| Literature DB >> 27131598 |
Ann-Kristin Picke1, Juliane Salbach-Hirsch1, Vera Hintze2, Sandra Rother2, Martina Rauner1, Christian Kascholke3, Stephanie Möller4, Ricardo Bernhardt2, Stefan Rammelt5, M Teresa Pisabarro6, Gloria Ruiz-Gómez6, Matthias Schnabelrauch4, Michaela Schulz-Siegmund3, Michael C Hacker3, Dieter Scharnweber7, Christine Hofbauer8, Lorenz C Hofbauer9.
Abstract
Bone fractures in patients with diabetes mellitus heal poorly and require innovative therapies to support bone regeneration. Here, we assessed whether sulfated hyaluronan included in collagen-based scaffold coatings can improve fracture healing in diabetic rats. Macroporous thermopolymerized lactide-based scaffolds were coated with collagen including non-sulfated or sulfated hyaluronan (HA/sHA3) and inserted into 3 mm femoral defects of non-diabetic and diabetic ZDF rats. After 12 weeks, scaffolds coated with collagen/HA or collagen/sHA3 accelerated bone defect regeneration in diabetic, but not in non-diabetic rats as compared to their non-coated controls. At the tissue level, collagen/sHA3 promoted bone mineralization and decreased the amount of non-mineralized bone matrix. Moreover, collagen/sHA3-coated scaffolds from diabetic rats bound more sclerostin in vivo than the respective controls. Binding assays confirmed a high binding affinity of sHA3 to sclerostin. In vitro, sHA3 induced BMP-2 and lowered the RANKL/OPG expression ratio, regardless of the glucose concentration in osteoblastic cells. Both sHA3 and high glucose concentrations decreased the differentiation of osteoclastic cells. In summary, scaffolds coated with collagen/sHA3 represent a potentially suitable biomaterial to improve bone defect regeneration in diabetic conditions. The underlying mechanism involves improved osteoblast function and binding sclerostin, a potent inhibitor of Wnt signaling and osteoblast function.Entities:
Keywords: Defect healing; Glycosaminoglycans (GAG); Hyaluronic acid/hyaluronan (HA) sulfate; Sclerostin; Type 2 diabetes mellitus
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Year: 2016 PMID: 27131598 DOI: 10.1016/j.biomaterials.2016.04.013
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479