| Literature DB >> 28481276 |
Guzmán Álvarez1, Cintya Perdomo2, Cathia Coronel3, Elena Aguilera4, Javier Varela5, Gonzalo Aparicio6,7, Flavio R Zolessi8,9, Nallely Cabrera10, Celeste Vega11, Miriam Rolón12, Antonieta Rojas de Arias13, Ruy Pérez-Montfort14, Hugo Cerecetto15, Mercedes González16.
Abstract
A series of fifty arylideneketones andEntities:
Keywords: anti-T. cruzi and anti-Leishmania spp. activity; arylidene ketones; cruzipain; in vivo toxicity; thiazolidene hydrazines; triosephosphate isomerase; zebrafish
Mesh:
Substances:
Year: 2017 PMID: 28481276 PMCID: PMC6154605 DOI: 10.3390/molecules22050709
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Drug candidates for Chagas disease, which also are leishmanicidal compounds. These compounds have an excellent profile as drugs for Chagas disease and are easy and inexpensive to produce. (A) A culture of Vero cells infected with T. cruzi (see the cytosol full of amastigotes); (B) The same cell culture after 72 h of treatment with 5 µM HIT1 (see the cytosol without amastigotes) [12,13,19]
Figure 2Synthetic procedures used to prepare the HIT1 derivatives (blue) and for the molecular stripping (black). RT is room temperature 25 °C, CDi is 1,1′-carbonyldiimidazole.
Figure 3Synthetic procedures used to prepare the HIT2 derivatives (blue) and for the molecular stripping (black).
(A) Trypanocidal activity against T. cruzi and Leishmania spp. for the thiazolidenehydrazine derivatives. The test was carried out on T. cruzi epimastigotes and L. braziliensis and L. infantum promastigotes. We show only the best trypanocidal compounds; the complete data are in Table S1 of the Supporting Material. The multi-anti-parasitic compounds are shown on a green background; (B) Trypanocidal activity against T. cruzi and Leishmania spp. for the diarylideneketones. The test was carried out on T. cruzi epimastigotes and L. braziliensis and L. infantum promastigotes. We show only the best trypanocidal compounds; the complete data are in Table S1 of the Supporting Material. The multi-anti-parasitic compounds are shown on a green background.
| 1.6 ± 0.5 c | 7 ± 1 | 2.0 ± 0.2 | ||
| 3.0 ± 0.5 | 10 ± 1 | 8 ± 2 | ||
| 0.09 ± 0.02 | 33 ± 11 | 58 ± 12 | ||
| 3.1 ± 0.2 d | 12 ± 5 | 4 ± 1 | ||
| 1.6 ± 0.3 | 16 ± 4 | 14 ± 2 | ||
| 25 ± 8 | 18 ± 5 | 21 ± 2 | ||
| Glucantime | - | 18 ± 2 | 26 ± 9 | |
| Miltefosine | 8 ± 1 | - | 0.9 ± 0.2 | |
| Benznidazole | 7 ± 1 | - | - | |
| Curcumin | 5.6 ± 1 e | - | 5.9 ± 0.3 b | |
| 31 ± 2 f | 0.9 ± 0.2 c | - | ||
| 5.1 ± 0.3 h | 4.2 ± 0.7 | 9.6 ± 0.9 | ||
| 24 ± 2 h | 10 ± 6 | 6 ± 2 | ||
| 5.0 ± 0.7 h | 36 ± 9 | 31 ± 9 | ||
| 8.2 ± 2.0 h | 16 ± 2 | 6 ± 1 | ||
| 5.4 ± 1.6 h | 18 ± 4 | 16 ± 4 | ||
| 0.6 ± 0.2 h | 7 ± 1 | 13 ± 7 | ||
| 5.0 ± 0.8 h | 8 ± 2 | 4.0 ± 0.5 | ||
| 12.6 ± 1.4 h | 36 ± 3 | 19 ± 5 | ||
| 0.04 ± 0.01 h | >100 | 11 ± 3 | ||
| 0.6 ± 0.2 h | >100 | 16 ± 3 | ||
| Glucantime | - | 18 ± 2 | 26 ± 9 | |
| Miltefosine | 8 ± 3 | 0.9 ± 0.2 | - | |
| Benznidazole | 7 ± 1 | - | - | |
a Standard deviation on the triplicate; b The compounds codes are exactly the same from the personal codes on the Lab (GATN°, GATkN°, GATjmN°, EAN° and PgN°); c Data from [13]; d data from [15]; e Data from [21]; f Data from [22] (the compound code is exactly the same from the reference); g The compounds codes are exactly the same from the personal codes on the Lab (GATN°, GATkN°, GATjmN°, EAN° and PgN°); h Data from [12].
