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Engineering multiple biological functional motifs into a blank collagen‐like protein template from Streptococcus pyogenes
Author(s) -
Peng Yong Y.,
Stoichevska Violet,
Schacht Kristin,
Werkmeister Jerome A.,
Ramshaw John A. M.
Publication year - 2014
Publication title -
journal of biomedical materials research part a
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.849
H-Index - 150
eISSN - 1552-4965
pISSN - 1549-3296
DOI - 10.1002/jbm.a.34898
Subject(s) - integrin , extracellular matrix , triple helix , rgd motif , protein engineering , streptococcus pyogenes , mutagenesis , collagen receptor , biochemistry , binding site , biophysics , materials science , biology , microbiology and biotechnology , mutant , receptor , genetics , gene , bacteria , enzyme , staphylococcus aureus
Bacterially derived triple‐helical, collagen‐like proteins are attractive as potential biomedical materials. The collagen‐like domain of the Scl2 protein from S. pyogenes lacks any specific binding sites for mammalian cells yet possesses the inherent structural integrity of the collagen triple‐helix of animal collagens. It can, therefore, be considered as a structurally‐stable “blank slate” into which various defined, biological sequences, derived from animal collagens, can be added by substitutions or insertions, to enable production of novel designed materials to fit specific functional requirements. In the present study, we have used site directed mutagenesis to substitute two functional sequences, one for heparin binding and the other for integrin binding, into different locations in the triple‐helical structure. This provided three new constructs, two containing the single substitutions and one containing both substitutions. The stability of these constructs was marginally reduced when compared to the unmodified sequence. When compared to the unmodified bacterial collagen, both the modified collagens that contain the heparin binding site showed marked binding of fluorescently labeled heparin. Similarly, the modified collagens from both constructs containing the integrin binding site showed significant adhesion of L929 cells that are known to possess the appropriate integrin receptor. C2C12 cells that lack any appropriate integrins did not bind. These data show that bacterial collagen‐like sequences can be modified to act like natural extracellular matrix collagens by inserting one or more unique biological domains with defined function. © 2013 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 102A: 2189–2196, 2014.