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Carboué Q, Fadlallah S, Werghi Y, Longé L, Gallos A, Allais F, Lopez M. Impact of Bis-O-dihydroferuloyl-1,4-butanediol Content on the Chemical, Enzymatic and Fungal Degradation Processes of Poly(3-hydroxybutyrate). Polymers (Basel) 2022; 14:polym14081564. [PMID: 35458314 PMCID: PMC9031392 DOI: 10.3390/polym14081564] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/16/2022] [Revised: 04/04/2022] [Accepted: 04/07/2022] [Indexed: 02/05/2023] Open
Abstract
Poly-β-hydroxybutyrate (PHB) is a very common bio-based and biocompatible polymer obtained from the fermentation of soil bacteria. Due to its important crystallinity, PHB is extremely brittle in nature, which results in poor mechanical properties with low extension at the break. To overcome these issues, the crystallinity of PHB can be reduced by blending with plasticizers such as ferulic acid derivatives, e.g., bis-O-dihydroferuloyl-1,4-butanediol (BDF). The degradation potential of polymer blends of PHB containing various percentages (0, 5, 10, 20, and 40 w%) of BDF was investigated through chemical, enzymatic and fungal pathways. Chemical degradation revealed that, in 0.25 M NaOH solution, the presence of BDF in the blend was necessary to carry out the degradation, which increased as the BDF percentage increased. Whereas no enzymatic degradation could be achieved in the tested conditions. Fungal degradation was achieved with a strain isolated from the soil and monitored through imagery processing. Similar to the chemical degradation, higher BDF content resulted in higher degradation by the fungus.
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Pérez‐Álvarez L, Lizundia E, Ruiz‐Rubio L, Benito V, Moreno I, Vilas‐Vilela JL. Hydrolysis of poly(
l
‐lactide)/ZnO nanocomposites with antimicrobial activity. J Appl Polym Sci 2019. [DOI: 10.1002/app.47786] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/08/2022]
Affiliation(s)
- Leyre Pérez‐Álvarez
- Grupo de Química Macromolecular (LABQUIMAC), Departamento de Química Física, Facultad de Ciencia y TecnologíaUniversidad del País Vasco UPV/EHU 48940, Leioa Spain
- BCMaterials, Basque Center for Materials, Applications and NanostructuresUPV/EHU Science Park 48940, Leioa Spain
| | - Erlantz Lizundia
- BCMaterials, Basque Center for Materials, Applications and NanostructuresUPV/EHU Science Park 48940, Leioa Spain
- Department of Graphic Design and Engineering Projects, Bilbao Faculty of EngineeringUniversity of the Basque Country (UPV/EHU) Leioa Bizkaia Spain
| | - Leire Ruiz‐Rubio
- Grupo de Química Macromolecular (LABQUIMAC), Departamento de Química Física, Facultad de Ciencia y TecnologíaUniversidad del País Vasco UPV/EHU 48940, Leioa Spain
- BCMaterials, Basque Center for Materials, Applications and NanostructuresUPV/EHU Science Park 48940, Leioa Spain
| | - Vanessa Benito
- GAIKER Technology Centre Parque Tecnológico, Ed. 202., 48170, Zamudio Bizkaia Spain
| | - Isabel Moreno
- Grupo de Química Macromolecular (LABQUIMAC), Departamento de Química Orgánica II, Facultad de Ciencia y TecnologíaUniversidad del País Vasco UPV/EHU 48940, Leioa Spain
| | - José Luis Vilas‐Vilela
- Grupo de Química Macromolecular (LABQUIMAC), Departamento de Química Física, Facultad de Ciencia y TecnologíaUniversidad del País Vasco UPV/EHU 48940, Leioa Spain
- BCMaterials, Basque Center for Materials, Applications and NanostructuresUPV/EHU Science Park 48940, Leioa Spain
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Guo T, Ringel JP, Lim CG, Bracaglia LG, Noshin M, Baker HB, Powell DA, Fisher JP. Three dimensional extrusion printing induces polymer molecule alignment and cell organization within engineered cartilage. J Biomed Mater Res A 2018; 106:2190-2199. [PMID: 29659132 DOI: 10.1002/jbm.a.36426] [Citation(s) in RCA: 21] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/23/2017] [Revised: 03/15/2018] [Accepted: 03/29/2018] [Indexed: 12/19/2022]
Abstract
Proper cell-material interactions are critical to remain cell function and thus successful tissue regeneration. Many fabrication processes have been developed to create microenvironments to control cell attachment and organization on a three-dimensional (3D) scaffold. However, these approaches often involve heavy engineering and only the surface layer can be patterned. We found that 3D extrusion based printing at high temperature and pressure will result an aligned effect on the polymer molecules, and this molecular arrangement will further induce the cell alignment and different differentiation capacities. In particular, articular cartilage tissue is known to have zonal collagen fiber and cell orientation to support different functions, where collagen fibers and chondrocytes align parallel, randomly, and perpendicular, respectively, to the surface of the joint. Therefore, cell alignment was evaluated in a cartilage model in this study. We used small angle X-ray scattering analysis to substantiate the polymer molecule alignment phenomenon. The cellular response was evaluated both in vitro and in vivo. Seeded mesenchymal stem cells (MSCs) showed different morphology and orientation on scaffolds, as a combined result of polymer molecule alignment and printed scaffold patterns. Gene expression results showed improved superficial zonal chondrogenic marker expression in parallel-aligned group. The cell alignment was successfully maintained in the animal model after 7 days with distinct MSC morphology between the casted and parallel printed scaffolds. This 3D printing induced polymer and cell alignment will have a significant impact on developing scaffold with controlled cell-material interactions for complex tissue engineering while avoiding complicated surface treatment, and therefore provides new concept for effective tissue repairing in future clinical applications. © 2018 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 2190-2199, 2018.
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Affiliation(s)
- Ting Guo
- Fischell Department of Bioengineering, University of Maryland, College Park, Maryland, 20742.,Center for Engineering Complex Tissues, University of Maryland, College Park, Maryland, 20742
| | - Julia P Ringel
- Fischell Department of Bioengineering, University of Maryland, College Park, Maryland, 20742.,Center for Engineering Complex Tissues, University of Maryland, College Park, Maryland, 20742
| | - Casey G Lim
- Fischell Department of Bioengineering, University of Maryland, College Park, Maryland, 20742.,Center for Engineering Complex Tissues, University of Maryland, College Park, Maryland, 20742
| | - Laura G Bracaglia
- Fischell Department of Bioengineering, University of Maryland, College Park, Maryland, 20742.,Center for Engineering Complex Tissues, University of Maryland, College Park, Maryland, 20742
| | - Maeesha Noshin
- Fischell Department of Bioengineering, University of Maryland, College Park, Maryland, 20742.,Center for Engineering Complex Tissues, University of Maryland, College Park, Maryland, 20742
| | - Hannah B Baker
- Fischell Department of Bioengineering, University of Maryland, College Park, Maryland, 20742.,Center for Engineering Complex Tissues, University of Maryland, College Park, Maryland, 20742
| | - Douglas A Powell
- Department of Laboratory Animal Resources, Division of Research, University of Maryland, College Park, Maryland, 20742
| | - John P Fisher
- Fischell Department of Bioengineering, University of Maryland, College Park, Maryland, 20742.,Center for Engineering Complex Tissues, University of Maryland, College Park, Maryland, 20742
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