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Volume 6, Issue 4, Pages 1248-1257 (April 2010)


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Electrospun microfiber meshes of silicon-doped vaterite/poly(lactic acid) hybrid for guided bone regeneration

Akiko ObataaCorresponding Author Informationemail address, Toshiki Hottaa, Takashi Wakitaab, Yoshio Otac, Toshihiro Kasugaa

Received 29 May 2009; received in revised form 23 October 2009; accepted 9 November 2009. published online 12 November 2009.

Abstract 

Silicon-releasable microfiber meshes consisting of silicon-doped vaterite (SiV) particles and poly(lactic acid) (PLA) hybrids were prepared by electrospinning. Due to their flexibility and porosity they formed ideal membranes or scaffolds for guided bone regeneration. In addition, a trace amount of silicon species has been reported to stimulate osteogenic cells to mineralize and enhance bone formation. We propose a new method of preparation of silicon-releasing microfiber meshes by electrospinning. Their structure and hydroxyapatite (HA)-forming abilities in simulated body fluid were examined. In addition, we studied their stimulatory effects on osteoblast-like cells in vitro and bone-forming ability in vivo, with a special emphasis on their ability to release silicon. The meshes consisted of a hybrid of carboxy groups in PLA and amino groups in siloxane, derived from aminopropyltriethoxysilane or calcium ions on the SiV surface. This hybrid exhibited an enhanced ability to form HA. The meshes coated with HA released 0.2–0.7mgl−1 silicon species into the culture medium over 7days. Enhanced proliferation of osteoblast-like cells was observed using the meshes and new bone formed on the meshes when implanted into the calvaria of rabbits. These meshes, therefore, provide an excellent substrate for bone regeneration and exhibit enhanced bone-forming ability under both in vitro and in vivo conditions.

a Graduate School of Engineering, Nagoya Institute of Technology, Gokiso Cho, Showa ku, Nagoya 466-8555, Japan

b Yamahachi Dental Manufacturing Co., 54-1 Ochigara, Nishiura Cho, Gamagori, Aichi 443-0105, Japan

c Yabashi Industries Co. Ltd., 188-1 Akasaka Cho, Ogaki, Gifu 503-2213, Japan

Corresponding Author InformationCorresponding author. Tel./fax: +81 52 735 7250.

PII: S1742-7061(09)00509-1

doi:10.1016/j.actbio.2009.11.013


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