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1.
Proc Inst Mech Eng H ; 238(3): 348-357, 2024 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-38279687

RESUMEN

This study focuses on novel design and evaluation of Elastic 50A (EL50) mechanical metamaterials with open-cell patterns for its potential application to lower limb residuum/socket interfaces, specifically that of a transtibial (TT) amputee. Mechanical characteristics, that is, effective Young's modulus (E), was tuned by altering metamaterial porosity, which was experimentally verified. Specifically, pore radius of the unit cell was varied to achieve a range of E-values (0.05-1.71 MPa) for these 3D printed metamaterials. Finite Element Analysis (FEA) was conducted to evaluate pressure distribution across key load-bearing anatomical sites of a TT residuum. Using designed metamaterials for homogeneous liners, pressure profiles were studied and compared with a silicone liner case. Additionally, a custom metamaterial liner was designed by assigning appropriate metamaterials to four load-sensitive and tolerant anatomical sites of the TT residuum. The results suggest that lowest pressure variation (PV), as a measure of pressure distribution levels and potential comfort for amputees, was achieved by the custom metamaterial liner compared to any of the homogeneous liners included in this study. It is envisaged that this work may aid future design and development of custom liners using now commonly available 3D printing technologies and available elastomer materials to maximise comfort, tissue safety and overall rehabilitation outcomes for lower limb amputees.


Asunto(s)
Amputados , Miembros Artificiales , Humanos , Amputados/rehabilitación , Diseño de Prótesis , Resultado del Tratamiento , Siliconas
2.
Biomater Sci ; 10(11): 2734-2758, 2022 May 31.
Artículo en Inglés | MEDLINE | ID: mdl-35438692

RESUMEN

The layer-by-layer (LbL) assembly technique has shown excellent potential in tissue engineering applications. The technique is mainly based on electrostatic attraction and involves the sequential adsorption of oppositely charged electrolyte complexes onto a substrate, resulting in uniform single layers that can be rapidly deposited to form nanolayer films. LbL has attracted significant attention as a coating technique due to it being a convenient and affordable fabrication method capable of achieving a wide range of biomaterial coatings while keeping the main biofunctionality of the substrate materials. One promising application is the use of nanolayer films fabricated by LbL assembly in the development of 3-dimensional (3D) bone scaffolds for bone repair and regeneration. Due to their versatility, nanoscale films offer an exciting opportunity for tailoring surface and bulk property modification of implants for osseous defect therapies. This review article discusses the state of the art of the LbL assembly technique, and the properties and functions of LbL-assembled films for engineered bone scaffold application, combination of multilayers for multifunctional coatings and recent advancements in the application of LbL assembly in bone tissue engineering. The recent decade has seen tremendous advances in the promising developments of LbL film systems and their impact on cell interaction and tissue repair. A deep understanding of the cell behaviour and biomaterial interaction for the further development of new generations of LbL films for tissue engineering are the most important targets for biomaterial research in the field. While there is still much to learn about the biological and physicochemical interactions at the interface of nano-surface coated scaffolds and biological systems, we provide a conceptual review to further progress in the LbL approach to 3D bone scaffold materials and inform the future of LbL development in bone tissue engineering.


Asunto(s)
Materiales Biocompatibles , Ingeniería de Tejidos , Adsorción , Huesos , Ingeniería de Tejidos/métodos
3.
Biomed Mater ; 14(6): 065008, 2019 09 20.
Artículo en Inglés | MEDLINE | ID: mdl-31539364

RESUMEN

Using the layer-by-layer (LbL) assembly technique to deposit mechanically reinforcing coatings onto porous templates is a route for fabricating engineered bone scaffold materials with a combination of high porosity, strength, and stiffness. LbL assembly involves the sequential deposition of nano- to micro-scale multilayer coatings from aqueous solutions. Here, a design of experiments (DOE) approach was used to evaluate LbL assembly of polyethyleneimine (PEI), polyacrylic acid (PAA), and nanoclay coatings onto open-cell polyurethane foam templates. The thickness of the coatings, and the porosity, elastic modulus and collapse stress of coated foam templates were most strongly affected by the pH of PAA solutions, salt concentration, and interactions between these factors. The mechanical properties of coated foams correlated with the thickness of the coatings, but were also ascribed to changes in the coating properties due to the different assembly conditions. A DOE optimization aimed to balance the trade-off between higher mechanical properties but lower porosity of foam templates with increasing coating thickness. Micromechanical modeling predicted that deposition of 116 QLs would achieve mechanical properties of cancellous bone (>0.05 GPa stiffness and >2 MPa strength) at a suitable porosity of >70%. When capped with a final layer of PAA and cross-linked via thermal treatment, the PEI/PAA/PEI/nanoclay coatings exhibited good indirect cytotoxicity with mesenchymal stem cells. The ability of LbL assembly to deposit a wide range of functional constituents within multilayer-structured coatings makes the general strategy of templated LbL assembly a powerful route for fabricating engineered tissue scaffolds that can be applied onto various porous template materials to achieve a wide range of properties, pore structures, and multifunctionality.


