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1.
Acta Biomater ; 70: 35-47, 2018 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-29425720

RESUMO

We report injectable nanoengineered hemostats for enhanced wound healing and tissue regeneration. The nanoengineered system consists of the natural polysaccharide, κ-carrageenan (κCA), loaded with synthetic two-dimensional (2D) nanosilicates. Nanoengineered hydrogels showed shear-thinning characteristics and can be injected for minimally invasive approaches. The injectable gels can be physically crosslinked in presence of monovalent ions to form mechanically strong hydrogels. By controlling the ratio between κCA and nanosilicates, compressive stiffness of crosslinked hydrogels can be modulated between 20 and 200 kPa. Despite high mechanical stiffness, nanocomposite hydrogels are highly porous with an interconnected network. The addition of nanosilicates to κCA increases protein adsorption on nanocomposite hydrogels that results in enhance cell adhesion and spreading, increase platelets binding and reduce blood clotting time. Moreover, due to presence of nanosilicates, a range of therapeutic biomacromolecules can be deliver in a sustain manner. The addition of nanosilicates significantly suppresses the release of entrap vascular endothelial growth factor (VEGF) and facilitate in vitro tissue regeneration and wound healing. Thus, this multifunctional nanocomposite hydrogel can be used as an injectable hemostat and an efficient vehicle for therapeutic delivery to facilitate tissue regeneration. STATEMENT OF SIGNIFICANCE: Hemorrhage is a leading cause of death in battlefield wounds, anastomosis hemorrhage and percutaneous intervention. Thus, there is a need for the development of novel bioactive materials to reduce the likelihood of hemorrhagic shock stemming from internal wounds. Here, we introduce an injectable hemostat from kappa-carrageenan and two-dimensional (2D) nanosilicates. Nanosilicates mechanically reinforce the hydrogels, provide enhanced physiological stability and accelerate the clotting time by two-fold. The sustained release of entrapped therapeutics due to presence of nanosilicates promotes enhanced wound healing. The multifunctional nanocomposite hydrogels could be used as an injectable hemostat for penetrating injury and percutaneous intervention during surgery.


Assuntos
Carragenina , Hidrogéis , Células-Tronco Mesenquimais/metabolismo , Nanocompostos/química , Cicatrização/efeitos dos fármacos , Carragenina/química , Carragenina/farmacologia , Adesão Celular/efeitos dos fármacos , Humanos , Hidrogéis/química , Hidrogéis/farmacologia , Células-Tronco Mesenquimais/patologia , Fator A de Crescimento do Endotélio Vascular/biossíntese
2.
J Biomed Mater Res A ; 104(4): 879-88, 2016 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-26650507

RESUMO

Nanocomposite biomaterials are extensively investigated for cell and tissue engineering applications due their unique physical, chemical and biological characteristics. Here, we investigated the mechanical, rheological, and degradation properties of photocrosslinkable and elastomeric nanocomposite hydrogels from nanohydroxyapatite (nHAp) and gelatin methacryloyl (GelMA). The addition of nHAp resulted in a significant increase in mechanical stiffness and physiological stability. Cells readily adhere and proliferate on the nanocomposite surfaces. Cyclic stretching of cells on the elastomeric nanocomposites revealed that nHAp elicited a stronger alignment response in the direction of strain. In vitro studies highlight enhanced bioactivity of nanocomposites as determined by alkaline phosphate (ALP) activity. Overall, the elastomeric and photocrosslinkable nanocomposite hydrogels can be used for minimally invasive therapy for bone regeneration.


