| Literature DB >> 24859601 |
Alaina M Forbes1, Huimin Lin2, Gary G Meadows2, G Patrick Meier1.
Abstract
Flavonoids have been studied intensely for their ability to act as anti-carcinogenic, anti-inflammatory, anti-viral and anti-aging agents and are often marketed as supplements related to their anti-inflammatory activity. Previous studies have primarily focused on the effects of polar natural flavonoids. We examined the activity of novel hydrophobic and lipophilic flavonols against human DU-145 and PC-3 prostate cancer cell lines. All flavonol analogs were more active than the naturally occurring flavonols quercetin, kaempferol, kaempferide and galangin. The most potent analogs were 6.5-fold more active against DU-145 and PC-3 cells than quercetin and fell within the biologically relevant concentration range (low micromolar). We also evaluated the potential toxic effects of flavonol analogs on normal cells, an assessment that has frequently been ignored when studying the anticancer effects of flavonoids. During these analyses, we discovered that various metabolic and DNA staining assays were unreliable methods for assessing cell viability of flavonoids. Flavonoids reduce colorimetric dyes such as MTT and Alamar Blue in the absence of cells. We showed that flavonol-treated prostate cancer cells were stained less intensely with crystal violet than untreated cells at non-toxic concentrations. The trypan blue exclusion assay was selected as a reliable alternative for measuring cell viability.Entities:
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Year: 2014 PMID: 24859601 PMCID: PMC4091967 DOI: 10.3892/ijo.2014.2452
Source DB: PubMed Journal: Int J Oncol ISSN: 1019-6439 Impact factor: 5.650
Figure 1A SciFinder search found that MTT is by far the most popular cell viability detection method for flavonoid research. The SciFinder search was conducted on 01/22/14 and consisted of keywords: flavonoids; refine: MTT, trypan blue, crystal violet and Alamar Blue, respectively.
Figure 2Synthesis of flavonol analogs. Reagents and conditions: (I) Et3N, DMF, 2, 3, reflux (II) KOH/H2O, ethanol, reflux (III) HBr, acetic acid, reflux.
Figure 3Synthesis of biaryl flavonols. Reagents and conditions: (I) Pd(OAc)2, K2CO3 (3 equiv), MeOH, 65°C (II) HBr, acetic acid, reflux.
Figure 4The effect of quercetin (A) and kaempferide (B) on cell viability in prostate cancer cells, DU-145. Values are mean ± SEM of 3 or more independent experiments.
Figure 5Precision of three individual assays for quercetin cytotoxicity against prostate cancer cells, DU-145; Trypan blue (A) and Alamar Blue (B).
EC50 of DU-145 and PC-3.
| Flavonol | EC50 values in DU-145 cells | Flavonol | EC50 values in PC-3 cells |
|---|---|---|---|
| Quercetin | 39.11±2.87a | Quercetin | 32.87±4.10e |
| Kaempferol | 38.35±1.94a | Kaempferol | 33.29±2.96e |
| Galangin (H-flavonol 5f) | 25.94±0.59b | Galangin (H-flavonol 5f) | 17.11±1.29f |
| Kaempferide | 19.82±0.50c | Kaempferide | 14.88±0.78g |
| 4′-Benzoyl flavonol (5b) | 16.61±0.70c | 3′-Iodo flavonol (5c) | 10.54±0.72h |
| 3′-Benzoyl flavonol (5a) | 14.81±0.71c | 4′-Benzoyl flavonol (5b) | 9.97±0.36h |
| 3′-Iodo flavonol (5c) | 14.53±1.02c | 4′-Methyl flavonol (5e) | 9.89±1.24h |
| 4′-Methyl flavonol (5e) | 14.30±0.53c | 3′-Benzoyl flavonol (5a) | 9.31±0.58h |
| 4′-Iodo flavonol (5d) | 7.51±0.27d | 3′-Phenyl flavonol (8c) | 6.35±0.26i |
| 3′-Phenyl flavonol (8c) | 6.33±0.58d | 4′-Phenyl flavonol (8d) | 5.40±0.63j |
| 4′-Phenyl flavonol (8d) | 5.57±0.60d | 4′-Iodo flavonol (5d) | 4.13±0.16k |
EC50 values (μM) are mean ± SEM of 3 independent experiments except for 4′-methyl flavonol in PC-3 cells in which the mean reflects 4 independent experiments. For all flavonols P<0.05. Tukey’s multiple comparison tests determined statistical differences between the EC50 values for each flavonol after ANOVA. DU-145: a, Quercetin and kaempferol are different from groups b, c and d, but not from each other. b, Galangin is different from all other compounds. c, These flavonols are different from groups a, b and d, but not from each other. d, The 4′-iodo and the 3′- and 4′-phenyl flavonols are different than group a, b and c, but not from each other. PC-3: e, Quercetin and kaempferol are different from groups f, g, h, i, j and k, but not from each other. f, Galangin is different from groups e, j and k as well as 4′-methyl flavonol, but not from kaempferide, 3′-iodo and 4′-benzoyl flavonols. g, Kaempferide is different from group e, j and k, but not galangin, 3′-iodo, 4′-benzoyl and 4′-methyl flavonols. h, 3′- and 4′-benzoyl, 4′-methyl and 3′-iodo flavonols are the same as all flavonols except for quercetin, kaempferol and galangin. i, 3′-phenyl flavonol is the same as all flavonols except for group e and galangin and kaempferide. j, 4′-phenyl flavonol is different from all flavonols except for 3′-benzoyl, 3′-phenyl and 4′-iodo flavonols. k, 4′-iodo flavonol is different from all flavonols except 3′- and 4′-phenyl flavonols.
