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Also, bioactive composites can be attached to bone with formation of HA layer on the surface.
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Our results suggest that the mesoporous bioactive glass/PBLG-g-PEG nanomicelle composites can be used as a dual-drug delivery system, and that the individual drug release can be controlled by the pH of the surrounding environment.
It is expected that this apatite/polypyrrole composite can be used as bioactive coatings on metal implants and tissue engineering scaffolds.
Designed multiphase composite can be potentially used for bioactive bone implants.
The composite can be formed into articles.
Furthermore, release studies have shown that bioactive molecules can be delivered from the unique degradable composite hydrogel scaffold in two modes: (1) the early release mode, where incorporation directly in to the gel matrix allows delivery of molecules within the first 2 3 days, and (2) the late release mode, where encapsulation in liposomes allows slower, delayed delivery of molecules.
Sequence analysis of bioactive peptides can be used to predict the potential bioactivity.
Hydroxyapatite (HA) and other bioactive calcium phosphate materials, including bioactive glass, can be used in tissue engineering to replace bone tissue.
When dealing with mixtures, identifying the individual bioactive compounds can be a cumbersome endeavor.
Phytobiology perceives medicinal plants as a source of bioactive compounds which can be traced since evolution.
Because, they contain many bioactive compounds that can be of interest in therapeutic.
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