| Literature DB >> 26698121 |
Lei Wang1, Marina Kofler2, Gerald Brosch3, Jelena Melesina4, Wolfgang Sippl4, Elisabeth D Martinez1,5, Johnny Easmon2.
Abstract
We have screened our compounEntities:
Mesh:
Substances:
Year: 2015 PMID: 26698121 PMCID: PMC4689404 DOI: 10.1371/journal.pone.0134556
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Synthesis of target compounds.
Reagents; i) 120°C, 3 h.; ii) 40% aqu. HBr, 70°C, 12 h; iii) Dry CH2Cl2, N(CH2CH3)3, 0°C; iv) 3-chlorosulfonylbenzoic acid or 4-chlorosulfonylbenzoic acid, N(CH2CH3)3, THF, 0°C to RT; v) (a) N-methyl morpholine, ethyl chloroformate, THF, 0°C to RT, (b) hydroxylamine HCl, KOH, EtOH, 0°C to RT.
Fig 2Structure and locus de-repression assay activity of Trichostatin A (TSA) and 9b-9d.
A, Structure of 4-[4-(1-methylbenzimidazol-2-yl)piperazin-1-yl]sulfonylbenzenecarbohydroxa-mic acid, (compound 9b). B, LDR cells were assayed for GFP expression by fluorescence microscopy after overnight treatment with the indicated doses of the DMSO vehicle, the trichostatin A positive control or 9b-9d, followed by estradiol induction of the nuclear translocation of the GFP-estrogen receptor chimeric transgene. DAPI staining of the nucleus is shown for reference. The other compounds were inactive in the LDR assay.
Fig 3Structure of R306465, an HDAC inhibitor developed by Johnson & Johnson that shares structural motifs with 9a-9d series.
Fig 4Induction of GPF and inhibitory activity against partially purified HDAC1.
NS = not soluble,—negative, *The mean values of at least two independent experiments in which duplicate determinations were taken.
Antiproliferative activity (IC50 μM) of compounds 9a-d, TSA, Apicidin and Depsipeptide.
| Compd | HCC4017 | HBEC-30KT | Selectivity | HCC4018 | HBEC-34KT | Selectivity |
|---|---|---|---|---|---|---|
|
| > 10 | > 10 |
| >10 | >10 |
|
|
| 1.49 | > 10 |
| 6.1 | > 10 |
|
|
| 1.24 | > 10 |
| 5.05 | > 10 |
|
|
| 1.63 | 5.37 |
| 4 | 8.22 |
|
|
| 0.073 | 0.285 |
| 0.023 | 0.346 |
|
|
| 0.12 | 0.09 |
| 0.03 | 0.79 |
|
|
| 0.0065 | 0.0009 |
| 0.0042 | 0.0013 |
|
|
|
| |||||
*The mean values of at least three independent experiments in which duplicate determinations were taken within each experiment. For clarity, standard deviation has been omitted.
Fig 5A, B: 9b and 9c strongly alter cell cycle distribution of cancer cells.
HCC4017 lung cancer cells show defects in S-phase progression and accumulation in G2/M after treatment with 9b (in A) or 9c (in B), as indicated. Cell cycle histograms were collected on PI stained samples of floating and adherent cells, on a FACs Calibur.
Fig 6Differential response of cancers to 9c and 9d.
A, GI50 values across the NCI-60 cell line panel in response to 9c. B, GI50 values across the NCI-60 cell line panel in response to 9d.
