| Literature DB >> 25440372 |
Nicolli B de Souza, Arturene M L Carmo, Adilson D da Silva, Tanos C C França, Antoniana U Krettli1.
Abstract
BACKGROUND: Given the threat of resistance of human malaria parasites, including to artemisinin derivatives, new agents are needed. Chloroquine (CQ) has been the most widely used anti-malarial, and new analogs (CQAns) presenting alkynes and side chain variations with high antiplasmodial activity were evaluated.Entities:
Mesh:
Substances:
Year: 2014 PMID: 25440372 PMCID: PMC4265395 DOI: 10.1186/1475-2875-13-469
Source DB: PubMed Journal: Malar J ISSN: 1475-2875 Impact factor: 2.979
Figure 1Scheme of CQAns synthesis. a) 2 eq. propargyl bromide, K2CO3, EtOH, 0°C, 72 h, yield: 50 to 60%; b) 4 eq. propargyl bromide, K2CO3, EtOH, 0°C, 72 h, yield: 50 to 60%.
Activity of CQ and CQAn against . (IC ) CQ-R (W2) or CQ-S (3D7) parasites
| Molecule |
|
| |
|---|---|---|---|
|
|
| ||
| CQAn28 |
| 0.71 ± 0.03 | 14.87 ± 3.58 |
| CQAn33 |
| 0.02 ± 0.001 | 1.17 ± 0.10 |
| CQAn34 |
| 0.23 ± 0.15 | 0.3 ± 0.01 |
| CQAn37 |
| 0.07 ± 0.03 | 0.57 ± 0.24 |
| CQAn39 |
| 0.64 ± 0.29 | 2.39 ± 0.11 |
| CQAn45 |
| 0.77 ± 0.21 | 1.17 ± 0.00 |
| Chloroquine |
| 0.38±0.03 | 0.081 ± 0.019 |
*Average ± SD of the IC50 is based in two to four experiments performed with each parasite strain using anti-HRPII method.
Cytotoxicity of CQ and CQAn and SI on . parasites and therapeutic activity or selectivity index (SI), a ratio between toxicity and activity
| Molecule |
|
| |
|---|---|---|---|
| HepG2 cells | W2 (CQ-R) | 3D7 (CQ-S) | |
| CQAn28 | 1508.56 ± 344.50 | 2125 | 101 |
| CQAn33 | 152.89 ± 12.86 | 7645 | 131 |
| CQAn34 | 943.29 ± 73.15 | 4101 | 3144 |
| CQAn37 | 1699.24 ± 10.07 | 24275 | 2981 |
| CQAn39 | ≥3207.08 | 5011 | 1342 |
| CQAn45 | 1015.84 ± 42.97 | 1319 | 868 |
| Chloroquine | 410.4±26.6 | 1080 | 5,679 |
*Average ± SD of two to four experiments measured through MTT-colorimetric assay.
Anti-malarial activity of chloroquine (CQ) and its analogs (CQAn) against . evaluated as percentage reduction of parasitaemia on days after inoculation with either a CQ sensitive or resistant strain of the parasite*
| CQAn | CQ-Sensitive 25 mg/Kg | CQ-Resistant 50 mg/Kg | ||
|---|---|---|---|---|
| Day 5 | Day 7 | Day 5 | Day 7 | |
|
| 94a | 24a | 0b | 0 |
|
| 73a | 57a | 53 | 52 |
|
| 99 | 81 | 0b | 0 |
|
| 100 | 93 | 47 | 33 |
|
| 95 | 92 | 62 | 30 |
|
| 88 | 50 | 63 | 51 |
|
| 100 | 97 | 0c | 0c |
*Reduction calculated in relation to control non-treated mice (100% of parasite growth).
aAdapted from de Souza et al. [19]; all the compounds were used at 50mg/Kg, except as indicated, in the dose of 25 mg/Kg because there was not enough material for a higher doseb. In the case of CQ used as control in the test with the resistant parasites, the dose used was 150 mg/Kg, which was totally inactive, as expectedc.
Inhibitory concentrations of β-haematin formation by chloroquine (CQ) and two analogs (CQAn)*
| CQAn | Exp | Mean ± SD | ||
|---|---|---|---|---|
| 1 | 2 | 3 | ||
|
| 4.7 | 3.0 | 5.6 | 4.3 ± 1.3 |
|
| 2.7 | 10.2 | 7.5 | 8.9 ± 3.8 |
|
| 0.6 | 2.0 | 5.0 | 3.5 ± 2.2 |
*Results expressed as IC50 in mM.
