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An examination of natural and synthetic tyrosinase inhibitors

Year 2024, Volume: 3 Issue: 3, 114 - 126, 31.12.2024
https://doi.org/10.55971/EJLS.1498811

Abstract

The enzyme responsible for this process is known as tyrosinase, which is sometimes referred to as polyphenol oxidase, monophenol oxidase, phenolase, or catecholase. It is present in humans, plants, microbes, and fungi. Melanin pigments, found in both plants and animals, require this enzyme as an essential component. Tyrosinase is present in animal creatures, particularly in the pigments of the skin, hair, and eyes. Tyrosinase can cause darkening in foods that is unrelated to their inherent color. Beverages such as fruit juice and wine may experience a decline in appearance and flavor, as well as the occurrence of turbidity and precipitation. The unwanted phenomenon of browning in fruits and vegetables, which is frequently caused by enzymatic processes, needs to be avoided. Tyrosinase enzyme inhibitors are employed to hinder the catalytic oxidations that lead to browning by the tyrosinase enzyme. Currently, these basic ingredients are commonly found in skin whitening solutions, particularly in the field of cosmetics. In addition, tyrosinase inhibitors have practical applications in the treatment of skin problems associated with melanin pigmentation. Furthermore, tyrosinase inhibitors competitively and reversibly hinder the activity of human melanocyte tyrosinase, hence impeding the production of melanin.
Numerous substances possess the ability to hinder the activity of the enzyme tyrosinase. Ongoing studies are being conducted on several derivatized compounds to increase inhibition. This article explores the inhibitory effects of many compounds, including kojic acid, azelaic acid, flavonoids, arbutin-deoxyarbutin, curcumin and its derivatives, and copper chelators, on the enzyme tyrosinase.

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Year 2024, Volume: 3 Issue: 3, 114 - 126, 31.12.2024
https://doi.org/10.55971/EJLS.1498811

Abstract

References

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  • Zou C, Huang W, Zhao G, Wan X, Hu X, Jin Y, et al. Determination of the Bridging Ligand in the Active Site of Tyrosinase. Molecules (2017);22:1836. https://doi.org/10.3390/molecules22111836.
  • Loizzo MR, Tundis R, Menichini F. Natural and Synthetic Tyrosinase Inhibitors as Antibrowning Agents: An Update. Compr Rev Food Sci Food Saf (2012);11:378–98. https://doi.org/10.1111/j.1541-4337.2012.00191.x.
  • Zolghadri S, Bahrami A, Hassan Khan MT, Munoz-Munoz J, Garcia-Molina F, Garcia-Canovas F, et al. A comprehensive review on tyrosinase inhibitors. J Enzyme Inhib Med Chem (2019);34:279–309. https://doi.org/10.1080/14756366.2018.1545767.
  • Kim Y-J, Uyama H. Tyrosinase inhibitors from natural and synthetic sources: structure, inhibition mechanism and perspective for the future. Cell Mol Life Sci (2005);62:1707–23. https://doi.org/10.1007/s00018-005-5054-y.
  • Baurin N, Arnoult E, Scior T, Do QT, Bernard P. Preliminary screening of some tropical plants for anti-tyrosinase activity. J Ethnopharmacol. (2002);82(2-3):155-8. doi: 10.1016/s0378-8741(02)00174-5. PMID: 12241990.
  • Puspaningtyas AR. Evaluation of the effect of red guava (Psidium guajava) fruit extract on tyrosinase (EC 1.14.18.1) activity by spectrophotometry. Int Curr Pharm J (2012);1:92–7. https://doi.org/10.3329/icpj.v1i5.10280.
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  • He M, Zhang J, Li N, Chen L, He Y, Peng Z, et al. Synthesis, anti-browning effect and mechanism research of kojic acid-coumarin derivatives as anti-tyrosinase inhibitors. Food Chem X (2024);21:101128. https://doi.org/10.1016/j.fochx.2024.101128.
  • Hashemi SM, Department of Medicinal Chemistry and Pharmaceutical Sciences Research Center, Kojic acid-derived tyrosinase inhibitors: synthesis and bioactivity. Pharm Biomed Res (2015);1:1–17. https://doi.org/10.18869/acadpub.pbr.1.1.1.
  • Lee YS, Park JH, Kim MH, Seo SH, Kim HJ. Synthesis of Tyrosinase Inhibitory Kojic Acid Derivative. Arch Pharm (Weinheim) (2006);339:111–4. https://doi.org/10.1002/ardp.200500213.
  • Kim H, Choi J, Cho JK, Kim SY, Lee Y-S. Solid-phase synthesis of kojic acid-tripeptides and their tyrosinase inhibitory activity, storage stability, and toxicity. Bioorg Med Chem Lett (2004);14:2843–6. https://doi.org/10.1016/j.bmcl.2004.03.046.
  • Rezapour Niri D, Sayahi MH, Behrouz S, Moazzam A, Rasekh F, Tanideh N, et al. Design, synthesis, in vitro, and in silico evaluations of kojic acid derivatives linked to amino pyridine moiety as potent tyrosinase inhibitors. Heliyon (2023);9:e22009. https://doi.org/10.1016/j.heliyon.2023.e22009.
  • Noh J-M, Kwak S-Y, Seo H-S, Seo J-H, Kim B-G, Lee Y-S. Kojic acid–amino acid conjugates as tyrosinase inhibitors. Bioorg Med Chem Lett (2009);19:5586–9. https://doi.org/10.1016/j.bmcl.2009.08.041.
  • Peng Z, Wang G, He Y, Wang JJ, Zhao Y. Tyrosinase inhibitory mechanism and anti-browning properties of novel kojic acid derivatives bearing aromatic aldehyde moiety. Curr Res Food Sci (2023);6:100421. https://doi.org/10.1016/j.crfs.2022.100421.
  • Wang G, He M, Huang Y, Peng Z. Synthesis and biological evaluation of new kojic acid-1,3,4-oxadiazole hybrids as tyrosinase inhibitors and their application in the anti-browning of fresh-cut mushrooms. Food Chem (2023);409:135275. https://doi.org/10.1016/j.foodchem.2022.135275.
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There are 72 citations in total.

Details

Primary Language English
Subjects Pharmacology and Pharmaceutical Sciences (Other)
Journal Section Reviews
Authors

Gizem Demirdiş 0000-0003-1998-8605

Publication Date December 31, 2024
Submission Date June 10, 2024
Acceptance Date November 21, 2024
Published in Issue Year 2024 Volume: 3 Issue: 3

Cite

Vancouver Demirdiş G. An examination of natural and synthetic tyrosinase inhibitors. Eur J Life Sci. 2024;3(3):114-26.