| Literature DB >> 35480807 |
Rami J Obaid1, Ehsan Ullah Mughal2, Nafeesa Naeem2, Amina Sadiq3, Reem I Alsantali4, Rabab S Jassas5, Ziad Moussa6, Saleh A Ahmed1,7,8.
Abstract
Tyrosinase is a multifunctional glycosylated and copper-containing oxidase that is highly prevalent in plants and animals and plays a pivotal role in catalyzing the two key steps of melanogenesis: tyrosine's hydroxylation to dihydroxyphenylalanine (DOPA), and oxidation of the latter species to dopaquinone. Melanin guards against the destructive effects of ultraviolet radiation which is known to produce considerable pathological disorders such as skin cancer, among others. Moreover, the overproduction of melanin can create aesthetic problems along with serious disorders linked to hyperpigmented spots or patches on skin. Several skin-whitening products which reduce melanogenesis activity and alleviate hyperpigmentation are commercially available. A few of them, particularly those obtained from natural sources and that incorporate a phenolic scaffold, have been exploited in the cosmetic industry. In this context, synthetic tyrosinase inhibitors (TIs) with elevated efficacy and fewer side effects are direly needed in the pharmaceutical and cosmetic industries owing to their protective effect against pigmentation and dermatological disorders. Furthermore, the biological significance of the chromone skeleton and its associated medicinal and bioactive properties has drawn immense interest and inspired many researchers to design and develop novel anti-tyrosinase agents based on the flavonoid core (2-arylchromone). This review article is oriented to provide an insight and a deeper understanding of the tyrosinase inhibitory activity of an array of natural and bioinspired phenolic compounds with special emphasis on flavonoids to demonstrate how the position of ring substituents and their interaction with tyrosinase could be correlated with their effectiveness or lack thereof against inhibiting the enzyme. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35480807 PMCID: PMC9034236 DOI: 10.1039/d1ra03196a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Mechanism of skin pigmentation.
Fig. 2Catalytic cycle for the hydroxylation of monophenol and the conversion of o-diphenol to o-quinone by the tree types of tyrosinase, Eoxy, Emet, and Edeoxy.[24]
Fig. 3Molecular mechanism of tyrosinase suicide deactivation by oxidation of an o-diphenol substrate. The curly arrows showed that deprotonation results in the reduction of copper from bivalent to zero-valent form, and the elimination of an o-quinone and tyrosinase inactivation.[62]
Fig. 4Comparative SAR study of the most potent subclass (flavonol) among flavonoids with standard kojic acid. The green arrow indicates increased activity and the red arrow indicates decreased activity.
Structures of some mushroom tyrosinase inhibitors[36]
| Compound name | Compound structure | Source |
|---|---|---|
| Arbutin |
| Extracted from the dried leaves of bearberry plant in the genus |
| Tropolone |
| Isolated from |
| Kojic acid |
| Obtained from a few species of |
| Cuminaldehyde |
| Obtained from essential oils |
| Oxyresveratrol |
| Obtained from the extract of heartwood |
| Cupferron |
| Obtained from natural samples rich in organic matter |
|
|
| Obtained from pollens |
Fig. 5General structure of flavonoids and relevant pharmacophoric structural features.
Scheme 1Synthesis of some flavonoids from substituted 2′-hydroxychalcone.
Fig. 6Representative anti-tyrosinase scaffolds.
