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The Processed Radish Extract Melanogenesis in Humans and Induces Anti-Photoaging Effects in Ultraviolet B-Induced Hairless Mouse Model

  • Kim, Hyun-Kyoung (Department of Food Science and Engineering, Seowon University)
  • Received : 2019.10.31
  • Accepted : 2019.11.20
  • Published : 2019.12.31

Abstract

The radish skin and radish greens are an edible part of the radish. But they are removed before eating the radish and used as a byproduct or an animal feed material because of their tough and rough texture. Melanin is a pigment that gives colour to our skin. But increased production of melanin can turn into benign or malignant tumours. These days due to global warming, the amount of Ultra violet (UVB) rays has been extensively increased with sunlight. Due to this, a phenomenon called exogenous photo aging is widely observed for all skin colour and types. As a result of this phenomenon, a set of enzymes called matrix metalloproteinases (MMP's) that serves as degradation enzymes for extracellular matrix proteins mainly collagen is increased, causing depletion in collagen and resulting in early wrinkles formation. Therefore in our study we used the murine melanoma cell line B16/F10 to study the melanogenesis inhibition by Heated radish extract (HRE) in vitro and we used HRM-2 hair less mice exposed to artificial UVB for checking the efficacy of Heated radish extract in vivo. Furthermore, we prepared a 3% Heated radish extract (HRE) cream and checked its effects on human skin. Our results have clearly demonstrated that Heated radish extract (HRE) have potently suppressed the tyrosinase activity and melanin production in B16/F10 cells. It had also reduced the expression of components involved in melanin production pathway both transcriptionally and transitionally. In in vivo studies, HRE had potently suppressed the expression of MMP's and reduced the wrinkle formation and inhibited collagen degradation. Moreover, on human skin, ginseng cream increased the resilience, skin moisture and enhanced the skin tone. Therefore in light of these findings, we conclude that HRE is an excellent skin whitening and antiaging product.