Nonspecific cytotoxicity for mammalian cells. The test was carried out on NCTC929 fibroblasts and J774.1 murine macrophages. We show the selectivity indexes for L. braziliensis (promastigotes), L. infantum (promastigotes) and T. cruzi (epimastigotes), respectively. The color code highlights the good (green ˃ 25), medium (yellow 25–5) and bad (red < 5) selectivity indexes (SI).
| Compound | IC50 ± SD (µM) Fibroblast NCTC929 | IC50 ± SD (µM) Murine Macrophages | SI e NCTC/ | SI NCTC/ | SI J774.1/ |
|---|---|---|---|---|---|
| 405 ± 10 | 60 ± 6 a | 58 | 203 | 37 a | |
| 319 ± 16 | 66 ± 7 | 32 | 40 | 22 | |
| 1443 ± 30 | 55 ± 5 | 44 | 25 | 611 | |
| 346 ± 9 | 30 ± 5 b | 29 | 87 | 10 | |
| 165 ± 5 | 45 ± 5 | 10 | 12 | 28 | |
| 160 ± 7 | 25 ± 3 | 9 | 8 | 1 | |
| Curcumin | - | 10 ± 2 d | 2 | - | 2 |
| - | 21± 5 d | 23 | - | 1 | |
| 114 ± 2 | 115 ± 6 c | 11 | 19 | 5 c | |
| 494 ± 25 | 60 ± 3 c | 14 | 16 | 12 c | |
| 543 ± 15 | 33 ± 8 c | 34 | 91 | 4 c | |
| 756 ± 17 | 19 ± 2 c | 42 | 47 | 4 c | |
| 160 ± 9 | 10 ± 2 c | 23 | 12 | 17 c | |
| 158 ± 5 | 38 ±7 c | 20 | 40 | 8 c | |
| 1704 ± 40 | 10 ± 2 c | 47 | 90 | 1 c | |
| 4909 ± 36 | 15 ± 1 c | nc | 446 | 375 c | |
| 1985 ± 20 | 20 ± 1 c | nc | 124 | 33 c | |
| Glucantime | - | 15 ± 1 | 1 | 0.5 | - |
| Miltefosine | - | 50 ± 7 | - | 56 | 6 |
| Benznidazole | - | 400 ± 4 | - | - | 57 |
a Data from [13]; b Data from [15]; c Data from [12]; d Data from [21,22]. e SI is the ratio between IC50 mammalian cell and IC50 in parasite.
Figure 4Molecular stripping of HIT1 for T. cruzi. In the figure, we show, using the emoticon code, the different effects on the trypanocidal activity of our compounds caused by structural changes (very good (IC50 < 5 µM), good (IC50 5–25 µM), no change and bad (IC50 ˃ 25 µM). The compounds codes are exactly the same from the personal codes on the Lab, GATN°, GATkN°, GATjmN°, EAN° and PgN°.
Figure 5Molecular stripping of GAT1033 for T. cruzi. In the figure, we show using the emoticon code the different effects on the trypanocidal activity of our compounds caused by structural changes (very good (IC50 < 5 µM), good (IC50 5–25 µM), no change and bad (IC50 ˃ 25 µM).
Figure 6Multi-anti-parasitic activity comparison scheme. We show using the emoticon code a qualitative comparison for the trypanocidal activities of the arylideneketones on T. cruzi, L. braziliensis and L. infantum (good IC50 < 25 µM and bad IC50 ˃ 25 µM).
Inhibition of the enzymatic activity of triosephosphate isomerase and cruzipain.
| Compound | Percentage of Inhibition a,b/IC50 ± SD (µM) | Percentage of Inhibition a,b/IC50 ± SD (µM) | Percentage of Inhibition a,b/IC50 ± SD (µM) Cruzipain |
|---|---|---|---|
| 0/- | 0/- | 0/- | |
| 0/- | 0/- | 100/4.3 ± 0.4 | |
| 100/3.0 ± 0.7 d | 0/- | 48/- d | |
| 100/3.3 ± 0.5 d | 100/˂25 e | 0/- d | |
| 100/0.086 ± 0.007 d | 100/˂25 e | 80/37.0 ± 1.1 d | |
| 0/- d | 100/˂25 e | 50/- d |
a Percentage of enzymatic inhibition at 100 µM; b The experiments were done in triplicate; c Triosephosphate isomerase from Leishmania mexicana; d Data from [17]; e The IC50 values is between 12.5 and 25 µM.
Figure 7Dose-response effect of GAT1033 on the curvature of the tail. Incubation concentrations were 0–300 µM for 72 h (illustrated with the brown triangle). The picture at the bottom shows a non-treated embryo at the same developmental stage.
Figure 8Differential distribution of GAT1033 in embryos with and without chorion. The microscopy images on the left show the eye and parts of the yolk of 24-hpf zebrafish embryos. The intrinsic fluorescence of the compound was revealed using a laser scanning confocal microscope, after 18 h of incubation. The yolk (marked with *) shows a strong autofluorescence under these imaging conditions. The graph on the right shows the quantitation of fluorescence intensity (in arbitrary units AU) in treated embryos with and without chorion.
Figure 9Bioconcentration effects of GAT1033. The bioconcentration effect can be seen at different incubation times. The embryos were incubated at 25 µM for up to 66 h. wC, with chorion; woC, without chorion. The graph shows the quantitation of the compound (in mg per embryo mg/e) in treated embryos with and without chorion.