Fig. 7Various sub-classes of flavonoids.[89]
Chemical structures of natural anthocyanidins and IC50 values against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 1 | Malvidin |
| 45 |
|
| 2 | Peonidin |
| 22 |
|
| 3 | Pelargonidin |
| 78 |
|
| 4 | Haginin A |
| 5.0 |
|
| 5 | Delphinidin |
| 20.9 |
|
| 6 | 4-(8,8-Dimethyl-2 |
| 0.09 |
|
| 7 | Cyanidin-3- |
| 18.1 |
|
| 8 | Delphinidin-3- |
| 7.5 |
|
|
| Kojic acid |
| 59.3 |
|
Chemical structures of natural aurones and IC50 values against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 9 | 4,6,4′-Trihydroxyaurone |
| 38 |
|
| 10 | Altilisin J |
| 98.5 |
|
| 11 | Aurone |
| 12.3 |
|
| 12 | Altilisin H |
| 85 |
|
| 13 | 7-Hydroxy-2-(4-hydroxybenzylidene) benzofuran-3(2 |
| 31.7 |
|
| 14 | 5-Hydroxy-2-(4-hydroxybenzylidene) benzofuran-3(2 |
| 38.4 |
|
| 15 | Altilisin I |
| 88.9 |
|
| 16 | 2-Hydroxypyridine |
| 1.5 |
|
|
| Kojic acid |
| 167 |
|
Chemical structures of synthetic aurones and IC50 values against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 17 | 2-(2,4-Dihydroxybenzylidene)-5-hydroxybenzofuran-3(2 |
| >1000 |
|
| 18 | 2-(2,4-Dihydroxybenzylidene)-6-hydroxybenzofuran-3(2 |
| >1000 |
|
| 19 | 4-Hydroxy-2-(4-hydroxybenzylidene)benzofuran-3(2 |
| 31.7 |
|
| 20 | 2-(2,4-Dihydroxybenzylidene)-4,6-dihydroxybenzofuran-3(2 |
| 300 |
|
| 21 | 4,6-Dihydroxy-2-(4-hydroxybenzylidene)benzofuran-3(2 |
| 38.0 |
|
| 22 | 6-Hydroxy-2-(4-hydroxybenzylidene)benzofuran-3(2 |
| 38.4 |
|
| 23 | 2-(2,4-Dihydroxybenzylidene)-4-hydroxybenzofuran-3(2 |
| 9 |
|
|
| Kojic acid |
| 280 |
|
Chemical structures of natural chalcones and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 24 | 2,4,2′,4′-Tetrahydroxy-3-(3-methyl-2-butenyl)-chalcone (TMBC) |
| 0.95 |
|
| 25 | 2,2′,4,4′-Tetrahydroxychalcone |
| 0.07 |
|
| 26 | Isoliquiritigenin |
| 4.85 |
|
| 27 | Kuwanon J |
| 0.17 |
|
| 28 | Kuraridin |
| 0.6 |
|
| 29 | Isobavachromene |
| 15.8 |
|
| 30 | Morachalcone A |
| 0.14 |
|
| 31 | 4′- |
| 48.8 |
|
| 32 | 4'-( |
| 23.3 |
|
| 33 | Isovabachalcone |
| 12.3 |
|
| 34 | Artocarmitin C |
| 20.6 |
|
| 35 | Flavokawain B |
| 14.38 |
|
| 36 | Flavokawain A |
| 14.26 |
|
| 37 | Xanthohumol |
| 15.4 |
|
| 38 | 4′- |
| 34.3 |
|
| 39 | Xanthohumol C |
| 41.3 |
|
| 40 | Xanthoumol B |
| 46.7 |
|
| 41 | Flavokawain C |
| 106.7 |
|
|
| Kojic acid |
| 89.5 |
|
Chemical structures of synthetic chalcones and IC50 values against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 42 | 1-(2-Hydroxy-6-propoxyphenyl)-3-(4-(hydroxymethyl)phenyl)prop-2-en-1-one |
| 26.8 |
|
