| Literature DB >> 24976682 |
Zsofia Kutil1, Veronika Temml2, David Maghradze3, Marie Pribylova4, Marcela Dvorakova4, Daniela Schuster2, Tomas Vanek4, Premysl Landa4.
Abstract
Cyclooxygenases and lipoxygenases are proinflammatory enzymes; the former affects platelet aggregation, vasoconstriction, vasodilatation and later the development of atherosclerosis. Red wines from Georgia and central and western Europe inhibited cyclooxygenase-1 (COX-1) activity in the range of 63-94%, cyclooxygenase-2 (COX-2) activity in the range of 20-44% (tested at a concentration of 5 mL/L), and 5-lipoxygenase (5-LOX) activity in the range of 72-84% (at a concentration of 18.87 mL/L). White wines inhibited 5-LOX in the range of 41-68% at a concentration of 18.87 mL/L and did not inhibit COX-1 and COX-2. Piceatannol (IC50 = 0.76 μM) was identified as a strong inhibitor of 5-LOX followed by luteolin (IC50 = 2.25 μM), quercetin (IC50 = 3.29 μM), and myricetin (IC50 = 4.02 μM). trans-Resveratrol was identified as an inhibitor of COX-1 (IC50 = 2.27 μM) and COX-2 (IC50 = 3.40 μM). Red wine as a complex mixture is a powerful inhibitor of COX-1, COX-2, and 5-LOX, the enzymes involved in eicosanoid biosynthetic pathway.Entities:
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Year: 2014 PMID: 24976682 PMCID: PMC4058118 DOI: 10.1155/2014/178931
Source DB: PubMed Journal: Mediators Inflamm ISSN: 0962-9351 Impact factor: 4.711
Inhibition of COX-1, COX-2 (concentration of wine: 5 mL/L), and 5-LOX (concentration of wine: 18.87 mL/L) enzymatic activity by red wines.
| Number | Variety and origin | Inhibition against blank (%) | ||
|---|---|---|---|---|
| COX-1 | COX-2 | 5-LOX | ||
| 1 | Pinot Noir, Czech Rep. | 46.13 | 33.25 | 79.96 |
| 2 | Pinot Noir, Czech Rep. | 90.25 | 29.23 | 77.61 |
| 3 | Pinot Noir, Austria | 70.05 | 29.20 | 82.74 |
| 4 | Pinot noir, France | 94.04 | 52.23 | 85.01 |
| 5 | Pinot noir, France | 85.57 | 22.78 | 84.21 |
| 6 | Cabernet Sauvignon, Italy | 73.52 | 12.21 | 81.92 |
| 7 | Cabernet Sauvignon, Italy | 87.20 | 23.81 | 83.81 |
| 8 | Cabernet Sauvignon, France | 92.16 | 37.60 | 80.96 |
| 9 | Cabernet Sauvignon, France | 92.98 | 43.14 | 82.38 |
| 10 | Cabernet Sauvignon, Czech Rep. | 81.42 | 42.14 | 77.59 |
| 11 | Cabernet Sauvignon, Czech Rep. | 48.95 | 34.95 | 71.36 |
| 12 | Cabernet Sauvignon, Georgia | 77.57 | 13.68 | 83.86 |
| 13 | Cabernet Moravia, Czech Rep. | 52.67 | 13.43 | 82.56 |
| 14 | Cabernet Moravia, Czech Rep. | 73.68 | 26.91 | 85.39 |
| 15 | Saperavi, Georgia | 90.98 | 25.33 | 84.86 |
| 16 | Saperavi, Georgia | 90.74 | 43.73 | 84.33 |
| 17 | Saperavi, Georgia | 90.31 | 53.24 | 80.65 |
| 18 | Saperavi, Georgia | 82.30 | 35.23 | 88.29 |
| 19 | Saperavi, Georgia | 38.41 | −7.23 | 62.24 |
| 20 | Saperavi, Georgia | 84.09 | 25.42 | 78.68 |
| 21 | Saperavi, Georgia | 95.48 | 52.95 | 73.08 |
| 22 | Saperavi, Georgia | 95.13 | 63.86 | 80.15 |
| 23 | Saperavi, Georgia | 89.07 | 28.99 | 77.79 |
| 24 | Saperavi + Saperavi Budeshuriseburi, Georgia | 92.65 | 40.27 | 71.65 |
| 25 | Saperavi + Saperavi Budeshuriseburi, Georgia | 94.35 | 45.03 | 72.89 |
| 26 | Alexandrouli, Georgia | 82.27 | 22.28 | 79.02 |
Data is presented as the mean value.
