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dc.contributor.authorRamírez, David
dc.contributor.authorMejiá-Gutiérrez, Melissa
dc.contributor.authorInsuasty O, Braulio
dc.contributor.authorRinné, Susanne
dc.contributor.authorKiper, Aytuğ K.
dc.contributor.authorPlatzk, Magdalena
dc.contributor.authorMüller, Thomas
dc.contributor.authorDecher, Niels
dc.contributor.authorQuiroga, Jairo
dc.contributor.authorDe la Torre, Pedro
dc.contributor.authorGonzález, Wendy
dc.date.accessioned2021-07-19T21:16:28Z
dc.date.available2021-07-19T21:16:28Z
dc.date.issued2021-07-01
dc.identifier10.3390/molecules26133897
dc.identifier.issn14203049
dc.identifier.urihttps://hdl.handle.net/20.500.12728/9020
dc.description.abstractTASK channels belong to the two-pore-domain potassium (K2P) channels subfamily. These channels modulate cellular excitability, input resistance, and response to synaptic stimulation. TASK-channel inhibition led to membrane depolarization. TASK-3 is expressed in different cancer cell types and neurons. Thus, the discovery of novel TASK-3 inhibitors makes these bioactive compounds very appealing to explore new cancer and neurological therapies. TASK-3 channel blockers are very limited to date, and only a few heterofused compounds have been reported in the literature. In this article, we combined a pharmacophore hypothesis with molecular docking to address for the first time the rational design, synthesis, and evaluation of 5-(indol-2-yl)pyrazolo[3,4-b]pyridines as a novel family of human TASK-3 channel blockers. Representative compounds of the synthesized library were assessed against TASK-3 using Fluorometric imaging plate reader—Membrane Potential assay (FMP). Inhibitory properties were validated using two-electrode voltage-clamp (TEVC) methods. We identified one active hit compound (MM-3b) with our systematic pipeline, exhibiting an IC50 ≈ 30 µM. Molecular docking models suggest that compound MM-3b binds to TASK-3 at the bottom of the selectivity filter in the central cavity, similar to other described TASK-3 blockers such as A1899 and PK-THPP. Our in silico and experimental studies provide a new tool to predict and design novel TASK-3 channel blockers.es_ES
dc.language.isoenes_ES
dc.publisherMDPI AGes_ES
dc.subjectDrug designes_ES
dc.subjectMolecular dockinges_ES
dc.subjectPharmacophorees_ES
dc.subjectPyrazolo[3,4-b]pyridineses_ES
dc.subjectTASK-3 channel blockerses_ES
dc.title5-(Indol-2-yl)pyrazolo[3,4-b]pyridines as a new family of task-3 channel blockers: A pharmacophore-based regioselective synthesises_ES
dc.typeArticlees_ES


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