| 43 | 3-(3-Amino-4-methoxyphenyl)-1-(2-hydroxyphenyl)prop-2-en-1-one |
| 9.75 |
|
| 44 | 1,3-Bis(2,4-dihydroxyphenyl) prop-2-en-1-one |
| 0.02 |
|
| 45 | 3-(4-Hydroxyphenyl)-1-phenyl prop-2-en-1-one |
| 21.8 |
|
| 46 | 3-(2,4-Dihydroxyphenyl)-1-(2,4,6-trihydroxyphenyl)prop-2-en-1-one |
| 17.6 |
|
| 47 | 3-(4-Amino-2-methoxyphenyl)-1-(2-hydroxyphenyl)prop-2-en-1-one |
| 7.82 |
|
| 48 | 1-(2,4-Dihydroxyphenyl)-3-(4-hydroxyphenyl)prop-2-en-1-one |
| 8.1 |
|
| 49 | 1-(2,4-Dihydroxyphenyl)-3-(3,4-dihydroxyphenyl)prop-2-en-1-one |
| 29.3 |
|
| 50 | 1-(1-(4-Methoxyphenyl)-3-phenylallylidene) thiosemicarbazide |
| 0.274 |
|
| 51 | 3-(3-Amino-4-methoxyphenyl)-1-(2-hydroxyphenyl)prop-2-en-1-one |
| 9.75 |
|
| 52 | 3-(2,4-Dihydroxyphenyl)-1-(3-hydroxynaphthalen-2-yl)prop-2-en-1-one |
| 114.4 |
|
| 53 | 3-(3,5-Dihydroxyphenyl)-1-(3-hydroxynaphthalen-2-yl)prop-2-en-1-one |
| 10.4 |
|
| 54 | 1-(3-Hydroxynaphthalen-2-yl)-3-(pyridin-3-yl)prop-2-en-1-one oxime |
| 12.22 |
|
| 55 | 1-(3-Hydroxynaphthalen-2-yl)-3-(pyridin-4-yl)prop-2-en-1-one oxime |
| 19.45 |
|
| 56 | 3-(4-(Dimethylamino) phenyl)-1-(2-hydroxy-4-methoxyphenyl)prop-2-en-1-one |
| 14.20 |
|
|
| Kojic acid |
| 57.9 |
|
Chemical structures of natural flavones and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 57 | Baicalein |
| 110 |
|
| 58 | Luteolin |
| 20.8 |
|
| 59 | Norartocarpetin |
| 1.2 |
|
| 60 | Apigenin |
| 17.3 |
|
| 61 | Tangeretin |
| 25 |
|
| 62 | Nobelitin |
| 29.8 |
|
| 63 | 6,7-Dihydroxy-2-phenyl-4 |
| 2.8 |
|
| 64 | 4′,7,8-Trihydroxyflavone |
| 10.31 |
|
|
| Kojic acid |
| 78 |
|
Chemical structures of synthetic flavones and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 65 | 5,7-Dibromo-2-(4-(dimethylamino)phenyl)-4 |
| 0.57 |
|
| 66 | 5,7-Dibromo-2-(4-nitrophenyl)-4 |
| 0.27 |
|
| 67 | 5,7-Dibromo-2-(3,4-dimethoxyphenyl)-4 |
| 0.49 |
|
| 68 | 5,7-Dibromo-2-(thiophen-2-yl)-4 |
| 0.68 |
|
| 69 | 5,7-Dibromo-2-(1 |
| 0.22 |
|
| 70 | 5,7-Dibromo-2-(naphthalen-1-yl)-4 |
| 3.41 |
|
| 71 | 4-(5,7-Dibromo-4-oxo-4 |
| 3.28 |
|
| 72 | 5,7-Dibromo-2-(3-nitrophenyl)-4 |
| 3.28 |
|
| 73 | 5,7-Dibromo-2-(furan-2-yl)-4 |
| 2.07 |
|
|
| Kojic acid |
| 1.79 |
|
Chemical structures of natural flavanols and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 74 | Dihydromyricetin |
| 849.88 |
|
| 75 | Taxifolin |
| 0.24 |
|
| 76 | Dihydromorin |
| 9.4 |
|
| 77 | Dihydroxykampherol |
| >200 |
|
| 78 | Broussoflavonol J |
| 9.29 |
|
| 79 | 3,5,7-Trihydroxy-2-(4-hydroxyphenyl)chroman-4-one |
| 25 |
|
| 80 | Chlorophorin |
| 6.6 |
|
| 81 | Proanthocyanidins |
| 55.01 |
|
| 82 | 4-(3,8-Diacetoxy-5-hydroxy-4-oxochroman-2-yl)-1,2-phenylene diacetate |
