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1.
J Mater Sci Mater Med ; 24(3): 713-24, 2013 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-23183963

RESUMEN

A bio-corrodible nitrided iron stent was developed using a vacuum plasma nitriding technique. In the nitrided iron stents, the tensile strength, radial strength, stiffness and in vitro electrochemical corrosion rate were significantly increased compared with those of the control pure iron stent. To evaluate its performance in vivo, the deployment of the nitrided iron stents in juvenile pig iliac arteries was performed. At 3 or 6 months postoperatively, the stented vessels remained patent well; however, slight luminal loss resulting from intimal hyperplasia and relative stenosis of the stented vessel segment with piglets growth were observed by 12 months; no thrombosis or local tissue necrosis was found. At 1 month postoperatively, a nearly intact layer of endothelial cells formed on the stented vessel wall. Additionally, a decreased inflammation scoring, considerably corroded struts and corrosion products accumulation were seen. These findings indicate the potential of this nitrided iron stent as an attractive biodegradable stent.


Asunto(s)
Materiales Biocompatibles , Hierro/química , Stents , Angiografía , Animales , Técnicas Electroquímicas , Endotelio Vascular/crecimiento & desarrollo , Microscopía Electrónica de Rastreo , Porcinos , Resistencia a la Tracción
2.
Nat Commun ; 11(1): 401, 2020 01 21.
Artículo en Inglés | MEDLINE | ID: mdl-31964879

RESUMEN

Magnesium-based biodegradable metals (BMs) as bone implants have better mechanical properties than biodegradable polymers, yet their strength is roughly less than 350 MPa. In this work, binary Zn alloys with alloying elements Mg, Ca, Sr, Li, Mn, Fe, Cu, and Ag respectively, are screened systemically by in vitro and in vivo studies. Li exhibits the most effective strengthening role in Zn, followed by Mg. Alloying leads to accelerated degradation, but adequate mechanical integrity can be expected for Zn alloys when considering bone fracture healing. Adding elements Mg, Ca, Sr and Li into Zn can improve the cytocompatibility, osteogenesis, and osseointegration. Further optimization of the ternary Zn-Li alloy system results in Zn-0.8Li-0.4Mg alloy with the ultimate tensile strength 646.69 ± 12.79 MPa and Zn-0.8Li-0.8Mn alloy with elongation 103.27 ± 20%. In summary, biocompatible Zn-based BMs with strength close to pure Ti are promising candidates in orthopedics for load-bearing applications.


Asunto(s)
Implantes Absorbibles , Aleaciones/química , Fijadores Internos , Diseño de Prótesis , Zinc/química , Animales , Interfase Hueso-Implante/diagnóstico por imagen , Línea Celular , Fémur/diagnóstico por imagen , Fémur/cirugía , Fijación Interna de Fracturas/instrumentación , Células Endoteliales de la Vena Umbilical Humana , Humanos , Ensayo de Materiales , Microscopía Electrónica de Rastreo , Osteoblastos , Ratas , Resistencia a la Tracción , Soporte de Peso , Microtomografía por Rayos X
3.
ACS Appl Mater Interfaces ; 12(13): 15703-15715, 2020 Apr 01.
Artículo en Inglés | MEDLINE | ID: mdl-32159942

RESUMEN

A biodegradable coronary stent is expected to eliminate the adverse events of an otherwise eternally implanting material after vessel remodeling. Both biocorrodible metals and biodegradable polymers have been tried as the matrix of the new-generation stent. Herein, we utilized a metal-polymer composite material to combine the advantages of the high mechanical strength of metals and the adjustable degradation rate of polymers to prepare the biodegradable stent. After coating polylactide (PLA) on the surface of iron, the degradation of iron was accelerated significantly owing to the decrease of local pH resulting from the hydrolysis of PLA, etc. We implanted the metal-polymer composite stent (MPS) into the porcine artery and examined its degradation in vivo, with the corresponding metal-based stent (MBS) as a control. Microcomputed tomography (micro-CT), coronary angiography (CA), and optical coherence tomography (OCT) were performed to observe the stents and vessels during the animal experiments. The MPS exhibited faster degradation than MBS, and the inflammatory response of MPS was acceptable 12 months after implantation. Additionally, we implanted another MPS after 1-year implantation of the first MPS to investigate the result of the MPS in the second implantation. The feasibility of the biodegradable MPS in second implantation in mammals was also confirmed.


