| Literature DB >> 31064095 |
Dmitrii Semenok1,2, Jury Medvedev3, Lefki-P Giassafaki4, Iason Lavdas5, Ioannis S Vizirianakis6, Phaedra Eleftheriou7, Antonis Gavalas8, Anthi Petrou9, Athina Geronikaki10.
Abstract
ApartEntities:
Keywords: 3(2H)furanones; 5-fluorouracil; HSC-3; MCF-7; anticancer; cyclooxygenase; cytotoxicity; gefitinib; phenanthro[9,10-b]furanones
Mesh:
Substances:
Year: 2019 PMID: 31064095 PMCID: PMC6539231 DOI: 10.3390/molecules24091751
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1(A) Known 3(2H) furanones (a) [19,28], rofecoxib analogs (b), celecoxib and its regioisomer active analog (c) [29]. (B) Novel 3(2H)furanone (1) and phenanthro[9,10-b]furan-3-one (2) derivatives.
Figure 2Correlation of the predicted binding energy in kcal/mole with the experimentally calculated IC50 value of inhibitory action of the reference compounds E1–E14. against COX-1 (left) and COX-2 (right).
Predicted IC50 values of the designed compounds.
| COX-1 | COX-2 | ||||||
|---|---|---|---|---|---|---|---|
| Structure | Code | R | Binding Energy (Kcal/mole) | IC50 (μΜ) | Binding Energy (Kcal/mole) | IC50 (μΜ) | S * |
|
| H | −5.78 | 25.8 | −6.67 | 0.39 | 66.2 | |
|
| −6.18 | 17.0 | −10.21 | 0.15 | 113.3 | ||
|
| −5.27 | 37.0 | −7.17 | 0.36 | 102.8 | ||
|
| −4.96 | 43.8 | −7.32 | 0.35 | 125.1 | ||
|
| H | −5.68 | 27.0 | −6.38 | 0.41 | 65.9 | |
|
| −5.97 | 21.6 | −7.60 | 0.33 | 65.5 | ||
|
| −5.94 | 22.2 | −7.61 | 0.33 | 67.3 | ||
|
| −6.44 | 11.2 | −6.93 | 0.37 | 30.3 | ||
|
| H | −6.48 | 10.3 | −9.13 | 0.22 | 46.8 | |
|
| −6.19 | 16.7 | −9.99 | 0.16 | 1–4.4 | ||
|
| −5.83 | 24.7 | −9.61 | 0.19 | 130.0 | ||
|
| 14(exp) | 0.04(exp) | |||||
|
| H | −4.92 | 44.7 | −7.28 | 0.28 | 159.6 | |
|
| F | −5.23 | 37.9 | −8.86 | 0.24 | 157.9 | |
* selectivity.
Yields (%) of reactions on different steps of synthesis of sulfoxides and sulfones (Scheme 1).
| R | 1,4-diol (6) | Dihydro furan-3-one (5) | 4-diazodi-hydrofuran-3-one (4) | 4,5-diaryl-3( | Sulfoxides | Sulfones |
|---|---|---|---|---|---|---|
| 57 (65) a | 90 | 83-87 | 83% (94; 5.2:1) c | 92% | 93% | |
| 25 (33) a | 31 | 52 (71) b | 66% (75; 7.3:1) c | - | - | |
| 23 (28) a | 91 | 70 | 65% (86; 3.2:1) c | 89% | 98% | |
| 52 (64) a | 84 | 86 | 77% (99; 3.5:1) c | 94% | 80% | |
| H | 86–93 | 93 | 71 | 75% (99; 3.2:1) c | 84% | 96% |
a The yield in brackets is given taking into account incomplete conversion of benzophenone. b The yield in brackets is given taking into account incomplete conversion of furanone. c In brackets the yield of both products (stage 4) and their ratio are given.
Scheme 1Synthesis of methylsulfones and methylsulfoxides of 4,5-diarylfuran-3(2H)-ones (1) as well as reference compounds E-1 and E-3. Oxidative reactions require a catalyst—sulfuric acid.