| >230 |
|
| 83 | 3,5,7-Trihydroxy-2-(4-hydroxyphenyl)chroman-4-one |
| >100 |
|
| 84 | 2-(3,4-Dihydroxyphenyl)-5,7-dihydroxy-3-methoxychroman-4-one |
| >300 |
|
| 85 | 4-(3,7-Diacetoxy-5-hydroxy-4-oxochroman-2-yl)-1,2-phenylene diacetate |
| >230 |
|
| 86 | 2-(2-Hydroxyphenyl)-3,5,7-trihydroxychroman-4-one |
| 25 |
|
| 87 | 2-(3,4-Dihydroxyphenyl)-3,5,7-trihydroxychroman-4-one |
| >300 |
|
| 88 | 2-(3,4-Dimethoxyphenyl)-3-hydroxy-5,7-dimethoxychroman-4-one |
| 75.8 |
|
| 89 | 2-(3,4-Dihydroxyphenyl)-3,5-dihydroxy-(7,2,3,4-trihydroxy-5-(hydroxymethyl)cyclohexyl)oxychroman-4-one |
| >200 |
|
| 90 | 3,5,7-Trihydroxy-2,7-hydroxy-2-(4-hydroxy-3-methoxyphenyl)-3-(hydroxymethyl)-2,3-dihydrobenzofuran-5-ylchroman-4-one |
| 28.8 |
|
|
| Kojic acid |
| 237 |
|
Chemical structures of natural isoflavones and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 91 | Daidzein |
| 17.50 |
|
| 92 | 7,3′,4′-Trihydroxyisoflavone |
| 52.3 |
|
| 93 | 7,8,4′-Trihydroxyisoflavone |
| 11.21 |
|
| 94 | 3,8-Dihydroxy-9-methoxy pterocarpan |
| 16.7 |
|
| 95 | 3′-Hydroxygenistein |
| 15.9 |
|
| 96 | 6-Hydroxydaidzein |
| 0.009 |
|
| 97 | Calycosin |
| 1.45 | 180 |
| 98 | Cajanin |
| 67.9 |
|
| 99 | Daidzein-7- |
| 22.2 |
|
| 100 | 5-Hydroxy-daidzein-7- |
| 4.39 |
|
| 101 | 7-( |
| 729 |
|
| 102 | (8,9)-Furanyl-pterocarpan-3-ol |
| 7.18 |
|
| 103 | Neorauflavane |
| 500 |
|
| 104 | 3′-Hydroxy-8-methoxy vestitol |
| 67.8 |
|
| 105 | Khrinone B |
| 54.0 |
|
| 106 | 7,8-Dihydroxy-3-(4-hydroxyphenyl)-4 |
| 45.8 |
|
| 107 | 7,8-Dihydroxy-3-(3-methoxyphenyl)-4 |
| 53.9 |
|
| 108 | 3-(3,4-Dihydroxyphenyl)-8-hydroxy-7-methyl-4 |
| 129.9 |
|
| 109 | 7,8-Dihydroxy-3-(3-hydroxyphenyl)-4 |
| 96.4 |
|
| 110 | 7,8-Dihydroxy-3-(4-methoxyphenyl)-4 |
| 50.9 |
|
| 111 | 7,8-Dihydroxy-3-(2-methoxyphenyl)-4 |
| 82.8 |
|
| 112 | 6,7-Dihydroxy-3-(4-methoxyphenyl)-4 |
| 8.1 |
|
| 113 | 6,7-Dihydroxy-3-(4-hydroxyphenyl)-4 |
| 15.6 |
|
| 114 | 5,7-Dihydroxy-3-(2-methoxyphenyl)-4 |
| 171.1 |
|
| 115 | 7-Hydroxy-3-(3-hydroxyphenyl)-4 |
| 110.9 |
|
| 116 | 3-(4-Hydroxyphenyl)-7-methyl-4 |
| 38.1 |
|
| 117 | 5,7-Dihydroxy-3-(4-methoxyphenyl)-4 |
| 141.3 |
|
| 118 | 6-Hydroxy-3-(4-hydroxyphenyl)-7,8-dimethyl-4 |
| 45.8 |
|
| 119 | 6-Hydroxy-3-(4-hydroxyphenyl)-7-methoxy-4 |
| 83.5 |
|
|
| Kojic acid |
| 89 |
|
Chemical structures of natural flavanones and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 120 | 5,5′,7-Trihydroxy-2′,4′-dimethoxy-6-methylflavanone |
| 44.74 |
|
| 121 | Streppogenin |
| 1.3 |
|
| 122 | 5,7,2′-Trihydroxy-5′-(1′′′,1′′′-dimethylallyl)-8-prenylflavanone |
