EURYCOMA LONGIFOLIA, A MALAYSIAN MEDICINAL HERB, SIGNIFICANTLY UPREGULATES PROLIFERATION AND DIFFERENTIATION IN PRE-OSTEOBLASTS (MC3T3-E1): AN IN VITRO MODEL

Authors

  • Hnin Ei Thu Department of Pharmacology, Faculty of Medicine, Universiti Kebangsaan Malaysia (The National University of Malaysia), Jalan Yaacob Latif 56000, Cheras, Malaysia
  • Isa Naina Mohamed Department of Pharmacology, Faculty of Medicine, Universiti Kebangsaan Malaysia (The National University of Malaysia), Jalan Yaacob Latif 56000, Cheras, Malaysia
  • Zahid Hussain Department of Pharmaceutics, Faculty of Pharmacy, Universiti Teknologi MARA, Puncak Alam Campus, Bandar Puncak Alam 42300, Selangor, Malaysia
  • Norazlina Mohamed Department of Pharmacology, Faculty of Medicine, Universiti Kebangsaan Malaysia (The National University of Malaysia), Jalan Yaacob Latif 56000, Cheras, Malaysia
  • Ahmad Nazrun Shuid Department of Pharmacology, Faculty of Medicine, Universiti Kebangsaan Malaysia (The National University of Malaysia), Jalan Yaacob Latif 56000, Cheras, Malaysia

DOI:

https://doi.org/10.22159/ijpps.2016v8i11.14518

Keywords:

Eurycoma longifolia, Androgen-deficient osteoporosis, Nil, Cell proliferation, Collagen deposition, Mineralization

Abstract

Objective: Eurycoma longifolia (EL), a well-recognized Malaysian medicinal herb, has gained widespread popularity due to its ability to protect against bone calcium loss in androgen-deficient osteoporosis. Nevertheless numerous animal studies have proved the bone protective effect of EL; however, the exact mechanism is not well-explained yet. Thus, the present study was aimed to explore the in vitro basis of bone protective effects of EL by using mouse pre-osteoblast cell line (MC3T3-E1).

Methods: The cytotoxicity and proliferative potential of EL were evaluated by lactate dehydrogenase (LDH) and cell counting methods. Despite cell growth, the ability of EL to promote osteogenic differentiation of bone-forming cells was assessed by quantifying collagen (early differentiation marker) and calcium (late differentiation marker) in EL-treated bone forming cells.

Results: Resulting data obtained from dose optimization study revealed that EL at 5 to 50 µg/ml concentration showed marked effects in significantly promoting cell growth in MC3T3-E1 cells. As such, resulting data also demonstrated the superior potential of EL in up regulating collagen synthesis and mineralization (calcium deposition) in MC3T3-E1 cells at 25 µg/ml, in comparison to untreated (negative control) and dihydrotestosterone (5α-DHT)-treated cells (positive control).

Conclusion: These pronounced effects of EL on osteoblasts provide an in vitro basis for the bone protective potential of EL and thus can be considered as an alternative regimen for the treatment of androgen-deficient male osteoporosis. 

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References

Dennison E, Mohamed MA, Cooper C. Epidemiology of osteoporosis. Clin Rheum Dis 2006;32:617–29.

Lee YS, Choi EM. Costunolide stimulates the function of osteoblastic MC3T3-E1 cells. Int Immunopharmacol 2011;11:712–8.

Miao Q, Li JG, Miao S, Hu N, Zhang J, Zhang S, et al. The bone-protective effect of Genistein in the animal model of bilateral ovariectomy: roles of phytoestrogens and PTH/PTHR1 against postmenopausal osteoporosis. Int J Mol Sci 2012;13:56–70.

Leder BZ, LeBlanc KM, Schoenfeld DA, Eastell R, Finkelstein JS. Differential effects of androgens and estrogens on bone turnover in normal men. J Clin Endocrinol Metab 2003;88:204–10.

Raisz LG. Pathogenesis of osteoporosis: concepts, conflicts, and prospects. J Clin Invest 2005;115:3318–25.

Lips P. Vitamin D physiology. Prog Biophys Mol Biol 2006;92:4–8.

Kaunitz AM, Mcclung MR, Feldman RG. Post-menopausal osteoporosis: fracture risk and prevention. J Farm Pract 2009;58:S1-S6.

Bland R. Steroid hormone receptor expression and action in bone. Clin Sci (Lond) 2000;98:217–40.

Compston JE. Sex steroids and bone. Physiol Rev 2001;81:419–47.

