Effects of Silicon on Osteoblast Activity and Bone Mineralization of MC3T3-E1 Cells

被引:0
作者
Eun-Jin Kim
So-Young Bu
Mi-Kyung Sung
Mi-Kyeong Choi
机构
[1] Kongju National University,Division of Food Science
[2] Kyungil University,Division of Food Science
[3] Sookmyung Women’s University,Department of Food Science and Nutrition
来源
Biological Trace Element Research | 2013年 / 152卷
关键词
Silicon; Proliferation; Osteoblast; Mineralization; Gene expression;
D O I
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中图分类号
学科分类号
摘要
Previous studies have reported that dietary silicon (Si) intake is positively associated with bone health including bone mineral density. Although the amount of Si intake is high among trace elements in humans, how dietary Si affects bone formation at the cellular level is not well addressed. The purpose of this study was to investigate the role of Si in osteoblast activity and bone mineralization. MC3T3-E1 was cultured as mature osteoblasts and treated with sodium metasilicate (0, 1, 5, 10, 25, 50, and 100 μM) as a source of Si. After 7 days of treatment, 5 and 10 μM of sodium metasilicate significantly increased intracellular alkaline phosphatase activity (p < 0.05) when compared to the control. Additionally, all doses of sodium metasilicate (1, 5, 10, 25, 50, and 100 μM) increased mineralized nodule formation at 14 days of differentiation as evidenced by increased Alizarin Red S staining. In the analysis of gene expression, 50 μM of sodium metasilicate upregulated type I collagen (COL-I) compared to the control group. However, the increase of COL-I gene expression as a result of treatment with 1, 10, 25, and 100 μM of sodium metasilicate did not reach statistical significance. mRNA expression of insulin-like growth factor-I and receptor activator of NF-κB ligand was not significantly changed at any dose of sodium metasilicate (0, 1, 5, 10, 25, 50, and 100 μM). In light of the results, we conclude that Si has a positive effect on bone metabolism by enhancing osteoblast mineralization activity.
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页码:105 / 112
页数:7
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共 170 条
  • [11] Schwarz K(2006)Reductions in degree of mineralization and enzymatic collagen cross-links and increases in glycation-induced pentosidine in the femoral neck cortex in cases of femoral neck fracture Osteoporos Int 17 986-995
  • [12] Rodan GA(2011)Diseases affecting bone quality: beyond osteoporosis Clin Orthop Relat Res 469 2194-2206
  • [13] Boyce BF(2004)Cell lines and primary cell cultures in the study of bone cell biology Mol Cell Endocrinol 228 79-102
  • [14] Rosenberg E(1983)In vitro differentiation and calcification in a new clonal osteogenic cell-line derived from newborn mouse calvaria J Cell Biol 96 191-198
  • [15] Papp AE(2008)Increased longitudinal growth in rats on a silicon-depleted diet Bone 43 596-606
  • [16] Duong le T(2007)The use of Alamar Blue assay for quantitative analysis of viability, migration and invasion of choriocarcinoma cells Hum Reprod 22 1304-1309
  • [17] Canalis E(1985)Measurement of protein using bicinchoninic acid Anal Biochem 150 76-85
  • [18] Centrella M(1993)Effects of silicon, fluoride, etidronate and magnesium on bone mineral density: a retrospective study Magnes Res 6 247-249
  • [19] Burch W(2012)Dietary silicon interacts with oestrogen to influence bone health: evidence from the Aberdeen Prospective Osteoporosis Screening Study Bone 50 681-687
  • [20] Mccarthy TL(2000)Effect of silicon supplement on osteopenia induced by ovariectomy in rats Calcif Tissue Int 66 53-55