OSTEOGENIC GROWTH PEPTIDE

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CAS: 132996-61-3
MF: C68H110N22O18
MW: 1523.7376
Synonyms: OSTEOGENIC GROWTH PEPTIDE

REPORT BY

Xuesi Chen

Chinese Academy of Sciences
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Peibiao Zhang

Graduate School of Chinese Academy of Sciences
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Matthew L. Becker

The University of Akron
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Co-reporter: Gina M. Policastro, Fei Lin, Laura A. Smith Callahan, Andrew Esterle, Matthew Graham, Kimberly Sloan Stakleff, and Matthew L. Becker
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Publication Date(Web):March 5, 2015
DOI: 10.1021/acs.biomac.5b00153
Amino acid-based poly(ester urea)s (PEU) are high modulus, resorbable polymers with many potential uses, including the surgical repair of bone defects. In vitro and in vivo studies have previously shown that phenylalanine-based PEUs have nontoxic hydrolytic byproducts and tunable degradation times. Phenylalanine PEUs (poly(1-PHE-6)) have been further modified by tethering osteogenic growth peptide (OGP) to tyrosine-based monomer subunits. These OGP-tethered PEUs have been fabricated into porous scaffolds and cultured in vitro to examine their effect on differentiation of human mesenchymal stem cells (hMSCs) toward the osteogenic lineage. The influence of tethered OGP on the hMSC proliferation and differentiation profile was measured using immunohistochemistry, biochemistry, and quantitative real time polymerase chain reaction (qRT-PCR). In vitro data indicated an enhanced expression of BSP by 130–160% for hMSCs on OGP-tethered scaffolds compared to controls. By 4 weeks, there was a significant drop (60–85% decrease) in BSP expression on OGP-functionalized scaffolds, which is characteristic of osteogenic differentiation. ALP and OSC expression was significantly enhanced for OGP-functionalized scaffolds by week 4, with values reaching 145% and 300% greater, respectively, compared to nonfunctionalized controls. In vivo subcutaneous implantation of poly(1-PHE-6) scaffolds revealed significant tissue-scaffold integration, as well as the promotion of both osteogenesis and angiogenesis.

Chrys Wesdemiotis

The University of Akron
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Chuanbin Mao

University of Oklahoma
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Xuesi Chen

Changchun Institute of Applied Chemistry
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Li Chen

Changchun Institute of Applied Chemistry
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