Figure 6Two-way ANOVA comparison of the differences between the EC50 values of the two prostate cell lines, DU-145 and PC-3. The EC50 values for quercetin, galangin and 4′-benzoyl flavonol were statistically different between the two cell lines (*P<0.05). Values are mean ± SEM.
EC100 values of DU-145 and PC-3.
| Flavonol | EC100 values in DU-145 cells | Flavonol | EC100 values in PC-3 cells |
|---|---|---|---|
| Quercetin | 85.42±6.11a | Quercetin | 77.13±3.40f |
| Kaempferol | 74.36±0.83a | Kaempferol | 57.62±6.40g |
| Galangin (H-flavonol 5f) | 46.42±3.92b | Galangin (H-flavonol 5f) | 43.92±4.14h |
| 4′-Benzoyl flavonol (5b) | 41.04±2.18b | Kaempferide | 34.16±1.66h |
| Kaempferide | 39.19±0.87b | 4′-Benzoyl flavonol (5b) | 22.31±0.91i |
| 3′-Iodo flavonol (5c) | 24.61±2.06c | 4′-Methyl flavonol (5e) | 20.38±1.77j |
| 4′-Methyl flavonol (5e) | 23.75±2.53c | 3′-Iodo flavonol (5c) | 19.54±1.08k |
| 3′-Benzoyl flavonol (5a) | 20.43±0.41d | 3′-Benzoyl flavonol (5a) | 17.86±1.56k |
| 3′-Phenyl flavonol (8c) | 18.00±0.61d | 3′-Phenyl flavonol (8c) | 11.33±1.38k |
| 4′-Phenyl flavonol (8d) | 12.43±1.85d | 4′-Iodo flavonol (5d) | 10.34±0.73l |
| 4′-Iodo flavonol (5d) | 9.84±0.33e | 4′-Phenyl flavonol (8d) | 8.75±0.45m |
EC100 values (μM) are mean ± SEM of 3 independent experiments except for 4′-methyl flavonol in PC-3 cells in which the mean reflects 4 independent experiments. For all flavonols P<0.05. Tukey’s multiple comparison tests determined statistical differences between the EC100 values for each flavonol after ANOVA. DU-145: a, Quercetin and kaempferol are different from groups b, c, d and e, but not from each other. b, Galangin, kaempferide and 4′-benzoyl flavonol are different from groups a, c, d and e, but not from each other. c, The 3′-iodo and 4′-methyl flavonol are different from all flavonols except 3′-benozyl, 3′-phenyl and 4′-phenyl flavonol as well as each other. d, The 3′-benzoyl, 3′-phenyl and 4′-phenyl flavonol are the same as all flavonols except for groups a and b. e, The 4′-iodo flavonol is different from all flavonols except 3′-benzoyl, 3′-phenyl and 4′-phenyl flavonol. PC-3: f, Quercetin is different from all other compounds. g, Kaempferol is different from all other compounds. h, Galangin and kaempferide are different from groups f, g, i, j, k, l and m, but not from each other. i, The 4′-benzoyl flavonol is different from all other compounds except for 4′-methyl, 3′-iodo, 3′-benzoyl and 3′-phenyl flavonol. j, The 4′-methyl flavonol is the same as all other compounds except for quercetin, kaempferol, galangin, kaempferide and 4′-phenyl flavonol. k, The 3′-iodo, 3′-benzoyl and 3′-phenyl flavonol are the same as all other compounds except for quercetin, kaempferol, galangin and kaempferide. l, The 4′-iodo flavonol is different from all compounds except 4′-methyl, 3′-iodo, 3′-benzoyl, 3′-phenyl and 4′-phenyl flavonol. m, The 4′-phenyl flavonol is different from all other compounds except for 3′-iodo, 3′-benzoyl, 3′-phenyl and 4′-iodo flavonol.
