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1.
Mol Inform ; 41(12): e2200133, 2022 12.
Artículo en Inglés | MEDLINE | ID: mdl-35961924

RESUMEN

Here we report the development of MolPredictX, an innovate and freely accessible web interface for biological activity predictions of query molecules. MolPredictX utilizes in-house QSAR models to provide 27 qualitative predictions (active or inactive), and quantitative probabilities for bioactivity against parasitic (Trypanosoma and Leishmania), viral (Dengue, Sars-CoV and Hepatitis C), pathogenic yeast (Candida albicans), bacterial (Salmonella enterica and Escherichia coli), and Alzheimer disease enzymes. In this article, we introduce the methodology and usability of this webtool, highlighting its potential role in the development of new drugs against a variety of diseases. MolPredictX is undergoing continuous development and is freely available at https://www.molpredictx.ufpb.br/.


Asunto(s)
Aprendizaje Automático
2.
ChemMedChem ; 17(15): e202200196, 2022 08 03.
Artículo en Inglés | MEDLINE | ID: mdl-35678042

RESUMEN

Chagas disease, a neglected tropical disease, is endemic in 21 Latin American countries and particularly prevalent in Brazil. Chagas disease has drawn more attention in recent years due to its expansion into non-endemic areas. The aim of this work was to computationally identify and experimentally validate the natural products from an Annonaceae family as antichagasic agents. Through the ligand-based virtual screening, we identified 57 molecules with potential activity against the epimastigote form of T. cruzi. Then, 16 molecules were analyzed in the in vitro study, of which, six molecules displayed previously unknown antiepimastigote activity. We also evaluated these six molecules for trypanocidal activity. We observed that all six molecules have potential activity against the amastigote form, but no molecules were active against the trypomastigote form. 13-Epicupressic acid seems to be the most promising, as it was predicted as an active compound in the in silico study against the amastigote form of T. cruzi, in addition to having in vitro activity against the epimastigote form.


Asunto(s)
Annonaceae , Productos Biológicos , Enfermedad de Chagas , Tripanocidas , Trypanosoma cruzi , Productos Biológicos/farmacología , Productos Biológicos/uso terapéutico , Enfermedad de Chagas/tratamiento farmacológico , Tripanocidas/farmacología , Tripanocidas/uso terapéutico
3.
Molecules ; 27(4)2022 Feb 17.
Artículo en Inglés | MEDLINE | ID: mdl-35209156

RESUMEN

Essential oils (EOs) are a mixture of chemical compounds with a long history of use in food, cosmetics, perfumes, agricultural and pharmaceuticals industries. The main object of this study was to find chemical patterns between 45 EOs and antiprotozoal activity (antiplasmodial, antileishmanial and antitrypanosomal), using different machine learning algorithms. In the analyses, 45 samples of EOs were included, using unsupervised Self-Organizing Maps (SOM) and supervised Random Forest (RF) methodologies. In the generated map, the hit rate was higher than 70% and the results demonstrate that it is possible find chemical patterns using a supervised and unsupervised machine learning approach. A total of 20 compounds were identified (19 are terpenes and one sulfur-containing compound), which was compared with literature reports. These models can be used to investigate and screen for bioactivity of EOs that have antiprotozoal activity more effectively and with less time and financial cost.


Asunto(s)
Antiprotozoarios/análisis , Antiprotozoarios/farmacología , Aprendizaje Automático , Aceites Volátiles/análisis , Aceites Volátiles/farmacología , Aceites de Plantas/análisis , Aceites de Plantas/farmacología , Cuba , Bases de Datos Factuales , Pruebas de Sensibilidad Parasitaria
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