Osteogenesis Depending on Geometry of Porous Hydroxyapatite Scaffolds

Calcified Tissue International - Tập 83 - Trang 139-145 - 2008
Masataka Yoshikawa1,2, Norimasa Tsuji1, Yasunori Shimomura1, Hiroyuki Hayashi1, Hajime Ohgushi2
1Department of Endodontics, Osaka Dental University, Chuo-ku, Japan
2Tissue Engineering Research Group, Research Institute for Cell Engineering, National Institute of Advanced Industrial Science and Technology, Amagasaki, Japan

Tóm tắt

The effect of the configuration of porous cylindrical hydroxyapatite (HA) scaffold and laminin preparation of the scaffold on bone formation was estimated. HA scaffolds with a hollow center of 2 or 4 mm in diameter and those without a hollow center were used. The scaffolds were immersed in laminin solution or in culture medium. Bone marrow cells were obtained from the femora of male Fischer 344 rats. Cell suspension was prepared at 1 × 106 cells/mL density. The cells were seeded into HA scaffolds. Each scaffold was implanted in the dorsal subcutis of rats for 4 weeks. Bone formation in scaffolds was observed histologically. The quantity of osteocalcin was measured immunochemically. Many pores containing bone were identified in the laminin-immersed HA scaffold with a hollow center measuring 4 mm in diameter than those without and those with a hollow center measuring 2 mm in diameter. A greater quantity of osteocalcin was detected in the HA scaffold with immersion in laminin than in that without immersion in laminin. However, the results of the immunochemical assay for osteocalcin showed that a hollow center in the scaffold did not contribute to bone formation compared to scaffolds without a hollow center. It is considered that laminin may act as an adhesive for effective cell attachment to the walls of the pores in an HA scaffold.

