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1.
Braz J Infect Dis ; 27(2): 102743, 2023.
Article in English | MEDLINE | ID: mdl-36731538

ABSTRACT

Natural products and their derivatives have been sources of search and research for new drugs for the treatment of neglected diseases. Naphthoquinones, a special group of quinones, are products of natural metabolites with a wide spectrum of biological activities and represent a group of interesting molecules for new therapeutic propositions. Among these compounds, lapachol stands out as a molecule from the heartwood of Tabebuia sp. whose structural changes resulted in compounds considered promising, such as epoxy-α-lapachone (ELAP). The biological activity of ELAP has been demonstrated, so far, for parasitic protozoa such as Leishmania spp., Trypanosoma cruzi and Plasmodium spp., species causing diseases needing new drug development and adequate health policy. This work gathers in vitro and in vivo studies on these parasites, as well as the toxicity profile, and the probable mechanisms of action elucidated until then. The potential of ELAP-based technology alternatives for a further drug is discussed here.


Subject(s)
Naphthoquinones , Parasites , Trypanosoma cruzi , Humans , Animals , Ethylene Oxide , