3D-Printed Scaffolds for Tissue Engineering. Polymers. 2023 Jan 27;15(3 ):651. doi: 10.3390/polym15030651
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abstract = "Different parts of bones possess different properties, such as the capacity for remodeling cell content, porosity, and protein composition. For various traumatic or surgical tissue defects, the application of tissue-engineered constructs seems to be a promising strategy. Despite significant research efforts, such constructs are still rarely available in the clinic. One of the reasons is the lack of resorbable materials, whose properties can be adjusted according to the intended tissue or tissue contacts. Here, we present our first results on the development of a toolbox, by which the scaffolds with easily tunable mechanical and biological properties could be prepared. Biodegradable poly(lactic acid) and nanocrystalline cellulose methacrylated particles were obtained, characterized, and used for preparation of three-dimensional scaffolds via cryogelation and 3D printing approaches. The composition of particles-based ink for 3D printing was optimized in order to allow formation of stable materials. Both the modified-particle cytotoxicity and the matrix-supported cell adhesion were evaluated and visualized in order to confirm the perspectives of materials application.",
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TY - JOUR

T1 - Poly(lactic acid) and Nanocrystalline Cellulose Methacrylated Particles for Preparation of Cryogelated and 3D-Printed Scaffolds for Tissue Engineering

AU - Leonovich, Mariia

AU - Korzhikov-Vlakh, Viktor

AU - Lavrentieva, Antonina

AU - Pepelanova, Iliyana

AU - Korzhikova-Vlakh, Evgenia

AU - Tennikova, Tatiana

N1 - Funding Information: This research was funded by Megagrant of the Ministry of Science and Higher Education of the Russian Federation (#075-15-2021-637).

PY - 2023/1/27

Y1 - 2023/1/27

N2 - Different parts of bones possess different properties, such as the capacity for remodeling cell content, porosity, and protein composition. For various traumatic or surgical tissue defects, the application of tissue-engineered constructs seems to be a promising strategy. Despite significant research efforts, such constructs are still rarely available in the clinic. One of the reasons is the lack of resorbable materials, whose properties can be adjusted according to the intended tissue or tissue contacts. Here, we present our first results on the development of a toolbox, by which the scaffolds with easily tunable mechanical and biological properties could be prepared. Biodegradable poly(lactic acid) and nanocrystalline cellulose methacrylated particles were obtained, characterized, and used for preparation of three-dimensional scaffolds via cryogelation and 3D printing approaches. The composition of particles-based ink for 3D printing was optimized in order to allow formation of stable materials. Both the modified-particle cytotoxicity and the matrix-supported cell adhesion were evaluated and visualized in order to confirm the perspectives of materials application.

AB - Different parts of bones possess different properties, such as the capacity for remodeling cell content, porosity, and protein composition. For various traumatic or surgical tissue defects, the application of tissue-engineered constructs seems to be a promising strategy. Despite significant research efforts, such constructs are still rarely available in the clinic. One of the reasons is the lack of resorbable materials, whose properties can be adjusted according to the intended tissue or tissue contacts. Here, we present our first results on the development of a toolbox, by which the scaffolds with easily tunable mechanical and biological properties could be prepared. Biodegradable poly(lactic acid) and nanocrystalline cellulose methacrylated particles were obtained, characterized, and used for preparation of three-dimensional scaffolds via cryogelation and 3D printing approaches. The composition of particles-based ink for 3D printing was optimized in order to allow formation of stable materials. Both the modified-particle cytotoxicity and the matrix-supported cell adhesion were evaluated and visualized in order to confirm the perspectives of materials application.

KW - 3D printing

KW - methacrylation

KW - nanocrystalline cellulose

KW - particles

KW - poly(lactic acid)

KW - scaffolds

KW - tissue engineering

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