Inhibition of COX-1, COX-2 (concentration of wine: 50 mL/L), and 5-LOX (concentration of wine: 18.87 mL/L) enzymatic activity by white wines.
| Number | Variety and origin | Inhibition against blank (%) | ||
|---|---|---|---|---|
| COX-1 | COX-2 | 5-LOX | ||
| 27 | Chardonnay, Czech Rep. | 10.91 | 11.94 | 41.74 |
| 28 | Chardonnay, Czech Rep. | 9.22 | −7.05 | 47.66 |
| 29 | Chardonnay, Italy | −5.48 | −3.11 | 47.52 |
| 30 | Chardonnay, Italy | 3.62 | 4.59 | 47.44 |
| 31 | Chardonnay, France | 11.26 | 8.82 | 51.30 |
| 32 | Chardonnay, France | 17.24 | 10.95 | 57.99 |
| 33 | Sauvignon Blanc, Italy | 7.42 | −21.85 | 51.25 |
| 34 | Sauvignon Blanc, France | 19.09 | 12.43 | 41.42 |
| 35 | Sauvignon Blanc, Czech Rep. | 15.26 | 9.82 | 32.42 |
| 36 | Rkatsiteli, Georgia | 14.37 | −10.97 | 59.24 |
| 37 | Rkatsiteli, Georgia | 94.50 | 65.61 | 76.05 |
| 38 | Rkatsiteli + Mtsvane Kakhuri + Khikhvi + Kisi, Georgia | 95.97 | 63.71 | 71.93 |
| 39 | Rkatsiteli + Mtsvane Kakhuri, Georgia | 10.32 | 5.32 | 60.38 |
Data is presented as the mean value.
IC50 values of wine constituents and reference inhibitors for COX-1, COX-2, and 5-LOX.
| Compound | IC50 ± SD ( | Ratio | IC50 ± SD ( | |
|---|---|---|---|---|
| COX-1 | COX-2 | COX-1/COX-2 | 5-LOX | |
| Resveratrol | 2.27 ± 1.17 | 3.40 ± 0.50 | 0.67 | — |
| Piceatannol | —* | — | 0.76 ± 0.35 | |
| Luteolin | — | — | 2.25 ± 1.75 | |
| Quercetin | — | — | 3.29 ± 2.25 | |
| Myricetin | — | — | 4.02 ± 2.37 | |
| Kaempferol | 43.82 ± 18.81 | — | — | |
| Ibuprofen | 13.14 ± 3.84 | 8.77 ± 2.55 | 1.49 | nt# |
| Indomethacin | 1.61 ± 0.72 | 10.12 ± 5.66 | 0.15 | nt |
| Zileuton | nt | nt | 4.71 ± 2.83 | |
Data is presented as the mean value ± SD. *IC50 > 50 μM concentration; #not tested.
Figure 1Docking pose of piceatannol in 5-LOX. Yellow spheres signify hydrophobic interactions with the binding pocket. The blue circle marks an aromatic interaction with the binding pocket. The green arrow signifies a hydrogen bond donor interaction with Gln557. The red arrow signifies a hydrogen bond acceptor interaction with Asn425.
Figure 2Docking poses of luteolin (a), quercetin (b), and myricetin (c). The blue cone marks a metal coordination feature formed with the iron by all three compounds. Additionally, all form hydrogen bonds with His367 and Thr364. Quercetin and myricetin also form H-bonds with Asn407 and Gln363.