Hydrogels possess high water content and closely mimic the microenvironment of extracellular matrix. In this study, we created a hybrid hydrogel containing type II collagen, hyaluronic acid (HA), and polyethylene glycol (PEG) and incorporated magnetic nanoparticles into the hybrid hydrogels of type II collagen-HA-PEG to produce a magnetic nanocomposite hydrogel (MagGel) for cartilage tissue engineering. The results showed that both the MagGel and hybrid gel (Gel) were successfully cross-linked and the MagGel responded to an external magnet while maintaining structural integrity. That is, the MagGel could travel to the tissue defect sites in physiological fluids under remote magnetic guidance. The adhesion density of bone marrow derived mese...
Tissue engineering is becoming an effective strategy for repairing cartilage damage. Synthesized nan...
Soft micro- and nanostructures have been extensively developed for biomedical applications. The main...
An important topic in cartilage tissue engineering is the development of biomimetic scaffolds which ...
Hydrogels possess high water content and closely mimic the microenvironment of extracellular matrix....
The encapsulation of cells into biopolymer matrices enables the preparation of engineered substitute...
Publicado em "Journal of Tissue Engineering and Regenerative Medicine", vol. 7, supp. 1 (2013)The us...
Current stem cell research often relies on the use of growth factors to stimulate cell proliferation...
Current stem cell research often relies on the use of growth factors to stimulate cell proliferation...
The goal of this project is to develop a vehicle for a therapy treatment that increases stem cell-me...
Photocrosslinkable magnetic hydrogels are attracting great interest for tissue engineering strategie...
Magnetic nanoparticles (MNPs) are attractive tools to overcome limitations of current regenerative m...
Injectable hydrogels are particularly interesting for applications in minimally invasive tissue engi...
Magnetic nanoparticles (MNPs) are attractive tools to overcome limitations of current regenerative m...
Dynamic cell‐culture materials that can change mechanical properties in response to extrinsic stimul...
Pulsed electromagnetic field therapy, or pulsed signal therapy, has shown efficacy in treating many ...
Tissue engineering is becoming an effective strategy for repairing cartilage damage. Synthesized nan...
Soft micro- and nanostructures have been extensively developed for biomedical applications. The main...
An important topic in cartilage tissue engineering is the development of biomimetic scaffolds which ...
Hydrogels possess high water content and closely mimic the microenvironment of extracellular matrix....
The encapsulation of cells into biopolymer matrices enables the preparation of engineered substitute...
Publicado em "Journal of Tissue Engineering and Regenerative Medicine", vol. 7, supp. 1 (2013)The us...
Current stem cell research often relies on the use of growth factors to stimulate cell proliferation...
Current stem cell research often relies on the use of growth factors to stimulate cell proliferation...
The goal of this project is to develop a vehicle for a therapy treatment that increases stem cell-me...
Photocrosslinkable magnetic hydrogels are attracting great interest for tissue engineering strategie...
Magnetic nanoparticles (MNPs) are attractive tools to overcome limitations of current regenerative m...
Injectable hydrogels are particularly interesting for applications in minimally invasive tissue engi...
Magnetic nanoparticles (MNPs) are attractive tools to overcome limitations of current regenerative m...
Dynamic cell‐culture materials that can change mechanical properties in response to extrinsic stimul...
Pulsed electromagnetic field therapy, or pulsed signal therapy, has shown efficacy in treating many ...
Tissue engineering is becoming an effective strategy for repairing cartilage damage. Synthesized nan...
Soft micro- and nanostructures have been extensively developed for biomedical applications. The main...
An important topic in cartilage tissue engineering is the development of biomimetic scaffolds which ...