Favus MJ. Bisphosphonates for osteoporosis. N Engl J Med 2010;363:2027-35.

Hou JM, Xue Y, Lin QM. Bovine lactoferrin improves bone mass and microstructure in ovariectomized rats via OPG/RANKL/RANK pathway. Acta Pharmacol Sin 2012;33:1277–84.

Jordan N, Barry M, Murphy E. Comparative effects of antiresorptive agents on bone mineral density and bone turnover in postmenopausal women. Clin Interventions Aging 2006;1:377–87.

Vanderschueren D, Vandenput L, Boonen S, Lindberg MK, Bouillon R, Ohlsson C. Androgens and bone. Endocr Rev 2004;25:389-425.

Ang HH, Cheang HS. Effects of Eurycoma longifolia Jack on laevator ani muscle in both uncastrated and testosterone-stimulated castrated intact male rats. Arch Pharm Res 2001;24:437–40.

Malviya N, Jain S, Gupta VB, Vyas S. Recent studies on aphrodisiac herbs for the management of male sexual dysfunction-a review. Acta Pol Pharm 2011;68:3–8.

Varghese CP, Ambrose C, Jin SC, Lim YJ. Antioxidant and anti-inflammatory activity of Eurycoma Longifolia Jack, a traditional medicinal plant in Malaysia. Int J Pharm Sci Nanotechnol 2012;5:1875–8.

Shuid AN, El-arabi E, Effendy NM, Razak HS, Muhammad N, Mohamed N, et al. Eurycoma longifolia upregulates osteoprotegerin gene expression in androgen-deficient osteoporosis rat model. BMC Complementary Altern Med 2012;12:152.

Liu DD, Zhang JC, Yi CQ. The effects of gold nanoparticles on the proliferation, differentiation, and mineralization function of MC3T3-E1 cells in vitro. Chin Sci Bull 2010;11:1013–9.

Schroder HC, Kurz L, Muller WE, Lorenz B. Polyphosphate in bone. Biochemistry 2000;65:296-303.

Lynch M, Stein JL, Stein GS, Lian J. The influence of type I collagen on the development and maintenance of the osteoblastic phenotype in primary and passaged rat calvarial osteoblasts: modification of expression of genes supporting cell growth, adhesion and extracellular matrix mineralization. Exp Cell Res 1995;216:35–45.

Takeuchi Y, Nakayama K, Matsumoto T. Differentiation and cell surface expression of transforming growth factor-beta receptors are regulated by interaction with matrix collagen in murine osteoblastic cycles. J Biol Chem 1996;271:3938–44.

Wang W, Olson D, Liang G, Franceschi RT, Li C, Wang B, et al. Collagen XXIV (Col24α1) promotes osteoblastic differentiation and mineralization through TGF-β/Smads signaling pathway. Int J Biol Sci 2012;8:1310–22.

Shiga M, Kapila YL, Zhang Q, Hayami T, Kapila S. Ascorbic acid induces collagenase-1 in human periodontal ligament cells but not in MC3T3-E1 osteoblast-like cells: potential association between collagenase expression and changes in alkaline phosphatase phenotype. J Bone Miner Res 2003;18:67–77.

Abiramasundari G, Sumalatha KR, Sreepriya M. Effects of Tinospora cordifolia (menispermaceae) on the proliferation, osteogenic differentiation and mineralization of osteoblast model systems in vitro. J Ethnopharmacol 2012;141:474–80.

Jaquiéry C, Schaeren S, Farhadi J, Mainil-Varlet P, Kunz C, Zeilhofer HF, et al. In vitro osteogenic differentiation and in vivo bone-forming capacity of human isogenic jaw periosteal cells and bone marrow stromal cells. Ann Surg 2005;242:859–67.

Hoemann CD, El-Gabalawy H, McKee MD. In vitro osteogenesis assays: Influence of the primary cell source on alkaline phosphatase activity and mineralization. Pathologic Biologie 2009;57:318–23.

Published

01-11-2016

How to Cite

Thu, H. E., I. N. Mohamed, Z. Hussain, N. Mohamed, and A. N. Shuid. “EURYCOMA LONGIFOLIA, A MALAYSIAN MEDICINAL HERB, SIGNIFICANTLY UPREGULATES PROLIFERATION AND DIFFERENTIATION IN PRE-OSTEOBLASTS (MC3T3-E1): AN IN VITRO MODEL”. International Journal of Pharmacy and Pharmaceutical Sciences, vol. 8, no. 11, Nov. 2016, pp. 199-04, doi:10.22159/ijpps.2016v8i11.14518.

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