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The Effects of a Mineral Supplement (Aquamin $F^{(R)}$) and Its Combination with Multi-Species Lactic Acid Bacteria (LAB) on Bone Accretion in an Ovariectomized Rat Model  

Lee, Hyun-Gi (R&D Center, Cellbiotech Co., Ltd.)
Lee, Tae-Hee (R&D Center, Cellbiotech Co., Ltd.)
Kim, Jung-Ha (Department of Family Medicine, Chung-Ang University Medical Center)
Seok, Ju-Won (Department of Nuclear Medicine, Chung-ang University Hospital)
Lee, Seung-Hoon (R&D Center, Cellbiotech Co., Ltd.)
Kim, Yong-Hwan (R&D Center, Cellbiotech Co., Ltd.)
Kim, Jin-Eung (R&D Center, Cellbiotech Co., Ltd.)
Chung, Myung-Jun (R&D Center, Cellbiotech Co., Ltd.)
Yeo, Moon-Hwan (R&D Center, Cellbiotech Co., Ltd.)
Abstract
Although an adequete intake of calcium (Ca) is recommended for the treatment and prevention of osteoporosis, the intake of Ca should be restricted because of its low rate of intestinal absorption. The purpose of this experiment was to identity the effect of the combined administration of Aquamin F (AQF) (a calcium agent) and lactic acid bacteria (LAB) on osteoporosis. Thirty ovariectomized (OVX) rats and six control rats were assigned to the following six groups, with six animals per group: sham Ca-deficient diet (Ca-D), OVX, LAB, AQF, and LAB-AQF. During the experiment, the body weight was measured; and after the experiment was completed, the serum biochemical analysis, the alkaline phosphatase, calcium, and inorganic phosphorus leves were measured. The tissue of the femur was stained and then scanned via CT. The body weight of the OVX group increased more significantly than that of the control group. The results of the bone mineral content (BMC), Bone mineral density (BMD), serum biochemical analysis and histological test on the femur epiphysis showed no difference between the OVX group and the LAB group, whereas the results of the AQF group were more significant than those of the OVX group. In particular, the LAB+AQF group showed more significant increases in the aforementioned results than the AQF group. This experiment showed that the combined administration of AQF and LAB in ovariectomized rats more significantly increased bone density than did a single administration of either AQF or LAB.
Keywords
Osteoporosis; Ovariectomy; Lactic acid bacteria; Aquamin F; Bone mineral density; Trabecular bone;
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1 Sarioglu M, Tuzun C, Unlu Z, Tikiz C, Taneli F, Uvanik BS. Comparison of the effect of alendronate and risedronate on bone mineral density and bone and turnover markers in postmenopausal osteoporesis. Rheumatol Int. 2006. 26: 195-200.   DOI   ScienceOn
2 Wronski TJ, Cintron M, Dann LM. Temporal relationship between bone loss and increased bone turnover in ovariectomized rats. Calcif Tissue Int. 1988.43: 179-183.   DOI   ScienceOn
3 Villa ML, Marcus R, Ramirez Delay R, Kelsey JL. Factors contributing to skeletal health of postmenopausal mexicanamerican women. J Bone Miner Res. 1995.10: 1233-1242.
4 Okasaki R, Inoue D, Shibata M, Saika M. Estrogen promotes early osteoblast differentiation and inhibits adipocyte differentiation in mouse bone marrow stroma cell lines that express estrogen receptor (ER) $\alpha$ or $\beta$. Endocrinology 2002. 143: 2349-2356.   DOI   ScienceOn
5 Weber P. The role of vitamins in the prevention of osteoporosis-a brief status report. Int J Vitam Nutr Res. 1999. 69: 194-197.   DOI
6 Whitney EN, Cataldo CB, Rolfed SR. Osteoporosis and calcium. understanding normal and clinical nutrition. 2002. 6th Ed: 420-423.
