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Applications tissue engineering

Multiple applications for resilin-like polypeptides have garnered renewed research interest since the report of the first recombinant resilin in 2005. The excellent mechanical properties of the resilin-like polypeptides has directed investigation toward their use as high-performance materials and in tissue engineering applications. It is widely acknowledged that cells interact and take cues from their microenvironment and, therefore, the development of polymeric scaffolds to mimic the extracellular matrix and drive desired cell or tissue responses has been of wide interest. To this end, our laboratories have developed a modular resilin-like polypeptide (RLP12) (see Fig. 20) that contains not only twelve repeats of the... [Pg.106]

Pradhan S, Farach-Carson MC (2010) Mining the extracellular matrix for tissue engineering applications. Regen Med 5 961-970... [Pg.160]

H. Adeli, S. H. S. Zein, S. H. Tan, H. M. Akil, A. L. Ahmad, Synthesis, characterization and biodegradation of novel poly(L-lactide)/multiwalled carbon nanotube porous scaffolds for tissue engineering applications., Current Nanoscience, vol. 7, pp. 323-333,2011. [Pg.121]

Bioreactor Developments for Tissue Engineering Applications by the Example of the Bioartificial Liver... [Pg.99]

Silva et al. (2006) studied starch-based microparticles as a novel strategy for tissue engineering applications. They developed starch-based microparticles, and evaluated them for bioactivity, cytotoxicity, ability to serve as substrates for cell adhesion, as well as their potential to be used as delivery systems either for anti-inflammatory agents or growth factors. Two starch-based materials were used for the development of starch-based particulate systems (1) a blend of starch and polylactic acid (SPLA) (50 50 w/w) and (2) a chemically modifled potato starch, Paselli II (Pa). Both materials enabled the synthesis of particulate systems, both polymer and composite (with BG 45S5). A simple solvent extraction method was employed for the synthesis of SPLA and SPLA/BG microparticles, while for Pa and Pa/BG... [Pg.450]

Silva, G. A., Coutinho, O. R, Ducheyne, R, Shapiro, I. M., Reis, R. L. (2006). Starch-based microparticles as a novel strategy for tissue engineering applications. Key Engg. Mater., 309-311, 907-910. [Pg.461]

These dendrimers expand the repertoire of polymers available for study. Current investigations are primarily limited to linear polymers that possess ill-defined solution structures and fewer hydroxyl groups for further modification. The introduction of biocompatible building blocks (e.g., glycerol and lactic acid) augments the favorable and already known physical properties of dendrimers. These properties are likely to facilitate the design of new materials for specific biomedical and tissue engineering applications. [Pg.81]

Girotti et al. (2004) have designed and bio-produced elastin-like protein polymers (ELP) which contain biofunctional motifs with cell adhesion sequences required for tissue-engineering applications. The protein polymer contained periodically spaced fibronectin CS5 domains enclosing the cell attachment sequence REDV. The overall sequence,... [Pg.99]

V. E. Santo, A. M. Frias, M. Carida, R. Cancedda, M. E. Gomes, J. F. Mano, and R. L. Reis, Carrageenan-based hydrogels for the controlled delivery of PDGF-BB in bone tissue engineering applications, Biomacromolecules, 10 (2009) 1392-1401. [Pg.214]

Crosslinkable bioresorbable hydrogel block copolymer compositions, (V), were prepared by Loomis [6] for implantable prostheses and as scaffolding for tissue engineering applications. [Pg.75]

Heteroatom biodegradable and electrically conducting polymers, (IV), effective for tissue engineering applications were prepared by Schmidt [4] and used in spinal cord regeneration, wound healing, and bone repair. [Pg.163]

In the future, nanotubes and nanofibers can be administered systemically, if the problem of their toxicity is addressed, for example, by appropriate polymer coating. In this respect, the continuous nanofibers are more likely to be used in implants or tissue engineering applications. [Pg.696]

Nguyen KT and West JL. Photopolymerizable hydrogels for tissue engineering applications. Biomaterials 2002 23 4307-4314. [Pg.490]

Using a similar procedure, a composite material for tissue engineering applications composed of HA and carboxymethylchitosan was obtained by a coprecipitation method. In vitro tests exhibited a great potential of this class of materials for bone tissue-engineering applications.79... [Pg.281]


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Application of Hydrogels for Protein Delivery in Tissue Engineering

Applications in Bone Tissue Engineering

Applications in Cardiovascular Tissue Engineering

Applications in Tissue Engineering

Applications of Hydrogels in Tissue Engineering

Applications of self-assembled nanostructures for bone tissue engineering

Bioceramics for Tissue Engineering Applications

Biomedical applications tissue engineering

Bone tissue engineering applications

Bone tissue engineering clinical applications

Cardiovascular applications tissue engineering

Degradable polyurethanes cultured with stem cells for tissue engineering applications

Electrospun polyurethane scaffolds in tissue engineering applications

Injectable biomaterials tissue engineering applications

Injectable composites and applications in tissue engineering

Medical textiles tissue engineering applications

Nanoscale applications in tissue engineering

Other Tissue Engineering Applications

Polymers for tissue engineering applications

Shape memory polymer tissue engineering applications

Silk Scaffolds for Tissue Engineering Applications

Surgical applications tissue engineering

Synthetic polymer matrix other tissue engineering application

Temperature-responsive polymers for cell culture and tissue engineering applications

Textiles for tissue engineering applications

Thin films for tissue engineering applications

Tissue engineering

Tissue engineering applications HEMA)

Tissue engineering applications bioactive glass-ceramics

Tissue engineering applications biodegradable materials

Tissue engineering applications biomimetic approach

Tissue engineering applications hydroxyapatite

Tissue engineering applications of injectable

Tissue engineering applications poly

Tissue engineering applications polyphosphoesters

Tissue engineering applications scaffolds

Tissue engineering applications stages

Tissue engineering applications technologies

Tissue engineering applications versatility

Tissue-engineered application

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