Yields (%) of reactions on different steps of sulfonyl amide synthesis (Scheme 2).
| R | 1,4-diol (6) | dihydrofuran-3-one (5) | 4-diazodihyd-rofuran-3-one (4) | 4,5-diaryl-3( | Sulfonyl Chloride | Sulfonyl |
|---|---|---|---|---|---|---|
| 95 | 98 | 85 | 67 (95;2.45:1) a | 45 b | 79 | |
| 96 | 98 | 87 | 55 (99; 1.25:1) a | 50 b | 71 | |
| 98 | 96 | 86 | 47 (99; 1:1.12) a | 62 b | 72 | |
| H | 90 | 95 | 69 | 99 (one product) | 50 | 74 |
a In brackets, the yield of both 1,2-migration products and their ratio are given. b As a percentage of the total weight of the mixture 3.
Total yield (%) of desired 4,5-diarylfuran-3(2H)-ones 1–2 starting from benzophenones.
| R | Sulfones (SO2Me) | Sulfoxides (SOMe) | Sulfonamides (SO2NH2) | Phenanthrenes |
|---|---|---|---|---|
| 33 | 33 | 27 | - | |
| 9 | 8 | 29 | - | |
| 23 | 27 | 36 | 3.1 | |
| H | 43 | 37 | 23 | 6.0 |
Scheme 2Synthesis of 4,5-diarylfuran-3(2H)-ones sulfonamides 1.
Scheme 3Synthesis of phenanthro[9,10-b]furanones (2) by photochemical cyclization of the stilbene moiety of 4,5-diaryl-3(2H)furanones 1.
Inhibition % of COX-1/2 isoenzymes *.
| Compound | % Inhibition (COX-1) | % Inhibition (COX-2) |
|---|---|---|
| 0 | 0 | |
| 32 | 0 | |
| 80 | 6 | |
| 0 | 0 | |
| 73 | 0 |
* Compound concentration 50 μΜ. Arachidonic acid concentration: 0.1 μM.
Predicted Energy and IC50 values and in vitro activity of synthesized compounds against COX-1/21.
| Experimental IC50, μΜ | Docking Assisted Predicted Values | |||||||
|---|---|---|---|---|---|---|---|---|
| Comp. | ||||||||
| COX-1 | COX-2 | Ε | IC50 | Ε | IC50 | COX-1 | COX-2 | |
| 29 | > 50 | −4.96 | 43.8 | −7.32 | 0.345 | −5.69 | +5.91 | |
| 22 | 71 | −6.18 | 17.0 | −10.21 | 0.147 | −6.27 | −5.49 | |
|
|
| > 50 | −5.94 | 22.2 | −7.61 | 0.325 | −6.33 | −3.50 |
|
|
|
| −6.19 | 16.7 | −9.99 | 0.162 | −7.01 | −4.36 |
| 70 | >50 | −5.83 | 24.7 | −9.61 | 0.188 | −4.85 | −2.92 | |
|
| −6.09 | −5.87 | ||||||
| Naproxen | 40 | 50 | −5.66 | |||||
1 Methylsulfides (−SCH3) were not tested due to their low solubility in polar solvents like water/dmso mixtures. 2 Docking analysis using 3D structures of human isoforms, constructed based on the templates of 3KK6 Ovis aries COX-1 and 3LN1 and Mus musculus COX-2, in complex with Celecoxib. 3 Docking analysis using the human COX-2 structure 5IKT, in complex with tolfenamic acid and ovine COX-1 structure 4O1Z in complex with meloxicam.
Figure 3Docking of compound 1v to the human COX-2 structure 5IKT, at a lower energy complex (A,B) with the compound docked at the entrance of the active site and at a high energy complex with the compound oriented in a deeper space of the active site (C). Docking of compound 1g to the ovine COX-1 structure 2AYL (D). Studied compound in green, initial ligand in magenta. Yellow cycles: pi–pi interactions, green cycles: polar interactions. Polar interactions are also formed between Arg120 and the –SO2 NH2 group.