Tài liệu tham khảo

Yoshikawa T, Ohgushi H, Uemura T, Nakajima H, Ichijima K, Tamai S, Tateishi T (1998) Human marrow cells–derived cultured bone in porous ceramics. Biomed Mater Eng 8:311–320 Ohgushi H, Caplan AI (1999) Stem cell technology and bioceramics: from cell to gene engineering. J Biomed Mater Res 48:913–927 Schroder U (1985) Effect of calcium hydroxide–containing pulp capping agents on pulp cell migration, proliferation and differentiation. J Dent Res 64:541–548 Cox DF, Bergenholtz G, Heys DR, Syed SA, Fitzgerald M, Heys RJ (1985) Pulp capping of dental pulp mechanically exposed to oral microflora. A 1–2 year observation of wound healing in the monkey. J Oral Pathol 14:156–168 Harada H, Kettunen P, Jung H-S, Mustonen T, Wang YA, Thesleff A (1999) Localization of putative stem cells in dental epithelium and their association with notch and FGF signaling. J Cell Biol 147:105–120 Gronthos S, Brahim J, Li W, Fisher LW, Cherman N, Boyde A, DenBesten P, Robey PG, Shi S (2002) Stem cell properties of human dental pulp stem cells. J Dent Res 81:531–535 Kawano S, Saito M, Handa K, Morotomi T, Toyono T, Seta Y, Nakamura N, Uchida T, Toyoshima K, Ohishi M, Harada H (2004) Characterization of dental epithelial progenitor cells derived from cervical-loop epithelium in a rat lower incisor. J Dent Res 83:129–133 Petite H, Viateau V, Bensaid W, Meunier A, Pollak C, Bourguignon M, Oudina K, Sedel L, Guillemin G (2000) Tissue-engineered bone regeneration. Nature 18:959–962 Caplan AI, Bruder SP (2001) Mesenchymal stem cells: building blocks for molecular medicine in the 21st century. Trends Mol Med 7:259–264 Derubeis AR, Cancedda R (2004) Bone marrow stromal cells (BMSCs) in bone engineering: limitations and recent advances. Ann Biomed Eng 32:160–165 Inoue K, Ohgushi H, Yoshikawa T, Okumura M, Sempuku T, Tamai S, Dohi Y (1997) The effect of aging on bone formation in porous hydroxyapatite—biochemical and histological analysis. J Bone Miner Res 12:989–994 Toquet J, Rohanizadeh R, Guicheux J, Couillaud S, Passuti N, Daculsi G, Heymann D (1999) Osteogenic potential in vitro of human bone marrow cells cultured on macroporous biphasic calcium phosphate ceramic. J Biomed Mater Res 44:98–108 Tamai N, Myoui A, Tomita T, Nakase T, Tanaka J, Ochi T, Yoshikawa H (2002) Novel hydroxyapatite ceramics with an interconnective porous structure exhibit superior osteoconduction in vivo. J Biomed Mater Res 59:110–117 Livingston T, Ducheyne P, Garino J (2002) In vivo evaluation of a bioactive scaffold for bone tissue engineering. J Biomed Mater Res 62:1–13 Ruch JV, Lesot H, Bègue-Kirn C (1995) Odontoblast differentiation. Int J Dev Biol 39:51–68 Butler WT, Ritchie H (1995) The nature and functional significance of dentin extracellular matrix proteins. Int J Dev Biol 39:169–179 Burridge K, Fath K, Kelly T, Nuckolls G, Turner C (1988) Focal adhesions: transmembrane junctions between the extracellular matrix and the cytoskeleton. Ann Rev Cell Biol 4:487–525 Gu Y-C, Kortesmaa J, Tryggvason K, Persson J, Ekblom P, Jacobsen S-E, Ekblom M (2003) Laminin isoform–specific promotion of adhesion and migration of human bone marrow progenitor cells. Blood 101:877–885 Maniatopoulos C, Sodek J, Melcher AH (1988) Bone formation in vitro by stromal cells obtained from bone marrow of young adult rats. Cell Tissue Res 254:317–330 Ohgushi H, Dohi Y, Katuda T, Tamai S, Tabata S, Suwa Y (1996) In vitro bone formation by rat marrow cell culture. J Biomed Mater Res 32:333–340 Hulbert SF, Young FA, Mathews RS, Klawitter JJ, Talbert CD, Stelling FH (1970) Potential of ceramic materials as permanently implantable skeletal prostheses. J Biomed Mater Res 4:433–456 Bobyn JD, Pilliar RM, Cameron HU, Weatherly GC (1980) The optimum pore size for the fixation of porous surfaced metal implants by ingrowth of bone. Clin Orthop 150:263–270 Clemow AJT, Weinstein AM, Klawitter JJ (1981) Interface mechanics of porous titanium implants. J Biomed Mater Res 15:73–82 Okamoto M, Dohi Y, Ohgushi H, Shimaoka H, Ikeuchi M, Matsushima A, Yonemasu K, Hosoi H (2006) Influence of the porosity of hydroxyapatite ceramics on in vitro and in vivo bone formation by cultured rat bone marrow stromal cells. J Mater Sci Mater Med 17:327–336 Akahane M, Ohgushi H, Yoshikawa T, Sempuku T, Tamai S, Tabata S, Dohi Y (1999) Osteogenic phenotype expression of allogeneic rat marrow cells in porous hydroxyapatite ceramics. J Bone Miner Res 14:561–568 Kruyt MC, De Bruijn JD, Wilson CE, Oner FC, Van Blitterswijk CA, Verbout AJ, Dhert WJA (2003) Viable osteogenic cells are obligatory for tissue-engineered ectopic bone formation in goats. Tissue Eng 9:327–336 Paul SR, Yang Y-C, Donahue RE, Goldring S, Williams DA (1991) Stromal cell–associated hematopoiesis. immortalization and characterization of a primate bone marrow–derived stromal cell line. Blood 77:1723–1733 Xiao Y, Goss B, Shi W, Forsythe M, Campbell A, Nicol D, Williams R, Crawford R (2006) Laminin, VEGF, and bone matrix protein expression in uroepithelial bone induction—a canine model. Connect Tissue Res 47:102–109 Yoshikawa M, Tsuji N, Toda T, Ohgushi H (2007) Osteogenic effect of hyaluronic acid sodium salt in the pores of a hydroxyapatite scaffold. Mater Sci Eng C 27:220–226