| Literature DB >> 22710558 |
B Orlikova1, M Schnekenburger, M Zloh, F Golais, M Diederich, D Tasdemir.
Abstract
Histone deacetylase enzymes (HDACs) are emerging as a promising biological target for cancer and inflammation. Using a fluorescence assay, we tested the in vitro HDAC inhibitory activity of twenty-one natural chalcones, a widespread group of natural products with well-known anti-inflammatory and antitumor effects. Since HDACs regulate the expression of the transcription factor NF-κB, we also evaluated the inhibitory potential of the compounds on NF-κB activation. Only four chalcones, isoliquiritigenin (no. 10), butein (no. 12), homobutein (no. 15) and the glycoside marein (no. 21) showed HDAC inhibitory activity with IC50 values of 60-190 µM, whereas a number of compounds inhibited TNFα-induced NF-κB activation with IC50 values in the range of 8-41 µM. Interestingly, three chalcones (nos. 10, 12 and 15) inhibited both TNFα-induced NF-κB activity and total HDAC activity of classes I, II and IV. Molecular modeling and docking studies were performed to shed light into dual activity and to draw structure-activity relationships among chalcones (nos. 1-21). To the best of our knowledge this is the first study that provides evidence for HDACs as potential drug targets for natural chalcones. The dual inhibitory potential of the selected chalcones on NF-κB and HDACs was investigated for the first time. This study demonstrates that chalcones can serve as lead compounds in the development of dual inhibitors against both targets in the treatment of inflammation and cancer.Entities:
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Year: 2012 PMID: 22710558 PMCID: PMC3583578 DOI: 10.3892/or.2012.1870
Source DB: PubMed Journal: Oncol Rep ISSN: 1021-335X Impact factor: 3.906
Structural features of natural chalcones.
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| Chalcone | 2′ | 3′ | 4′ | 6′ | 2 | 3 | 4 | Δα,β |
| Chalcone, no.1 | H | H | H | H | H | H | H | Unsaturated |
| 2′-Hydroxychalcone, no 2 | OH | H | H | H | H | H | H | Unsaturated |
| 2-Hydroxychalcone, no 3 | H | H | H | H | OH | H | H | Unsaturated |
| 4-Hydroxychalcone, no 4 | H | H | H | H | H | H | OH | Unsaturated |
| 4-Methoxychalcone, no 5 | H | H | H | H | H | H | OCH3 | Unsaturated |
| 3,4-Dimethoxychalcone, no 6 | H | H | H | H | H | OCH3 | OCH3 | Unsaturated |
| 4′-Hydroxychalcone, no. 7 | H | H | OH | H | H | H | H | Unsaturated |
| 4′-Methoxychalcone, no 8 | H | H | OCH3 | H | H | H | H | Unsaturated |
| 4,4′-Dimethoxychalcone, no 9 | H | H | OCH3 | H | H | H | OCH3 | Unsaturated |
| Isoliquiritigenin (2′,4,4′-trihydroxychalcone), no 10 | OH | H | OH | H | H | H | OH | Unsaturated |
| Calomelanone (2′,6′-dihydroxy-4,4′-dimetoxydihydrochalcone), no 11 | OH | H | OCH3 | OH | H | H | OCH3 | Saturated |
| Butein (2′,3–4,4′-tetrahydroxychalcone), no 12 | OH | H | OH | H | H | OH | OH | Unsaturated |
| Flavokawain C (2′,4-dihydroxy-4′,6′-dimethoxychalcone), no 13 | OH | H | OCH3 | OCH3 | H | H | OH | Unsaturated |
| Gymnogrammene (2′,6′-dihydroxy-4,4′-dimethoxychalcone), no 14 | OH | H | OCH3 | OH | H | H | OCH3 | Unsaturated |
| Homobutein (2′,4,4′-trihydroxy-3-methoxychalcone), no 15 | OH | H | OH | H | H | OCH3 | OH | Unsaturated |
| 2,3-Dimethoxy-2′-hydroxychalcone, no 16 | OH | H | H | H | OCH3 | OCH3 | H | Unsaturated |
| Flavokawain A (2′-hydroxy-4,4′,6′-trimethoxychalcone), no 17 | OH | H | OCH3 | OCH3 | H | H | OCH3 | Unsaturated |
| Eriodictyolchalcone (2′,4′,6′,3,4-pentahydroxychalcone), no 18 | OH | H | OH | OH | H | OH | OH | Unsaturated |
| Phloretin (2′,4,4′,6′-tetrahydroxydihydrochalcone), no 19 | OH | H | OH | OH | H | H | OH | Saturated |
| Phloridzin (phloretin-2′-O-glucoside), no 20 | O-Glu | H | OH | OH | H | H | OH | Saturated |
| Marein (2′,3,3′,4,4′-pentahydroxy-4′-glucosylchalcone), no 21 | OH | OH | O-Glu | OH | H | OH | OH | Unsaturated |
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| Glu, glucose. | ||||||||
Biological activity of natural chalcones.
| Chalcone | HDAC inhibition, IC50 (μM) | NF-κB inhibition, IC50 (μM) | Viability |
|---|---|---|---|
| 1 | >1000 | n.m. | 14 |
| 2 | >1000 | n.m. | 28 |
| 3 | >1000 | n.m. | 2 |
| 4 | >1000 | 24 | 31 |
| 5 | >1000 | 29 | 35 |
| 6 | >1000 | n.m. | 38 |
| 7 | >1000 | 28 | 16 |
| 8 | >1000 | n.m. | 38 |
| 9 | >1000 | >200 | n.t. |
| 10 | 110 | 32 | 44 |
| 11 | >1000 | 11 | 31 |
| 12 | 60 | 38 | 13 |
| 13 | >1000 | 8 | 13 |
| 14 | >1000 | >200 | n.t. |
| 15 | 190 | 38 | 29 |
| 16 | >1000 | n.m. | 12 |
| 17 | >1000 | >200 | n.t. |
| 18 | >1000 | >200 | n.t. |
| 19 | >1000 | 41 | 59 |
| 20 | >1000 | >200 | n.t. |
| 21 | 100 | >200 | n.t. |
| Standards | 0.14b | 6.0a | 1.4a |
n.m., not measurable due to toxicity after transfection; n.t., not tested due to the inability to inhibit the activation of NF-κB; Standards, aheteronemin, bsuberoylanilide hydroxamic acid.