Docking results of NADH, CQ and CQAn inside LDH
| Ligand | Intermolecular energy (kcal mol -1) | H-bond energy (kcal mol -1) | Residues and water molecules involved in H-bonds | Distance (Å) | H-bond energy (kcal mol -1) |
|---|---|---|---|---|---|
| NADH RMSD 1.437 | -180.166 | -11.878 | Met30(2) | 3.293 | -0.331 |
| 2.972 | -1.534 | ||||
| Gly99 | 3.329 | -1.355 | |||
| Asp53 | 3.259 | -1.707 | |||
| Ile31 | 2.267 | 0.288 | |||
| Gly29 | 2.876 | -0.758 | |||
| Gly32 | 3.301 | -1.495 | |||
| Phe100 | 3.213 | -1.933 | |||
| Ser245 | 3.585 | -0.077 | |||
| Leu163(2) | 3.536 | -0.060 | |||
| 3.522 | -0.392 | ||||
| His195 | 3.595 | -0.025 | |||
| Val138 | 2.737 | -2.500 | |||
| H2O (2) | 3.466 | -0.671 | |||
| 3.172 | -2.142 | ||||
| H2O | 1.004 | 11.271 | |||
| H2O | 2.946 | -2.500 | |||
| H2O | 1.992 | 2.675 | |||
| H2O | 3.111 | -2.445 | |||
| H2O | 3.086 | -2.500 | |||
| H2O | 2.911 | -2.500 | |||
| CQ | -148.459 | -3.232 | Ile31 | 3.344 | -1.278 |
| Met30 | 3.013 | -0.962 | |||
| (-133.455) | Asn140 | 2.866 | -0.992 | ||
| H2O | 3.210 | -1.951 | |||
| CQAn28 | -131.266 | -4.086 | Asp53 | 3.283 | -1.586 |
| (-123.897) | Gly99 | 3.014 | -2.500 | ||
| CQAn33 | -135.340 | -4.602 | Val138 | 2.593 | -2.105 |
| Thr97 | 2.843 | -2.498 | |||
| (-123.651) | H2O | 3.093 | -2.500 | ||
| H2O | 2.758 | -2.500 | |||
| H2O | 3.336 | -1.321 | |||
| CQAn34 | -123.505 | -3.088 | Asp53 | 2.762 | -1.575 |
| (-115.999) | Thr97 | 3.127 | -1.513 | ||
| H2O | 2.967 | -2.500 | |||
| CQAn37 | -141.264 | -2.500 | Asp53 | 2.938 | -2.500 |
| (-131.154) | H2O | 3.210 | -1.951 | ||
| CQAn39 | -145.727 | -2.500 | Asp53 | 2.869 | -2.500 |
| (-123.226) | H2O | 3.263 | -1.685 | ||
| CQAn45 | -131.123 | -1.544 | Gly99 | 2.999 | -1.544 |
| (-110.764) |
Docking results of NADH, CQ and CQAn inside LDH
| Ligand | Intermolecular energy (kcal mol -1) | H-bond energy (kcal mol -1) | Residues and water molecules involved in H-bonds | Distance (Å) | H-bond energy (kcal mol -1) |
|---|---|---|---|---|---|
| NADH RMSD 0.956 | -191.613 | -20.561 | Asp119 (2) | 3.085 | -2.500 |
| 2.817 | -1.588 | ||||
| Ser145 | 3.131 | -2.343 | |||
| Ala146 | 2.627 | -0.675 | |||
| Lys147 | 2.635 | -2.500 | |||
| Lys117 | 3.482 | -0.592 | |||
| Gly15 | 2.566 | -2.215 | |||
| Val14 | 2.851 | -0.277 | |||
| Lys16 (2) | 2.940 | -2.500 | |||
| 2.470 | -0.726 | ||||
| (-190.630) | Gly13 | 2.975 | -0.360 | ||
| Ala18 | 3.288 | -1.561 | |||
| Ser17(2) | 2.794 | -1.529 | |||
| 3.315 | -1.193 | ||||
| H2O | 2.725 | -2.500 | |||
| H2O (2) | 3.132 | -2.342 | |||
| 2.578 | -2.313 | ||||
| H2O (3) | 3.359 | -1.203 | |||
| 2.982 | -2.500 | ||||
| 3.213 | -1.934 | ||||
| CQ | -127.669 | -2.983 | Ala146 | 3.390 | -0.833 |
| (-104.576) | Asn116 | 2.785 | -2.149 | ||
| H2O | 3.438 | -0.812 | |||
| CQAn28 | -123.535 | -3.669 | Ala146 | 3.218 | -1.394 |
| (-114.612) | Asp116 | 2.922 | -2.275 | ||
| H2O | 3.193 | -2.033 | |||
| CQAn33 | -125.365 | -3.298 | Lys147 | 3.551 | -0.143 |
| (-112.274) | Ala146 | 3.139 | -1.599 | ||
| Asn116 | 3.206 | -1.556 | |||
| CQAn34 | -113.935 | -3.842 | Asn116 | 2.974 | -2.074 |
| (-104.054) | Ala146 | 3.126 | -1.768 | ||
| H2O | 3.204 | -1.979 | |||
| CQAn37 | -121.066 | -3.588 | Gly15 | 3.398 | -0.163 |
| Asn116 | 3.166 | -1.425 | |||
| (-110.364) | Ala146 | 3.051 | -1.904 | ||
| Lys147 | 3.573 | -0.010 | |||
| CQAn39 | -129.262 | -2.498 | Asn116 | 2.799 | -2.068 |
| (-107.522) | Ala146 | 3.493 | -0.430 | ||
| CQAn45 | -128.632 | -1.411 | Asn116 | 3.401 | -0.843 |
| (-94.840) | Ala146 | 3.420 | -0.569 | ||
| H2O | 3.074 | -2.500 |
Figure 2Interactions of CQAn33 inside HssLDH (left) and PfLDH (right). Water molecules inside the active sites are represented as red spheres and H-bonds are shown as dotted green lines.
Figure 3Surface representation of the binding sites of CQAn33 (NADH pockets) inside HssLDH (left) and PfLDH (right). Red means negative charges, blue means positive charges and white means neutral.