| 27.5 |
|
| 123 | Liquiritigenin |
| 22.0 |
|
| 124 | Bavachinin |
| 143.9 |
|
| 125 | Corylifolin |
| 23.6 |
|
| 126 | Alpinetin |
| 450 |
|
| 127 | Delanin |
| 0.26 |
|
| 128 | 5,7,2′-Trihydroxy-8,3′-diprenylflavanone |
| 68.5 |
|
| 129 | 5,7,2′-Trihydroxy-5'-(1′′′,1′′′-dimethylallyl)-8-prenylflavanone |
| 27.5 |
|
| 130 | 2-(2,4-Dihydroxyphenyl)-7-hydroxychroman-4-one |
| 0.11 |
|
| 131 | 5,7-Dihydroxy-2-(4-hydroxyphenyl)-6-(3-methylbut-2-en-1-yl)chroman-4-one |
| 38.1 |
|
| 132 | 5,7-Dihydroxy-2-(2-hydroxy-4,6-dimethoxy phenyl)-6-methylchroman-4-one |
| 44.74 |
|
| 133 | 7-Hydroxy-2-(4-hydroxyphenyl)-5-methoxy-8-(3-methylbut-2-en-1-yl)chroman-4-one |
| 77.4 |
|
| 134 | 2-(2,4-Dihydroxyphenyl)-5-hydroxy-7-methoxychroman-4-one |
| 2.0 |
|
| 135 | 2-(2,4-Dihydroxyphenyl)-5,7-dihydroxychroman-4-one |
| 1.76 |
|
| 136 | 5,7-Dihydroxy-2-(4-hydroxy phenyl)chroman-4-one |
| >300 |
|
| 137 | (3,4-Dihydroxy-4-(hydroxymethyl)tetrahydrofuran-2-yl)oxy-(4,5-dihydroxy-6-(hydroxymethyl)tetrahydro-2H-pyran-2-yl)oxyphenyl-7-hydroxychroman-4-one |
| 88.91 |
|
| 138 | 5,7-Dihydroxy-2-phenyl chroman-4-one |
| >500 |
|
|
| Kojic acid |
| 310 |
|
Chemical structures of natural flavonols and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 139 | Quercitin |
| 10.73 |
|
| 140 | Kaempferol |
| 5.5 |
|
| 141 | Galangin |
| 3.55 |
|
| 142 | Rutin |
| 130 |
|
| 143 | 2-(3,4-Dihydroxyphenyl)-3,5,7-trihydroxy-4 |
| 53.4 |
|
| 144 | 2-(3,4-Dihydroxyphenyl)-3,5-dihydroxy-7-methoxy-4 |
| 72.5 |
|
| 145 | 6-Hydroxykaempferol |
| 124 |
|
| 146 | 6-Hydroxygalangin |
| 182 |
|
|
| Kojic acid |
| 318 |
|
Chemical structures of synthetic flavonols and IC50 values obtained against mushroom tyrosinase
| Compound no. | Compound name | Chemical structures | IC50 values (μM) | Reference |
|---|---|---|---|---|
| 147 | 5,7-Dibromo-2-(4-chlorophenyl)-3-hydroxy-4 |
| 0.71 |
|
| 148 | 5,7-Dibromo-3-hydroxy-2-(3-nitrophenyl)-4 |
| 0.15 |
|
| 149 | 5,7-Dibromo-2-(4-fluorophenyl)-3-hydroxy-4 |
| 2.36 |
|
| 150 | 5,7-Dibromo-2-(4-(dimethylamino)phenyl)-3-hydroxy-4 |
| 0.50 |
|
| 151 | 5,7-Dibromo-3-hydroxy-2-(naphthalen-1-yl)-4 |
| 0.564 |
|
| 152 | 5,7-Dibromo-3-hydroxy-2-( |
| 0.126 |
|
| 153 | 3-Hydroxy-2-(thiophen-2-yl)-4 |
| 0.347 |
|
| 154 | 3-Hydroxy-2-(4-nitrophenyl)-4 |
| 0.284 |
|
| 155 | 5,7-Dibromo-2-(3,4-dimethoxyphenyl)-3-hydroxy-4 |
| 0.093 |
|
| 156 | 2-(4-Fluorophenyl)-3-hydroxy-4 |
| 0.799 |
|
| 157 | 3-Hydroxy-2-(2-(trifluoromethyl) phenyl)-4 |
| 0.30 |
|
| 158 | 2-(4-Chlorophenyl)-3-hydroxy-4 |
| 0.230 |
|
|
| Kojic acid |
| 1.79 |
|