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Furthermore, bioactive groups can be incorporated into ELR peptides to obtain stronger and faster cell responses on tissues or coated biomaterial interfaces, thus promoting better regeneration or implant integration.
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(Larger groups can be accommodated).
Tailoring polypyrrole (PPy), an electroactive polymer, with functional groups to which a variety of bioactive molecules can be tethered is highly attractive for building biological structures on conducting surfaces for a range of biomedical applications.
Sequence analysis of bioactive peptides can be used to predict the potential bioactivity.
These findings indicate that novel bioactive materials can be developed from organic inorganic hybrids obtained by incorporation of calcium ion and specific kinds of functional groups such as Si OH.
Hydroxyapatite (HA) and other bioactive calcium phosphate materials, including bioactive glass, can be used in tissue engineering to replace bone tissue.
Also, bioactive composites can be attached to bone with formation of HA layer on the surface.
When dealing with mixtures, identifying the individual bioactive compounds can be a cumbersome endeavor.
New sources of bioactive compounds can be created in the form of genetically encoded small molecule libraries.
Bioactive compounds can be general irritants acting on the peripheral sensory system, or toxins of specific physiological action [ 26].
Bioactive peptides can be computationally modeled, genetically manipulated, and expressed in different systems to serve a practical purpose.
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