Assuntos
Regeneração Óssea , Substitutos Ósseos/química , Durapatita/química , Gelatina/química , Hidrogéis/química , Nanocompostos/química , Osteoblastos/citologia , Animais , Adesão Celular , Diferenciação Celular , Linhagem Celular , Movimento Celular , Proliferação de Células , Elastômeros , Luz , Camundongos , Nanocompostos/ultraestrutura , Polímeros/química
3.
ACS Nano ; 10(1): 246-56, 2016 Jan 26.
Artigo em Inglês | MEDLINE | ID: mdl-26670176

RESUMO

Although hydrogels are able to mimic native tissue microenvironments, their utility for biomedical applications is severely hampered due to limited mechanical stiffness and low toughness. Despite recent progress in designing stiff and tough hydrogels, it is still challenging to achieve a cell-friendly, high modulus construct. Here, we report a highly efficient method to reinforce collagen-based hydrogels using extremely low concentrations of a nanoparticulate-reinforcing agent that acts as a cross-link epicenter. Extraordinarily, the addition of these nanoparticles at a 10 000-fold lower concentration relative to polymer resulted in a more than 10-fold increase in mechanical stiffness and a 20-fold increase in toughness. We attribute the high stiffness of the nanocomposite network to the chemical functionality of the nanoparticles, which enabled the cross-linking of multiple polymeric chains to the nanoparticle surface. The mechanical stiffness of the nanoengineered hydrogel can be tailored between 0.2 and 200 kPa simply by manipulating the size of the nanoparticles (4, 8, and 12 nm), as well as the concentrations of the nanoparticles and polymer. Moreover, cells can be easily encapsulated within the nanoparticulate-reinforced hydrogel network, showing high viability. In addition, encapsulated cells were able to sense and respond to matrix stiffness. Overall, these results demonstrate a facile approach to modulate the mechanical stiffness of collagen-based hydrogels and may have broad utility for various biomedical applications, including use as tissue-engineered scaffolds and cell/protein delivery vehicles.


Assuntos
Dureza , Hidrogéis/química , Nanocompostos/química , Nanopartículas/química , Animais , Células Imobilizadas/citologia , Células Imobilizadas/fisiologia , Colágeno/química , Dopamina/química , Óxido Ferroso-Férrico/química , Gelatina/química , Testes de Dureza , Humanos , Teste de Materiais , Células-Tronco Mesenquimais/citologia , Células-Tronco Mesenquimais/fisiologia , Metacrilatos/química , Camundongos , Células NIH 3T3 , Nanocompostos/ultraestrutura , Nanopartículas/ultraestrutura , Tamanho da Partícula , Polietilenoglicóis/química
4.
ACS Nano ; 9(3): 3109-18, 2015 Mar 24.
Artigo em Inglês | MEDLINE | ID: mdl-25674809

RESUMO

Despite bone's impressive ability to heal after traumatic injuries and fractures, a significant need still exists for developing strategies to promote healing of nonunion defects. To address this issue, we developed collagen-based hydrogels containing two-dimensional nanosilicates. Nanosilicates are ultrathin nanomaterials with a high degree of anisotropy and functionality that results in enhanced surface interactions with biological entities compared to their respective three-dimensional counterparts. The addition of nanosilicates resulted in a 4-fold increase in compressive modulus along with an increase in pore size compared to collagen-based hydrogels. In vitro evaluation indicated that the nanocomposite hydrogels are capable of promoting osteogenesis in the absence of any osteoinductive factors. A 3-fold increase in alkaline phosphatase activity and a 4-fold increase in the formation of a mineralized matrix were observed with the addition of the nanosilicates to the collagen-based hydrogels. Overall, these results demonstrate the multiple functions of nanosilicates conducive to the regeneration of bone in nonunion defects, including increased network stiffness and porosity, injectability, and enhanced mineralized matrix formation in a growth-factor-free microenvironment.


Assuntos
Osso e Ossos/citologia , Osso e Ossos/efeitos dos fármacos , Hidrogéis/química , Hidrogéis/farmacologia , Nanocompostos/química , Nanotecnologia/métodos , Engenharia Tecidual/métodos , Animais , Materiais Biocompatíveis/química , Materiais Biocompatíveis/farmacologia , Osso e Ossos/fisiologia , Calcificação Fisiológica/efeitos dos fármacos , Adesão Celular/efeitos dos fármacos , Linhagem Celular , Colágeno/química , Gelatina/química , Fenômenos Mecânicos , Camundongos , Osteogênese/efeitos dos fármacos , Silicatos/química
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