Asunto(s)
Implantes Absorbibles , Vasos Coronarios/patología , Hierro/química , Poliésteres/química , Stents , Animales , Angiografía Coronaria , Vasos Coronarios/diagnóstico por imagen , Corrosión , Hierro/metabolismo , Ensayo de Materiales , Porcinos , Tomografía de Coherencia Óptica
4.
ACS Appl Mater Interfaces ; 10(1): 182-192, 2018 Jan 10.
Artículo en Inglés | MEDLINE | ID: mdl-29243907

RESUMEN

The new principle and technique to tune biodegradation rates of biomaterials is one of the keys to the development of regenerative medicine and next-generation biomaterials. Biodegradable stents are new-generation medical devices applied in percutaneous coronary intervention, etc. Recently, both corrodible metals and degradable polymers have drawn much attention in biodegradable stents or scaffolds. It is, however, a dilemma to achieve good mechanical properties and appropriate degradation profiles. Herein, we put forward a metal-polymer composite strategy to achieve both. Iron stents exhibit excellent mechanical properties but low corrosion rate in vivo. We hypothesized that coating of biodegradable aliphatic polyester could accelerate iron corrosion due to the acidic degradation products, etc. To demonstrate the feasibility of this composite material technique, we first conducted in vitro experiments to affirm that iron sheet corroded faster when covered by polylactide (PLA) coating. Then, we fabricated three-dimensional metal-polymer stents (MPS) and implanted the novel stents in the abdominal aorta of New Zealand white rabbits, setting metal-based stents (MBS) as a control. A series of in vivo experiments were performed, including measurements of residual mass and radial strength of the stents, histological analysis, micro-computed tomography, and optical coherence tomography imaging at the implantation site. The results showed that MPS could totally corrode in some cases, whereas iron struts of MBS in all cases remained several months after implantation. Corrosion rates of MPS could be easily regulated by adjusting the composition of PLA coatings.


Asunto(s)
Stents , Implantes Absorbibles , Animales , Materiales Biocompatibles , Hierro , Metales , Polímeros , Conejos , Microtomografía por Rayos X
5.
Biomaterials ; 145: 92-105, 2017 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-28858721

RESUMEN

In the present study, pure zinc stents were implanted into the abdominal aorta of rabbits for 12 months. Multiscale analysis including micro-CT, scanning electron microscopy (SEM), scanning transmission electron microscopy (STEM) and histological stainings was performed to reveal the fundamental degradation mechanism of the pure zinc stent and its biocompatibility. The pure zinc stent was able to maintain mechanical integrity for 6 months and degraded 41.75 ± 29.72% of stent volume after 12 months implantation. No severe inflammation, platelet aggregation, thrombosis formation or obvious intimal hyperplasia was observed at all time points after implantation. The degradation of the zinc stent played a beneficial role in the artery remodeling and healing process. The evolution of the degradation mechanism of pure zinc stents with time was revealed as follows: Before endothelialization, dynamic blood flow dominated the degradation of pure zinc stent, creating a uniform corrosion mode; After endothelialization, the degradation of pure zinc stent depended on the diffusion of water molecules, hydrophilic solutes and ions which led to localized corrosion. Zinc phosphate generated in blood flow transformed into zinc oxide and small amounts of calcium phosphate during the conversion of degradation microenvironment. The favorable physiological degradation behavior makes zinc a promising candidate for future stent applications.


Asunto(s)
Aorta Abdominal/patología , Stents , Zinc/farmacología , Animales , Materiales Biocompatibles/farmacología , Corrosión , Imagenología Tridimensional , Implantes Experimentales , Ensayo de Materiales , Microscopía Electrónica de Rastreo , Modelos Animales , Conejos , Tomografía Computarizada por Rayos X
6.
J Biomed Mater Res B Appl Biomater ; 100(8): 2239-50, 2012 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-22887723

RESUMEN

As-cast Ti-xGe (x = 2, 5, 10, 20 wt %) binary alloys were produced in this work, and various experiments were carried out to investigate the microstructure, mechanical properties, in vitro electrochemical and immersion corrosion behaviors as well as cytotoxicity with as-cast pure Ti as control, aiming to study the feasibility of Ti-xGe alloy system as potential dental materials. The microstructure of Ti-xGe alloys changes from single α-Ti phase to α-Ti + Ti(5)Ge(3) precipitation phase with the increase of Ge content. Mechanical tests show that Ti-5Ge alloy has the best comprehensive mechanical properties. The corrosion behavior of Ti-xGe alloys in artificial saliva with different NaF and lactic acid addition at 37°C indicates that Ti-2Ge and Ti-5Ge alloys show better corrosion resistance to fluorine-containing solution. The cytotoxicity test indicates that Ti-xGe alloy extracts show no obvious reduction of cell viability to L-929 fibroblasts and MG-63 osteosarcoma cells, similar to pure Ti which is generally acknowledged to be biocompatible. Considering all these results, Ti-2Ge and Ti-5Ge alloys possess the optimal comprehensive performance and might be used as potential dental materials.


Asunto(s)
Aleaciones Dentales/química , Germanio/química , Ensayo de Materiales , Titanio/química , Línea Celular Tumoral , Corrosión , Humanos , Ácido Láctico/química , Saliva/química
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