In vivo anti-inflammatory activity of alkylsulfones and sulfoxides of furan-3(2H)-ones, including annelated derivatives.
| Class | Compound | Dose, | CPE, % * |
|---|---|---|---|
| 0.1 | 50.2 | ||
| 0.1 | 50.7 | ||
| 0.1 | 48.8 | ||
| 0.1 | 50.6 | ||
| 0.1 | 47 | ||
| 0.1 | 51 | ||
| 0.1 | 49 | ||
| 0.1 | 54 | ||
| 0.1 | 38 | ||
| 0.1 | 44.3 | ||
| 0.1 | 43.7 | ||
| 0.1 | 45 | ||
| 0.1 | 40 | ||
| 0.1 | 57.7 | ||
| 0.1 | 52.1 |
* Values are the mean of three determinations, and deviation from the mean is <10% of the mean value.
IC50 values of the new synthesized compounds as well as gefitinib, 5-fluorouracil and celecoxib.
| Compound | MCF-7 | HSC-3 | HSC-3 IC50 Values (µM) * |
|---|---|---|---|
| 24 | 100 ± 10 | 90 | |
| 10 | 36 ± 4 | 7.5 | |
| 10 | 91 ± 10 | 60 | |
| Gefitinib | 70 | ||
| 5-Fluorouracil | 0.03 | ||
| Celecoxib | 29.186 |
* Data are the mean average of 3 independent experiments. ** Compound concentration: 10μΜ.
Figure 4IC50 values of the new synthesized compounds as well as gefitinib, 5-fluorouracil, and celecoxib.
% MCF-7 cell growth rates after cell exposure to the combinations of each novel compound 1h, 1g, and x-1 with gefitinib, 5-fluorouracil or celecoxib in their IC50 or lower concentrations, for 48 h.
| Compound * Concentrations (μM) | % Cell Growth | CI | Combination Effect |
|---|---|---|---|
| 27.5 μM | 45.9 | >1 | antagonism |
| 10 μM | 36.5 | 0.780 ± 0.200 < 1 | synergism |
| 10 μM | 24.3 | 0.260 ± 0.033 < 1 | synergism |
| 29 μM cel + 70 μM gef | 56.8 | >1 | antagonism |
| 21.3 μM | 27.3 | 0.533 ± 0.015 <1 | synergism |
| 2.9 μM | 19.1 | 0.058 ± 0.010 <1 | synergism |
| 3.8 μM | 21.0 | >1 | antagonism |
| 29 μM cel + 00.3 μM 5-fu | 49.3 | >1 | antagonism |
| 21.3 μM | 38.6 | >1 | antagonism |
| 2.9 μM | 36.6 | 0.750 ± 0.025 < 1 | synergism |
| 3.8 μM | 60.6 | >1 | antagonism |
* Abbreviations: gef: gefitinib; 5-FU: 5-fluorouracil; cel: celecoxib.
Figure 5% MCF-7 cell growth rates after cell exposure to the combinations of each COX-2 inhibitor with gefitinib, 5-fluorouracil, or celecoxib in their IC50 or lower concentrations, for 48 h. Cell growth was assessed using a hemocytometer (Neubauer chamber) and is expressed as a percentage (%) relative to that for the untreated, control culture (CTL). The data represent mean values of four.
Figure 6Phase-contrast microscopy images (32x) after MCF-7 cell treatment with the single antineoplastic drugs and synthesized compounds as well as with the combinations of drugs and compounds, for 48 h.
Figure 7Internal validation of the developed model. The most adequate conformation generated for celecoxib (gray) as compared to the template location (RSA data, orange): hCOX-2: Free binding energy: −14.27 kcal/mol (a); hCOX-1: Free binding energy: −13.39 kcal/mol (b); RMSD = 0.13 and 0.21, respectively.
Figure 8The common 3-centered pharmacophore model for COX-1/2 inhibitors.
Figure 9Docking of tolfenamic acid (A) and naproxen (B) to the structure 5IKT of human COX-2, Energy: −7.04 kcal/mole (docked molecule in green, initial molecule in magenta).
Figure 10Docking of tolfenamic acid to the structure 5IKT of human COX-2 (docked molecule in blue, initial molecule in magenta), the distances between the same atoms of the two structures do not exceed 1.6 Å.