7 Women's Health Initiative Steering Committee. Effects of conjugated equine estrogen in Women's Health Initiative randomized controlled trial. JAMA. 2004 291: 1701-1712.   DOI   ScienceOn
8 Ross RK, Pagamm-Hill A, Mark TM, Henderson BE. Cardiovascular benefits of estrogen replacement therapy. Am J Obstet Gynecol. l989. 160: 1301-1306.   DOI   ScienceOn
9 Pacifici R. Estrogen, cytokines and pathogenesis of postmenopausal osteoporosis. J Bone Mine Res. 1996.8: 1043-1051.
10 Price PA, Pathermore JG, DOftos LJ. New biochemical marker for bone metabolism. J Clin Invest. 1980.66: 878-883.   DOI   ScienceOn
11 Takano-Yamamoto T, Rodam GA. Direct effects of 17$\beta$-estradiol on trabecular bone in ovarictomized rats. Proc Natl Acad Sci. 1990.87: 2172-2176.   DOI   ScienceOn
12 Turner RT, Vandersteenhoven JJ, Bell NH. The effects of ovariectomy and 17 beta-estradiol on cortical bone histomorphometry in growing rats. J Bone Miner Res. 1987. 2: 115-122.
13 Kalu DN. The ovariectomized rat model of postmenopausal bone loss. Bone Miner Res. 1991. 15: 175-191.   DOI   ScienceOn
14 Lee JW, Kim HJ, Jhee OH, Won HD, Yu YJ, Lee MH. Effects of alternative medicine extract on bone mineral density, bone strength and biochemical markers of bone metabolism in ovariectomized rats. Korean J Food Nut. 2005. 8: 72-80.   과학기술학회마을
15 Lee YB, Lee HJ, Kim KS, Lee JY, Nam SY, Cheon SH. Evaluation of the preventive effect of isoflavone extract on bone loss in ovariectomized rats. Biosci Biotechnol Biochem. 2004. 68: 1040-1045.   DOI   ScienceOn
16 Frestedt JL, Kuskowski MA, Zenk JL. A natural seaweed derived mineral supplement (Aquamin F) for knee osteoarthritis: a randomised, placebo controlled pilot study. Nutr J. 2009. 8: 7.   DOI
17 Hancock RD, Viola R. The use of micro-organisms for L-ascorbic acid production: current status and future perspectives. Appl Microbiol Biotechnol. 2001. 56: 567-576.   DOI   ScienceOn
18 Hill MJ. Intestinal flora and endogenous vitamin synthesis. Eur J Cancer Prev. 1997. 6(Suppl 1): 43-45.
19 Cashman KD. Prebiotics and calcium bioavailability. Curr Issues Intest Microbiol. 2003. 4: 21-32.
20 Lee EJ, Lee HM, Parle ES. Perception gap of calcium between postmenopausal women with osteoporosis and physicians. Korean Journal of Bone Metabolism 2009. 16: 53-58.
21 Crittenden RG, Martinez NR, Playne MJ. Synthesis and utilisation of folate by yoghurt starter cultures and probiotic bacteria. Int J Food Microbiol. 2003. 80: 217-222.   DOI   ScienceOn
22 Eriksen EF. Normal and pathological remodelling of human trabecular bone: three-dimensional reconstruction of the remodelling sequence in normals and metabolic bone disease. Endocrine Rev. 1986.7: 379-408.   DOI   ScienceOn
23 Ettinger MP. Aging bone and osteoporosis: strategies for preventing fractures in the elderly-arch. Intern Med. 2003. 163: 2237-2246.   DOI   ScienceOn
24 Balena R, Toolan BC, Shea M. The effects of 2-year treatment with the aminobis-phosphonate alendronate on bone metabolism, bone histomorphometry, and bone strength in ovariectomized nonhuman primate. J Clin Invest. 1993.92: 2577-2586.   DOI   ScienceOn
25 Brassart D, Vey E. Patient Cooperation Treaty. 1998: WO99/02170.
26 Byun JS, Rho SN, Park JS, Park HM. Effect of isoflavone supplementation on bone metabolism in ovariectomized rats at different ages. J Korean Soc Food Sci Nutr. 2005. 34: 1350-1356.   과학기술학회마을   DOI