Asunto(s)
Huesos/fisiología , Nanocompuestos/química , Ingeniería de Tejidos/métodos , Resinas Acrílicas/química , Animales , Antibacterianos/química , Materiales Biomiméticos/química , Células de la Médula Ósea/citología , Materiales Biocompatibles Revestidos/química , Fuerza Compresiva , Reactivos de Enlaces Cruzados/química , Elasticidad , Concentración de Iones de Hidrógeno , Ensayo de Materiales , Células Madre Mesenquimatosas/citología , Polietileneimina/química , Porosidad , Estrés Mecánico , Porcinos , Andamios del Tejido/química , Titanio/química , Microtomografía por Rayos X
4.
ACS Appl Mater Interfaces ; 11(30): 27269-27278, 2019 Jul 31.
Artículo en Inglés | MEDLINE | ID: mdl-31260238

RESUMEN

Through a nature-inspired layer-by-layer assembly process, we developed a unique multifunctional tissue scaffold that consists of porous polyurethane substrate and nanoscale chitosan/graphene oxide hybrid coating. Alternative layers of drug-laden chitosan and graphene oxide nanosheets were held together through strong electrostatic interaction, giving rise to a robust multilayer architecture with control over structural element orientation and chemical composition at nanoscale. Combined pH-controlled co-delivery of multiple therapeutic agents and photothermal therapy has been achieved by our scaffold system. The new platform technology can be generalized to produce other tissue scaffold systems and may enable potential multimodal therapeutic applications such as bone cancer managements.


Asunto(s)
Neoplasias Óseas/tratamiento farmacológico , Quitosano/química , Materiales Biocompatibles Revestidos/química , Ingeniería de Tejidos , Materiales Biocompatibles Revestidos/síntesis química , Materiales Biocompatibles Revestidos/uso terapéutico , Liberación de Fármacos/efectos de los fármacos , Durapatita/química , Grafito/química , Humanos , Concentración de Iones de Hidrógeno , Fototerapia , Porosidad , Andamios del Tejido/química
5.
ACS Appl Mater Interfaces ; 8(34): 21968-73, 2016 Aug 31.
Artículo en Inglés | MEDLINE | ID: mdl-27513218

RESUMEN

The deposition of stiff and strong coatings onto porous templates offers a novel strategy for fabricating macroscale materials with controlled architectures at the micro- and nanoscale. Here, layer-by-layer assembly is utilized to fabricate nanocomposite-coated foams with highly customizable properties by depositing polymer-nanoclay coatings onto open-cell foam templates. The compressive mechanical behavior of these materials evolves in a predictable manner that is qualitatively captured by scaling laws for the mechanical properties of cellular materials. The observed and predicted properties span a remarkable range of density-stiffness space, extending from regions of very soft elastomer foams to very stiff, lightweight honeycomb and lattice materials.

6.
Soft Matter ; 10(4): 544-8, 2014 Jan 28.
Artículo en Inglés | MEDLINE | ID: mdl-24652338

RESUMEN

We demonstrate a method for tailoring local mechanical properties near channel surfaces of vascular structural polymers in order to achieve high structural performance in microvascular systems. While synthetic vascularized materials have been created by a variety of manufacturing techniques, unreinforced microchannels act as stress concentrators and lead to the initiation of premature failure. Taking inspiration from biological tissues such as dentin and bone, these mechanical deficiencies can be mitigated by complex hierarchical structural features near to channel surfaces. By employing electrostatic layer-by-layer assembly (ELbL) to deposit films containing halloysite nanotubes onto scaffold surfaces followed by matrix infiltration and scaffold removal, we are able to controllably deposit nanoscale reinforcement onto 200 micron diameter channel surface interiors in microvascular networks. High resolution strain measurements on reinforced networks under load verify that the halloysite reduces strain concentrations and improves mechanical performance.


Asunto(s)
Silicatos de Aluminio/química , Nanotubos/química , Andamios del Tejido/química , Arcilla , Módulo de Elasticidad , Nanotubos/ultraestructura , Electricidad Estática
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