Skip navigation
  •  Inicio
  • UDC 
    • Cómo depositar
    • Políticas del RUC
    • FAQ
    • Derechos de autor
    • Más información en INFOguías UDC
  • Listar 
    • Comunidades
    • Buscar por:
    • Fecha de publicación
    • Autor
    • Título
    • Materia
  • Ayuda
    • español
    • Gallegan
    • English
  • Acceder
  •  Español 
    • Español
    • Galego
    • English
  
Ver ítem 
  •   RUC
  • Facultade de Ciencias
  • Investigación (FCIE)
  • Ver ítem
  •   RUC
  • Facultade de Ciencias
  • Investigación (FCIE)
  • Ver ítem
JavaScript is disabled for your browser. Some features of this site may not work without it.

Improved Chondrogenic Differentiation of rAAV SOX9-Modified Human MSCs Seeded in Fibrin-Polyurethane Scaffolds in a Hydrodynamic Environment

Thumbnail
Ver/Abrir
Ana_Rey_Rico_2018_Improved_chondrogenic_differentiation_of_rAAV_sox9-modified_human.pdf (7.837Mb)
Use este enlace para citar
http://hdl.handle.net/2183/37902
Creative Commons Attribution(CC BY) license 4.0
Excepto si se señala otra cosa, la licencia del ítem se describe como Creative Commons Attribution(CC BY) license 4.0
Colecciones
  • Investigación (FCIE) [1228]
Metadatos
Mostrar el registro completo del ítem
Título
Improved Chondrogenic Differentiation of rAAV SOX9-Modified Human MSCs Seeded in Fibrin-Polyurethane Scaffolds in a Hydrodynamic Environment
Autor(es)
Venkatesan, Jagadeesh Kumar
Rey-Rico, Ana
Cucchiarini, Magali
Madry, Henning
Gardner, Oliver
Eglin, David
Alini, Mauro
Stoddart, Martin J.
Fecha
2018
Cita bibliográfica
Venkatesan, J.K.; Gardner, O.; Rey-Rico, A.; Eglin, D.; Alini, M.; Stoddart, M.J.; Cucchiarini, M.; Madry, H. Improved Chondrogenic Differentiation of rAAV SOX9-Modified Human MSCs Seeded in Fibrin-Polyurethane Scaffolds in a Hydrodynamic Environment. Int. J. Mol. Sci. 2018, 19, 2635. https://doi.org/10.3390/ijms19092635
Resumen
[Abstract] The repair of focal articular cartilage defects remains a problem. Combining gene therapy with tissue engineering approaches using bone marrow-derived mesenchymal stem cells (MSCs) may allow the development of improved options for cartilage repair. Here, we examined whether a three-dimensional fibrin-polyurethane scaffold provides a favorable environment for the effective chondrogenic differentiation of human MSCs (hMSCs) overexpressing the cartilage-specific SOX9 transcription factor via recombinant adeno-associated virus (rAAV) -mediated gene transfer cultured in a hydrodynamic environment in vitro. Sustained SOX9 expression was noted in the constructs for at least 21 days, the longest time point evaluated. Such spatially defined SOX9 overexpression enhanced proliferative, metabolic, and chondrogenic activities compared with control (reporter lacZ gene transfer) treatment. Of further note, administration of the SOX9 vector was also capable of delaying premature hypertrophic and osteogenic differentiation in the constructs. This enhancement of chondrogenesis by spatially defined overexpression of human SOX9 demonstrate the potential benefits of using rAAV-modified hMSCs seeded in fibrin-polyurethane scaffolds as a promising approach for implantation in focal cartilage lesions to improve cartilage repair.
Palabras clave
Cartilage repair
HMSCs
Chondrogenesis
RAAV
SOX9
Fibrin-polyurethane scaffolds
Bioreactors
 
Versión del editor
https://doi.org/10.3390/ijms19092635
Derechos
Creative Commons Attribution(CC BY) license 4.0

Listar

Todo RUCComunidades & ColeccionesPor fecha de publicaciónAutoresTítulosMateriasGrupo de InvestigaciónTitulaciónEsta colecciónPor fecha de publicaciónAutoresTítulosMateriasGrupo de InvestigaciónTitulación

Mi cuenta

AccederRegistro

Estadísticas

Ver Estadísticas de uso
Sherpa
OpenArchives
OAIster
Scholar Google
UNIVERSIDADE DA CORUÑA. Servizo de Biblioteca.    DSpace Software Copyright © 2002-2013 Duraspace - Sugerencias