Inhibitory concentration values across histological cancer types.
| NSC 747073 (9c) | NSC 747072 (9d) | |
|---|---|---|
| Cancer Type | GI50 (μM) | GI50 (μM) |
| Leukemia | 2.24 (4/4) | 1.77 (5/5) |
| NSCL cancer | 9.51 (3/9) | 3.77 (4/9) |
| Colon cancer | 6.05 (4/6) | 2.30 (6/7) |
| CNS cancer | 5.82 (4/6) | 2.77 (4/6) |
| Melanoma | 5.62 (6/8) | 2.66 (5/8) |
| Ovarian cancer | 7.66 (2/5) | 4.01 (3/3) |
| Renal Cancer | 8.24 (3/8) | 3.94 (3/8) |
| Prostate Cancer | 4.89 (2/2) | 2.48 (2/2) |
| Breast cancer | 8.71 (2/7) | 3.88 (4/7) |
| MID |
|
|
aNon-Small Cell Lung cancer
bFigures in parenthesis refers to no. cell lines used for the assay/no inhibited by compound
cAverage value of inhibition across the 60 cell lines
Fig 7Docking poses of compounds 9a-d in the HDAC1 catalytic domain.
Inhibitors are colored orange.The zinc ion is shown as a brown ball. Hydrogen bonds between HDAC1 and inhibitors are shown as blue lines and distances are given in Å. On the right side, the molecular surface is displayed and contoured according to the hydrophobic potential (magenta = hydrophilic, green = hydrophobic).
Fig 8Docking poses of compounds 9a-d in the HDAC6 catalytic domain.
Inhibitors are colored in cyan. The zinc ion is shown as a brown ball. Hydrogen bonds between HDAC6 and inhibitors are shown as blue lines and distances are given in Å. On the right side the molecular surface is displayed and contoured according to the hydrophobic potential (magenta = hydrophilic, green = hydrophobic).
Fig 9Docking results for compounds 8a-8d in HDAC1.
Due to the meta-substitution of the sulfonamide linker the terminal group of the inhibitors is not able to favorably interact with the rim of the pocket. The molecular surface is displayed and contoured according to the hydrophobic potential (magenta = hydrophilic, green = hydrophobic).
Inhibitory activities and MM-GBSA energies of the studied compounds.
| Compound | HDAC1 IC50 [μM] | HDAC1 pIC50 | MM-GBSA (kcal/mol) | HDAC6 IC50 [μM] | HDAC6 pIC50 | MM-GBSA(kcal/mol) |
|---|---|---|---|---|---|---|
| 8a | n.i. | - | -20.44 | - | - | n.c |
| 8b | 316 | 3.50 | -20.77 | - | - | n.c. |
| 8c | 216 | 3.67 | -20.89 | - | - | n.c. |
| 8d | 140 | 3.85 | -20.96 | - | - | n.c |
| 9a | 12.4 | 4.91 | -29.51 | 1.00 | 6.00 | -34.72 |
| 9b | 12.4 | 4.91 | -28.27 | 0.10 | 7.00 | -36.03 |
| 9c | 5.7 | 5.24 | -28.88 | 0.20 | 6.70 | -35.39 |
| 9d | 4.8 | 5.32 | -29.43 | 0.10 | 7.00 | -36.47 |
n.c. = not calculated, n.i. = no inhibition
Fig 10Compounds 9a-9d inhibit HDAC6 over HDAC1.
Dose response curves of 9a-9d comparative inhibition of HDAC6 vs. HDAC1 activity using purified enzymes for in vitro assays measuring deacetylation of histone substrates. Assays were performed in parallel for both enzymes.
Enzyme Inhibition Data of Compounds 9a-d.
| HDAC1 | HDAC6 | Selectivity Index | |
|---|---|---|---|
| Compounds | IC50 (μM) | IC50 (μM) | HDAC1/HDAC6 |
|
| 6.0 +/- 2.9 | 0.93 +/-0.75 | 6.5 |
|
| 3.7 +/- 1.7 | 0.13 +/- 0.07 | 28.4 |
|
| 0.92 +/- 0.16 | 0.22 +/- 0.04 | 4.3 |
|
| 0.90 +/- 0.45 | 0.13 +/- 0.02 | 9.6 |
|
| 16.4+/-2.6 | 0.015+/-0.001 | 1093 |
|
| 0.0060+/-0.0025 | 0.0086+/-0.0014 | 1.4 |
aTaken from ref. [31]
bTaken from ref. [32].
* Indicated are the mean values of at least three independent experiments.