Keywords

References

  1. J. S. Jung, J. Kwon, S. H. Jung, M. W. Lee, V. Mariappan, and J. S. Cha, “Impact of SV40 T antigen on two multiple fission microalgae species Scenedesmus quadricauda and chlorella vulgaris,” International Journal of Advanced Smart Convergence(IJASC), Vol. 6, No. 1, pp. 82-88, March 2017. DOI: https://dx.doi.org/10.7236/IJASC.2017.6.1.82.
  2. H. J. Jeon, J. Hafeez, A. Hamacher, S. Lee, and S. C. Kwon, “A study on the quality of photometric scanning under variable illumination conditions,” International Journal of advanced smart convergence(IJASC), Vol. 6, No. 4, pp. 88-95, June 2017. DOI: http://dx.doi.org/10.7236/IJASC.2017.6.4.13.
  3. H. K. Kim, "Physiological functionalities and anti-oxidant activity of heated radish extract", International Journal of advanced smart convergence(IJASC), Vol. 7, No. 2, pp. 38-46, June 2018. DOI: https://dx.doi.org/10.7236/IJASC.2018.7.2.38.
  4. M. Brenner, and V.J. Hearing, “The protective role of melanin against UV damage in human skin,” Photochem Photobiol, Vol. 84, No. 3, pp. 539-549, May 2008. DOI: https://dx.doi.org/10.1111/j.1751-1097.2007.00225.x.
  5. D. S. Kim, Y. M. Jeong, I. K. Park, H. G. Hahn, H. K. Lee, S. B. Kwon, J. H. Jeong, S. J. Yang, V. D. Sohn, and K. C. Park, "A new 2-imino-1,3-thiazoline derivative, KHG22394, inhibits melanin synthesis in mouse B16 melanoma cells," Biol Pharm Bull, Vol. 30, No. 1, pp. 180-183, January 2007. DOI: https://dx.doi.org/10.1248/bpb.30.180.
  6. D. S. Kim, S. Y. Kim, Y. G, Choi, S. B. Kwon, M. K. Kim, et al., "Inhibitory effects of 4-n-butylresorcinol on tyrosinase activity and melanin synthesis," Biol Pharm Bull, Vol. 28, No. 12, pp. 2216-2219. Dectember 2005. DOI: https://dx.doi.org/10.1248/ppb.28.2216.
  7. H. R. Kim, H. E. Kim, B. J. Jung, G. E. You, S. J. Jang and P. K, Chung, "Lipoteichoic acid isolated from Lactobacillus plantarum inhibits melanogenesis in B16F10 mouse melanoma cells," Mol Cells, Vol. 38, No. 2, pp. 163-170. January 2015. https://doi.org/10.14348/molcells.2015.2263
  8. J. Cabanes, S. Chazarra, and F. Garcia-Carmona, “Kojic acid, a cosmetic skin whitening agent, is a slowbinding inhibitor of catecholase activity of tyrosinase,” J Pharm Pharmacol, Vol. 46, No. 12, pp. 982-985, 1994. DOI: https://dx.doi.org/10.12691/jfnr-2-10-8.
  9. D. L. Bissett, D. P. Hannon, and T.V. Orr, "An animal model of solar-aged skin: histological, physical, and visible changes in UV-irradiated hairless mouse skin," Photochem Photobiol, Vol. 46, No. 3, pp. 367-78. 1987. DOI: https://dx.doi.org/10.1111/j.1751-1097-1987.tb04783.x.
  10. R. D. Cardiff, C. H. Miller, and R. J. Munn, “Manual hematoxylin and eosin staining of mouse tissue sections,” Cold Spring Harb Protoc, Vol. 2014, No. 6, pp. 655-658, June 2014.
  11. J. Y. Chang, and H. P. Kessler, “Masson trichrome stain helps differentiate myofibroma from smooth muscle lesions in the head and neck region,” J Formos Med Assoc, Vol. 107, No. 10, pp. 767-773, October 2008. DOI: https://dx.doi.org/10.1016/s0929-6646(08)60189-8.
  12. K. Ohguchi, et al., “Gnetol as a potent tyrosinase inhibitor from genus Gnetum,” Biosci Biotechnol Biochem, Vol. 67, No. 3, pp. 663-665, March 2003. DOI: https://dx.doi.org/10.1271/bbb.67.663.
  13. T. Yokota, et al., “The inhibitory effect of glabridin from licorice extracts on melanogenesis and inflammation,” Pigment Cell Res, Vol. 11, No. 6, pp. 355-361, December 1998. https://doi.org/10.1111/j.1600-0749.1998.tb00494.x
  14. A. Jablonska-Trypuc, M. Matejczyk, and S. Rosochacki, “Matrix metalloproteinases (MMPs), the main extracellular matrix (ECM) enzymes in collagen degradation, as a target for anticancer drugs,” J Enzyme Inhib Med Chem, Vol. 31, No. sup1, pp. 177-183, March 2016. DOI: https://dx.doi.org/10.3109/14756366.2016.1161620.