Difference between EC100 and EC50 values in DU-145 and PC-3.
| Flavonol | EC100 - EC50 values in DU-145 cells | Flavonol | EC100 - EC50 values in PC-3 cells |
|---|---|---|---|
| Quercetin | 46.31±8.55a | Quercetin | 44.26±4.29h |
| Kaempferol | 36.01±2.02b | Galangin (H-flavonol 5f) | 26.81±5.31i |
| 4′-Benzoyl flavonol (5b) | 24.43±1.10c | Kaempferol | 24.33±4.63i |
| Galangin (H-flavonol 5f) | 20.48±0.46d | Kaempferide | 19.28±2.10j |
| Kaempferide | 19.37±2.02d | 4′-Benzoyl flavonol (5b) | 12.34±0.99k |
| 3′-Phenyl flavonol (8c) | 11.67±1.11e | 4′-Methyl flavonol (5e) | 10.49±3.29k |
| 3′-Iodo flavonol (5c) | 10.08±0.84f | 3′-Iodo flavonol (5c) | 9.00±1.06l |
| 4′-Methyl flavonol (5e) | 9.45±1.89f | 3′-Benzoyl flavonol (5a) | 8.55±2.06l |
| 4′-Phenyl flavonol (8d) | 6.86±0.18f | 4′-Iodo flavonol (5d) | 6.21±0.59l |
| 3′-Benzoyl flavonol (5a) | 5.62±5.50f | 3′-Phenyl flavonol (8c) | 4.98±1.54l |
| 4′-Iodo flavonol (5d) | 2.33±2.05g | 4′-Phenyl flavonol (8d) | 3.35±0.93m |
EC100 - EC50 values (μM) are mean ± SEM of 3 independent experiments except for 4′-methyl flavonol in PC-3 cells in which the mean reflects 4 independent experiments. For all flavonols P<0.05. Tukey’s multiple comparison tests determined statistical differences between the EC100 values for each flavonol after ANOVA. DU-145: a, Quercetin is different from all other compounds. b, Kaempferol is different from all other compounds. c, The 4′-benzoyl flavonol is different from all other compounds except for galangin and kaempferide. d, Galangin and kaempferide are different from all other compounds except for 4′-benzoyl and 3′-phenyl flavonol as well as each other. e, The 3′-phenyl flavonol is the same as all other compounds except for quercetin, kaempferol, 4′-benzoyl and 4′-iodo flavonol. f, The 3′-iodo, 4′-methyl, 4′-phenyl and 3′-benzoyl flavonol are different from all other compounds except 3′-phenyl and 4′-iodo flavonol as well as each other. g, The 4′-iodo flavonol is different from all compounds except 3′-iodo, 4′-methyl, 4′-phenyl and 3′-benzoyl flavonol. PC-3: h, Quercetin is different from all other compounds. i, Galangin and kaempferol are different from all other compounds except for kaempferide and each other. j, Kaempferide is different from all other compounds except for galangin, kaempferol, 4′-benzoyl and 4′-methyl flavonol. k, The 4′-benzoyl and 4′-methyl flavonol are the same as all other compounds except for quercetin, galangin, kaempferol and 4′-phenyl flavonol. l, The 3′-phenyl, 3′-benzoyl, 3′-iodo and 4′-iodo flavonol are the same as all other compounds except for quercetin, galangin, kaempferol and kaempferide. m, The 4′-phenyl is different from all other compounds except for 3′-benzoyl, 3′-phenyl, 3′-iodo and 4′-iodo flavonol.
Viability of HIFF cells treated with flavonols.
| A, Viability of cells treated with 50 μM flavonol | |||
|---|---|---|---|
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| |||
| Flavonol | N | % Viability of HIFF (50 μM) | |
| Quercetin | 3 | 84.47±2.21% | |
| Kaempferol | 3 | 73.82±1.38% | |
| Kaempferide | 3 | 52.17±1.17% | |
| Galangin (5f) | 3 | 47.95±1.38% | |
| 3′-Iodo flavonol (5c) | 4 | 46.79±2.48% | |
| 4′-Iodo flavonol (5d) | 3 | 34.77±0.99% | |
| 4′-Methyl flavonol (5e) | 3 | 37.50±2.27% | |
| 3′-Benzoyl flavonol (5a) | 3 | 34.80±0.20% | |
| 3′-Phenyl flavonol (8c) | 3 | 34.63±2.74% | |
| 4′-Phenyl flavonol (8d) | 5 | 34.42±3.67% | |
| 4′-Benzoyl flavonol (5b) | 3 | 32.33±2.92% | |
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| B, Viability at the average combined EC50 concentration of DU-145 and PC-3 for each flavonol | |||
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| Flavonol | N | Flavonol (μM) | % Viability of HIFF |
|
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| 4′-Benzoyl flavonol (5b) | 3 | 13 | 110.92±3.20% |
| 3′-Iodo flavonol (5c) | 4 | 13 | 105.98±5.79% |
| Kaempferol | 4 | 36 | 105.57±5.66% |
| Quercetin | 6 | 36 | 94.01±7.67% |
| Galangin (5f) | 4 | 20 | 92.63±5.58% |
| 3′-Benzoyl flavonol (5a) | 6 | 12 | 90.36±4.85% |
| Kaempferide | 3 | 17 | 83.91±1.31% |
| 4′-Phenyl flavonol (8d) | 4 | 6 | 82.09±5.48% |
| 4′-Iodo flavonol (5d) | 3 | 6 | 70.21±2.70% |
| 4′-Methyl flavonol (5e) | 3 | 12 | 65.00±4.12% |
| 3′-Phenyl flavonol (8c) | 3 | 6 | 53.08±9.54% |
Values are mean ± SEM.