| Literature DB >> 23344200 |
Juan F Ramírez-Martínez1, Rodolfo González-Chávez, Raquel Guerrero-Alba, Paul E Reyes-Gutiérrez, Roberto Martínez, Marcela Miranda-Morales, Rosa Espinosa-Luna, Marco M González-Chávez, Carlos Barajas-López.
Abstract
A new process for obtaining dibenzo[c,f][1,2,5]thiadiazepines (Entities:
Mesh:
Substances:
Year: 2013 PMID: 23344200 PMCID: PMC6270094 DOI: 10.3390/molecules18010894
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1General chemical structure of the dibenzo[c,f][1,2,5]thiadiazepines 1, and several DBTDs reported to have biological activity (compounds 1a, 1b, 1c, and 1d).
Figure 2Retrosynthetic analysis of the non-substituted DBTDs. (a) Classical method for obtaining 2 by the Goldberg methodology; (b) Obtaining 2 from an aryl azide.
Figure 3The dotted lines in DBTDs indicate probable interactions between hydrogen bonds and proteins.
Scheme 1Reagents and conditions: (a) Anhydrous pyridine, dry acetone, N2(g), 24 h; (b) SnCl2·2H2O, ethyl acetate, 4 h; (c) first step: NaNO2, F3CCO2H, 1 h; second step: NaN3, 1 h; (d) (C6H5)2O, 208 °C, 5 min. Compound 2g was obtained from 2f: first step: KOH 10%, 1 h.
Figure 4Halogenated DBTDs inhibited the IGABA in a time-depended manner. (A) IGABA was recorded before, during application of 100 μM 2b, and after removal of the inhibitor of a given myenteric neuron for various lengths of time. The horizontal bars above the traces indicate the application profiles of the indicated substances. (B) Time course of IGABA (induced by 300 μM GABA) inhibition induced by 2 over 3–180 s. Michaelis–Menten fits. Each data point represents the mean value from 3–12 different experiments. The lines represent the SEM.
Percent inhibition in the presence of 100 μM compounds on GABA-induced inward currents, p IC50, cLog P, and physical data.
| No. | Percentage of inhibition [a] | p IC50/M | cLog
| Yield/% | mp/°C |
|---|---|---|---|---|---|
| 2a | 28.4 ± 1.4 (5) | ND | 2.18 | 69 | 198 |
| 2b | 50.8 ± 2.1 (12) | 3.98 | 1.50 | 70 | 202 |
| 2c | 74.2 ± 3.6 (6) | 4.30 | 2.69 | 79 | 248 |
| 2d | 74.2 ± 2.4 (10) | 4.32 | 2.97 | 85 | 250 |
| 2e | 43.7 ± 3.8 (3) | ND | 1.92 | 67 | 171 |
| 2f | 47.1 ± 3.7 (7) | ND | 2.25 | 12 | 227 |
| 2g | 16.0 ± 2.4 (6) | ND | 1.87 | 100 | 350 |
[a] Values are given as the mean ± SEM, with the number of experiments in parentheses; [b] Data generated using HyperChem.
Figure 5DBTDs inhibited IGABA in a concentration-dependent manner. (A) Representative IGABA recordings from a myenteric neuron in the presence of various concentrations of 2b, which was added 3 min before GABA application. (B) Concentration—response curves for the effects of the DBTDs on the amplitude of IGABA. The lines indicate fits to the experimental data using a two-parameter logistic function, [22] assuming an inhibition of 100%. Each data point represents the mean ± SEM from 3–12 individual experiments.
Figure 6The inhibitory effects of 2b on GABAA receptors were mediated by an extracellular binding site. A) IGABA for a 100 μM concentration of 2b in the pipette (2b-/i), 10 min after obtaining the whole cell. IGABA was recorded before (-/i) and in presence of extracellular (o/i) 2b (100 μM for 3 min). B) Bars indicate the average amplitude of IGABA, and the lines above indicate the SEM. IGABA amplitude or the inhibitory effect of 2b did not differ significantly (NS) by the presence of 2b inside the pipette. Statistical comparison of the data was done using the unpaired Student’s t-test.
Figure 72b inhibits IGABA in a non-competitive manner. (A) Concentration–response curves for GABA in the absence (Control) and in the presence of 2b. Responses were normalized with respect to the curves obtained in the presence of 3 mM GABA in each cell and in the absence of 2b. Each point represents the mean ± SEM for 5–12 neurons. The lines indicate fits of experimental data to a three-parameter logistic function.
Figure 8The inhibitory effects of compounds 2 on GABAA channels were voltage independent. A) IGABA induced by 300 μM GABA without (Control) or in presence of 2c (100 μM) at −60 mV (upper traces) and +40 mV (lower traces) from the same neuron. IGABA was recorded at 5 min intervals, and 2c was applied 3 min before the second GABA application. B) The average (bars) inhibitory effect of 2b, 2c, and 2d was the same at both membrane potentials. Lines over the bars indicate the SEM.
Figure 92c-induced inhibition of GABAA channels was unaffected by picrotoxin (PTx). Bars and lines on their top, are means and SEM (n = 4). Statistical comparison of each pair of bars was done using the paired Student’s t-test. P values and non significant (NS) differences are indicated.
Figure 10The inhibitory effects of compounds 2 on the GABAA channels were independent of the benzodiazepine binding site. (A) First and last traces represent control currents induced by GABA (300 μM). The two middle traces were recorded in 2d (100 μM) alone or plus flumazenil (10 μM), all traces are from the same neuron. (B) Each pair of bars represents the mean inhibition of IGABA induced by DBTDs, before (Control) and in the presence of flumazenil. Lines over the bars indicate the SEM.