  15. W. Englaro, et al., "Inhibition of the mitogen-activated protein kinase pathway triggers B16 melanoma cell differentiation," Journal of Biological Chemistry, Vol. 273, No. 16, pp. 9966-9970, April 1998. DOI: https://dx.doi.org/10.1074/jbc.273.16.9966.
  16. I. Tam, and K. Stepien,"Melanocytes-immunocompetent pigmented cells," Postepy Dermatologii i Alergologii, Vol. 24, No. 4, pp. 188-193, January 2007.
  17. H. J. Lee, W. J Lee, S. E, Chang, G. Y, Lee, "Hesperidin, A Popular Antioxidant Inhibits Melanogenesis via Erk1/2 Mediated MITF Degradation," Int J Mol Sci, 16(8): p. 18384-18395, August 2015. DOI: https://dx.doi.org/10.3390/ijms160818384.
  18. Y. H. Hu, X. Liu, Y. L. Jia, Y. J. Guo, Q. Wang, Q. X. Chen, “Inhibitory kinetics of chlorocinnamic acids on mushroom tyrosinase,” Journal of bioengineering, Vol. 117, No. 2, pp. 142-146, August 2014. DOI: https://dx.doi.org/10.1016/j.jbiosc.2013.07.002.
  19. Y. Masamoto, H. Ando, Y. Murata, Y. Shimoishi, M. Tadam, K. Takahata, "Mushroom tyrosinase inhibitory activity of esculetin isolated from seeds of Euphorbia lathyris L," Biosci Biotechnol Biochem, Vol. 67, No. 3, pp. 631-634. March 2003. DOI: https://dx.doi.org/10.1271/bbb.67.631.
  20. M. Wu, T. J. Hemesath, C. M. Takemoto, M. A. Horstmann, A. G. Wells, E. R. Price, D. Z. Fisher, D. E. Fisher, "c-Kit triggers dual phosphorylations, which couple activation and degradation of the essential melanocyte factor Mi," Genes Dev, Vol. 14, No. 3, pp. 301-312. February 2000.
  21. D. J.Tobin, "Introduction to skin aging," Journal of tissue viability, Vol. 26, No. 1, pp. 37-46. February 2017. DOI: https://dx.doi.org/10.1061/j.jtv.2016.03.002-Epub.2016 Mar 14.
  22. Y. R. Helfrich, D. L. Sachs, and J. J. Voorhees, "Overview of skin aging and photoaging," Dermatol Nurs, Vol. 20, No. 3, pp. 177-183; quiz 184. 2008.
  23. G. J. Fisher, et al., "Mechanisms of photoaging and chronological skin aging," Archives of dermatology, Vol. 138, No. 11, pp. 1462-1470. November 2002. DOI: https://dx.doi.org/10.1001/archderm.138.11.1462.
  24. M. El-Domyati,et al., “Intrinsic aging vs. photoaging: a comparative histopathological, immunohistochemical, and ultrastructural study of skin,” Experimental dermatology, Vol. 11, No. 5, pp. 398-405, October 2002. https://doi.org/10.1034/j.1600-0625.2002.110502.x
  25. M. Brennan, et al., "Matrix metalloproteinase-1 is the major collagenolytic enzyme responsible for collagen damage in UV-irradiated human skin," Photochemistry and photobiology, Vol. 78, No. 1, pp. 43-48, 2003. DOI: https://dx.doi.org/10.1562/0031-8655(2003)078<0043;mmitmc>20.Co:2.
  26. T. Quan, et al., "Matrix-degrading metalloproteinases in photoaging," J Investig Dermatol Symp Proc, Vol. 14, No. 1, pp. 20-24.August 2009. DOI: https://dx.doi.org/10.1038/jidsymp.2009.8.
  27. J. M. Gillbro, and M. J. Olsson, “The melanogenesis and mechanisms of skin-lightening agents--existing and new approaches,” Int J Cosmet Sci, Vol. 33, No. 3, pp. 210-221, June 2011. DOI: https://dx.doi.org/10.1111/j.1468-2494.2010.00616.x.Epub 2011 Jan 25.
  28. C. Romero-Graillet, et al., “Nitric oxide produced by ultraviolet-irradiated keratinocytes stimulates melanogenesis,” Journal of Clinical Investigation, Vol. 99, No. 4, pp. 635-642, February 1997. https://doi.org/10.1172/JCI119206
  29. Y. H. Wakabayashi, Nakajima, and G. Imokawa, "Abrogating effect of N-linked carbohydrate modifiers on the stem cell factor and endothelin-1-stimulated epidermal pigmentation in human epidermal equivalents," Journal of dermatological science, Vol. 69, No. 3, pp. 215-228. December 2013. DOI: https://dx.doi.org/10.1007/s00403-012-1248-y.Epub 2012 May.26.