| Literature DB >> 30322136 |
Pankaj Pandey1, Kuldeep K Roy2,3, Haining Liu4, Guoyi Ma5, Sara Pettaway6, Walid F Alsharif7, Rama S Gadepalli8, John M Rimoldi9,10, Christopher R McCurdy11,12, Stephen J Cutler13,14, Robert J Doerksen15,16.
Abstract
Natural products are an abundant source of potential drugs, and their diversity makes them a rich and viable prospective source of bioactive <span class="Chemical">cannabinoid ligands. <span class="Gene">Cannabinoid receptor 1 (CB1) antagonists are clinically established and well documented as potential therapeutics for treating obesity, obesity-related cardiometabolic disorders, pain, and drug/substance abuse, but their associated CNS-mediated adverse effects hinder the development of potential new drugs and no such drug is currently on the market. This limitation amplifies the need for new agents with reduced or no CNS-mediated side effects. We are interested in the discovery of new natural product chemotypes as CB1 antagonists, which may serve as good starting points for further optimization towards the development of CB1 therapeutics. In search of new chemotypes as CB1 antagonists, we screened the in silico purchasable natural products subset of the ZINC12 database against our reported CB1 receptor model using the structure-based virtual screening (SBVS) approach. A total of 18 out of 192 top-scoring virtual hits, selected based on structural diversity and key protein⁻ligand interactions, were purchased and subjected to in vitro screening in competitive radioligand binding assays. The in vitro screening yielded seven compounds exhibiting >50% displacement at 10 μM concentration, and further binding affinity (Ki and IC50) and functional data revealed compound 16 as a potent and selective CB1 inverse agonist (Ki = 121 nM and EC50 = 128 nM) while three other compounds-2, 12, and 18-were potent but nonselective CB1 ligands with low micromolar binding affinity (Ki). In order to explore the structure⁻activity relationship for compound 16, we further purchased compounds with >80% similarity to compound 16, screened them for CB1 and CB2 activities, and found two potent compounds with sub-micromolar activities. Most importantly, these bioactive compounds represent structurally new natural product chemotypes in the area of cannabinoid research and could be considered for further structural optimization as CB1 ligands.Entities:
Keywords: cannabinoid receptors; docking; radioligand binding assay; structure-based virtual screening; virtual screening
Mesh:
Substances:
Year: 2018 PMID: 30322136 PMCID: PMC6222380 DOI: 10.3390/molecules23102630
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1The workflow used for protein structure-based virtual screening in this study. The number of compounds obtained at each step of virtual screening is shown in parentheses.
Figure 2Chemical structures of the four molecules newly identified as cannabinoid (CB) ligands.
Figure 3The binding displacement curves obtained for compounds 2, 12, 16, and 18 for the CB1 receptor (A) and CB2 receptor (B) in the cannabinoid radioligand binding assay. CP55,940 was used as a positive control.
The binding affinities (Ki and IC50) of selected compounds against CB1 and CB2 receptors.
| Compound | IC50 ± SEM (μM) | Ki ± SEM (μM) | ||
|---|---|---|---|---|
| CB1 | CB2 | CB1 | CB2 | |
|
| 3.2 ± 1.0 | 3.25 ± 0.5 | 1.62 ± 0.5 | 1.62 ± 0.51 |
|
| >5.3 ± 1.4 | >5.93 ± 0.8 | >2.6 ± 0.7 | >2.97 ± 0.4 |
|
| 20.8 ± 4.9 | ND | 10.4 ± 2.5 | ND |
|
| 0.242 ± 0.07 | ND | 0.121 ± 0.04 | ND |
|
| 24.6 ± 2.6 | 0.101 ± 0.035 | 12.3 ± 1.3 | 0.051 ± 0.01 |
| CP55,940 | 9.84 nM | 8.62 nM | 4.9 nM | 4.31 nM |
Represents compound’s affinity up to its solubility limit; racemic compounds; ND = not determined because the percent displacement at 10 μM was low; data from Figure 4, for which CP55,940 Ki = 1.267 ± 0.13 nM; the chromophore nature of the compound may have interfered with the radioligand detection (cf. main text).
Figure 5GTPγS functional curves for the CB1 receptor of compounds 2 (A), 12 (B), and 16 (C).
Figure 4The binding displacement curves obtained when 16 was rescreened in the cannabinoid receptor 1 radioligand binding assay. CP55,940 was used as a positive control.
Figure 6The putative binding mode for compound 2 into the CB1 (A,B) and CB2 (C,D) receptor models. Two-dimensional interaction views are shown on the left, while three-dimensional interaction views are shown on the right (ligand (cyan colored carbons) and protein binding site residues (dark grey colored carbons) are shown as sticks). The nonpolar hydrogens are not shown, for clarity.
Figure 7The putative binding mode for compound 12 into the CB1 (A,B) and CB2 (C,D) receptor models. Two-dimensional interaction views are shown on the left, while three-dimensional interaction views are shown on the right (ligand (cyan colored carbons) and protein binding site residues (dark grey colored carbons) are shown as sticks). The nonpolar hydrogens are not shown, for clarity.
Figure 8Putative binding mode of compounds 16 (A,B) and 18 (C,D) with the CB1 model. Two-dimensional interaction views are shown on the left, while three-dimensional interaction views are shown on the right (ligand (cyan colored carbons) and protein binding site residues (dark grey colored carbons) are shown as sticks). The nonpolar hydrogens are not shown, for clarity.
Figure 9The analogs of compound 16.
The percent (%) displacements and the binding affinities (Ki) of compound 16 analogs against CB1 and CB2 receptors in radioligand competition assays.
| Compound | MW | (% Displacement at 10 µM) | Ki ± SEM (μM) | ||
|---|---|---|---|---|---|
| CB1 | CB2 | CB1 | CB2 | ||
|
| 436.3 | 37.4 | 44.6 | >10.0 | >10.0 |
|
| 436.3 | 3.9 | 28.4 | ND | >10.0 |
|
| 454.3 | 72.0 | 81.1 | 0.4870 ± 0.1516 | 1.084 ± 0.141 |
|
| 444.4 | 29.8 | 97.2 | NC # | 0.1556 ± 0.0173 |
|
| 321.3 | 33.0 | - | >10.0 | - |
| CP55,940 | 376.6 | 0.002162 ± 0.000420 | 0.001185 ± 0.000128 | ||
# “Not converged” means that the binding curve did not fit the expected sigmoidal shape.
Figure 10GTPγS functional curves for the CB1 receptor of compound PCB-163 (abbreviated as COMP-163).
Figure 11Overlay representation of compounds 16 (carbon in yellow) and PCB-163 (carbon in green) with rimonabant (carbon in light blue).