Balancing porosity and mechanical properties of titanium samples to favor cellular growth against bacteria

Two main problems limit the success of titanium implants: bacterial infection, which restricts their osseointegration capacity; and the stiffness mismatch between the implant and the host cortical bone, which promotes bone resorption and risk of fracture. Porosity incorporation may reduce this diffe...

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Detalles Bibliográficos
Autores: Ana Civantos Fernandez, Ana M Beltran, Cristina Domínguez Trujillo, Maria D. Garvi, Julian Lebrato, José A. Rodríguez-Ortiz, Francisco García-Moreno, JUAN VALERIO CAUICH RODRIGUEZ, Julio J. Guzman, Yadir Torres
Tipo de recurso: artículo
Estado:Versión publicada
Fecha de publicación:2019
País:México
Institución:Centro de Investigación Científica de Yucatán
Repositorio:Repositorio Institucional CICY
Idioma:inglés
OAI Identifier:oai:cicy.repositorioinstitucional.mx:1003/1691
Acceso en línea:http://cicy.repositorioinstitucional.mx/jspui/handle/1003/1691
Access Level:acceso abierto
Palabra clave:info:eu-repo/classification/Autores/BONE IMPLANT
info:eu-repo/classification/Autores/POROUS TITANIUM
info:eu-repo/classification/Autores/CELLULAR ADHESION
info:eu-repo/classification/Autores/BACTERIA COLONIZATION
info:eu-repo/classification/Autores/OSSEOINTEGRATION
info:eu-repo/classification/cti/7
info:eu-repo/classification/cti/33
info:eu-repo/classification/cti/3312
info:eu-repo/classification/cti/331208
Descripción
Sumario:Two main problems limit the success of titanium implants: bacterial infection, which restricts their osseointegration capacity; and the stiffness mismatch between the implant and the host cortical bone, which promotes bone resorption and risk of fracture. Porosity incorporation may reduce this difference in stiffness but compromise biomechanical behavior. In this work, the relationship between the microstructure (content, size, and shape of pores) and the antibacterial and cellular behavior of samples fabricated by the space-holder technique (50 vol % NH4HCO3 and three ranges of particle sizes) is established. Results are discussed in terms of the best biomechanical properties and biofunctional activity balance (cell biocompatibility and antibacterial behavior). All substrates achieved suitable cell biocompatibility of premioblast and osteoblast in adhesion and proliferation processes. It is worth to highlighting that samples fabricated with the 100–200 μm space-holder present better mechanical behavior—in terms of stiffness, microhardness, and yield strength—which make them a very suitable material to replace cortical bone tissues. Those results exposed the relationship between the surface properties and the race of bacteria and mammalian cells for the surface with the aim to promote cellular growth over bacteria.