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PUBMED FOR HANDHELDS

Journal Abstract Search


608 related items for PubMed ID: 27827938

  • 21. Unveiling the Potential of Ultrasonic-Assisted Ethanol Extract from Sargassum horneri in Inhibiting Tyrosinase Activity and Melanin Production in B16F10 Murine Melanocytes.
    Kirindage KGIS, Jayasinghe AMK, Ko CI, Ahn YS, Heo SJ, Oh JY, Kim EA, Cha SH, Ahn G.
    Front Biosci (Landmark Ed); 2024 May 20; 29(5):194. PubMed ID: 38812330
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  • 22. Baicalin-induced Akt activation decreases melanogenesis through downregulation of microphthalmia-associated transcription factor and tyrosinase.
    Jeong HS, Gu GE, Jo AR, Bang JS, Yun HY, Baek KJ, Kwon NS, Park KC, Kim DS.
    Eur J Pharmacol; 2015 Aug 15; 761():19-27. PubMed ID: 25934572
    [Abstract] [Full Text] [Related]

  • 23. β-Cryptoxanthin suppresses UVB-induced melanogenesis in mouse: involvement of the inhibition of prostaglandin E2 and melanocyte-stimulating hormone pathways.
    Shimoda H, Shan SJ, Tanaka J, Maoka T.
    J Pharm Pharmacol; 2012 Aug 15; 64(8):1165-76. PubMed ID: 22775220
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  • 24. Novel (1E,3E,5E)-1,6-bis(Substituted phenyl)hexa-1,3,5-triene Analogs Inhibit Melanogenesis in B16F10 Cells and Zebrafish.
    Oh J, Kim J, Jang JH, Lee S, Park CM, Kim WK, Kim JS.
    Int J Mol Sci; 2018 Apr 03; 19(4):. PubMed ID: 29614034
    [Abstract] [Full Text] [Related]

  • 25. Diethylstilbestrol enhances melanogenesis via cAMP-PKA-mediating up-regulation of tyrosinase and MITF in mouse B16 melanoma cells.
    Jian D, Jiang D, Su J, Chen W, Hu X, Kuang Y, Xie H, Li J, Chen X.
    Steroids; 2011 Nov 03; 76(12):1297-304. PubMed ID: 21745488
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  • 26. Anti-melanogenic effects of δ-tocotrienol are associated with tyrosinase-related proteins and MAPK signaling pathway in B16 melanoma cells.
    Ng LT, Lin LT, Chen CL, Chen HW, Wu SJ, Lin CC.
    Phytomedicine; 2014 Jun 15; 21(7):978-83. PubMed ID: 24680613
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  • 27. Curcumin inhibits melanogenesis in human melanocytes.
    Tu CX, Lin M, Lu SS, Qi XY, Zhang RX, Zhang YY.
    Phytother Res; 2012 Feb 15; 26(2):174-9. PubMed ID: 21584871
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  • 28. Dual hypopigmentary effects of punicalagin via the ERK and Akt pathways.
    Shin JS, Cho JH, Lee H, Jeong HS, Kim MK, Yun HY, Kwon NS, Kim DS.
    Biomed Pharmacother; 2017 Aug 15; 92():122-127. PubMed ID: 28535415
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  • 29. Inhibition of melanogenesis by piceid isolated from Polygonum cuspidatum.
    Jeong ET, Jin MH, Kim MS, Chang YH, Park SG.
    Arch Pharm Res; 2010 Sep 15; 33(9):1331-8. PubMed ID: 20945131
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  • 30. Partially purified components of Nardostachys chinensis suppress melanin synthesis through ERK and Akt signaling pathway with cAMP down-regulation in B16F10 cells.
    Jang JY, Kim HN, Kim YR, Choi WY, Choi YH, Shin HK, Choi BT.
    J Ethnopharmacol; 2011 Oct 11; 137(3):1207-14. PubMed ID: 21816215
    [Abstract] [Full Text] [Related]

  • 31. Afzelin positively regulates melanogenesis through the p38 MAPK pathway.
    Jung E, Kim JH, Kim MO, Jang S, Kang M, Oh SW, Nho YH, Kang SH, Kim MH, Park SH, Lee J.
    Chem Biol Interact; 2016 Jul 25; 254():167-72. PubMed ID: 27287415
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  • 32. Ov-16 [4-(3,4-dihydroxybenzoyloxymethyl)phenyl-O-β-D-glucopyranoside] inhibits melanin synthesis by regulating expressions of melanogenesis-regulated gene and protein.
    Liang CH.
    Exp Dermatol; 2011 Sep 25; 20(9):743-8. PubMed ID: 21672031
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  • 33. Anti-melanogenic effects of resveratryl triglycolate, a novel hybrid compound derived by esterification of resveratrol with glycolic acid.
    Park S, Seok JK, Kwak JY, Choi YH, Hong SS, Suh HJ, Park W, Boo YC.
    Arch Dermatol Res; 2016 Jul 25; 308(5):325-34. PubMed ID: 27059716
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  • 34. Sesamol decreases melanin biosynthesis in melanocyte cells and zebrafish: Possible involvement of MITF via the intracellular cAMP and p38/JNK signalling pathways.
    Baek SH, Lee SH.
    Exp Dermatol; 2015 Oct 25; 24(10):761-6. PubMed ID: 26010596
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  • 35. Kazinol U inhibits melanogenesis through the inhibition of tyrosinase-related proteins via AMP kinase activation.
    Lim J, Nam S, Jeong JH, Kim MJ, Yang Y, Lee MS, Lee HG, Ryu JH, Lim JS.
    Br J Pharmacol; 2019 Mar 25; 176(5):737-750. PubMed ID: 30579288
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  • 36. An inhibitory mechanism of action of a novel syringic-acid derivative on α-melanocyte-stimulating hormone (α-MSH)-induced melanogenesis.
    Jeong YJ, Lee JY, Park J, Park SN.
    Life Sci; 2017 Dec 15; 191():52-58. PubMed ID: 28993145
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  • 37. p44/42 MAPK signaling is a prime target activated by phenylethyl resorcinol in its anti-melanogenic action.
    Kang M, Park SH, Park SJ, Oh SW, Yoo JA, Kwon K, Kim J, Yu E, Cho JY, Lee J.
    Phytomedicine; 2019 May 15; 58():152877. PubMed ID: 30849679
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  • 38. Aqueous fraction from Cuscuta japonica seed suppresses melanin synthesis through inhibition of the p38 mitogen-activated protein kinase signaling pathway in B16F10 cells.
    Jang JY, Kim HN, Kim YR, Choi YH, Kim BW, Shin HK, Choi BT.
    J Ethnopharmacol; 2012 May 07; 141(1):338-44. PubMed ID: 22414478
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  • 39. Sargaquinoic acid ameliorates hyperpigmentation through cAMP and ERK-mediated downregulation of MITF in α-MSH-stimulated B16F10 cells.
    Azam MS, Kwon M, Choi J, Kim HR.
    Biomed Pharmacother; 2018 Aug 07; 104():582-589. PubMed ID: 29803170
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  • 40. NDRG2 gene expression in B16F10 melanoma cells restrains melanogenesis via inhibition of Mitf expression.
    Kim A, Yang Y, Lee MS, Yoo YD, Lee HG, Lim JS.
    Pigment Cell Melanoma Res; 2008 Dec 07; 21(6):653-64. PubMed ID: 19067970
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