Figure 1Inhibition of HDAC activity by active chalcone derivatives. Total protein extracts from K562 cells were incubated with vehicle (0) or various concentrations of the (A) chalcone 10 (B) chalcone 12 (C) chalcone 15 or (D) chalcone 21 for 1 h in the presence of an HDAC fluorometric substrate. Fluorescence was measured using a Gemini EM microplate spectrofluorometer and normalized by the vehicle-treated control enzyme activities. Vehicle-treated control corresponds to 0 on the chart. Results are presented as a mean ± SD of at least three independent experiments.
Figure 2Inhibition of TNFα-induced NF-κB activation by (A) chalcone 11 and (B) chalcone 13. K562 cells were transiently transfected with firefly luciferase vector (NF-κB pGL4), and ph-RG-tk Renilla plasmid for 24 h. After transfection, K562 cells were treated with chalcone derivatives at the different concentrations for 2 h followed by a TNFα-treatment (20 ng/ml) during 6 h. Results are expressed as a ratio of the measured luminescence of the firefly luciferase vector and the luminescence of Renilla plasmid. Results are presented as a mean ± SD of three independent experiments. Negative control (Co−) corresponds to DMSO treated cells, without TNFα activation, positive control (Co+) corresponds to DMSO treated cells activated by TNFα.
GlideScore values obtained for HDAC and NF-κB proteins.
| Chalcone | Docking scores against 1T69 | Docking scores against 3ETZ | Docking scores against 1NFK |
|---|---|---|---|
| 1 | −6.83 | −5.27 | −2.39 |
| 2 | −5.90 | −6.08 | −4.05 |
| 3 | −5.40 | −6.35 | −3.06 |
| 4 | −4.71 | −6.27 | −2.38 |
| 5 | −5.52 | −5.34 | −3.22 |
| 6 | −4.92 | −5.87 | −2.76 |
| 7 | −4.88 | −5.96 | −2.88 |
| 8 | −5.78 | −5.86 | −2.48 |
| 9 | −5.88 | −5.70 | −2.6 |
| 10 | −6.03 | −7.03 | −2.84 |
| 11 | −6.75 | −7.21 | −3.15 |
| 12 | −7.00 | −8.00 | −4.71 |
| 13 | −5.32 | −7.45 | −3.48 |
| 14 | −5.63 | −6.52 | −4.29 |
| 15 | −6.44 | −7.06 | −0.71 |
| 16 | −5.31 | −6.57 | −3.1 |
| 17 | −4.47 | −6.79 | −1.75 |
| 18 | −5.69 | −7.24 | −4.06 |
| 19 | −5.15 | −6.47 | 0.12 |
| 20 | −6.85 | −7.57 | −5.53 |
| 21 | −8.08 | −10.51 | −6.03 |
Figure 3Best binding poses of chalcone 12 (thick stick representation) and chalcone 21 (thin stick representation) within the active site of the HDAC8 represented by surface only. The docking was carried out using Glide and DS Visualizer 3.1 was used to prepare the image.
Predicted molecular properties correlating to the activity of potent chalcones in the NF-κB assay.
| Chalcone | Ss | Mp | nBO | Hy | MLOGP | ARR | Observed pNF-κB | Calculated pNF-κB |
|---|---|---|---|---|---|---|---|---|
| 4 | 41.67 | 0.71 | 18 | −0.371 | 3.148 | 0.667 | 4.62 | 4.59 |
| 5 | 41.17 | 0.69 | 19 | −0.873 | 3.398 | 0.632 | 4.54 | 4.56 |
| 7 | 41.67 | 0.71 | 18 | −0.371 | 3.148 | 0.667 | 4.55 | 4.59 |
| 10 | 53.00 | 0.69 | 20 | 1.096 | 2.552 | 0.600 | 4.49 | 4.37 |
| 11 | 56.67 | 0.65 | 23 | 0.304 | 2.334 | 0.522 | 4.96 | 4.97 |
| 12 | 58.67 | 0.68 | 21 | 1.928 | 1.764 | 0.571 | 4.42 | 4.51 |
| 13 | 57.67 | 0.67 | 23 | 0.304 | 1.746 | 0.522 | 5.10 | 5.02 |
| 15 | 58.17 | 0.67 | 22 | 0.545 | 1.062 | 2.013 | 4.42 | 4.51 |
| 19 | 58.67 | 0.68 | 21 | 1.928 | 1.764 | 0.571 | 4.39 | 4.40 |
Ss, Sum of Kier-Hall electrotopological states; Mp, mean atomic polarizability (scaled on Carbon atom); nBO, number of non-H bonds; Hy, hydrophilic factor; MLOGP, Moriguchi octanol-water partition coefficient (logP); ARR, aromatic ratio; pNF-κB, negative logarithm values of activity observed in NF-κB assay.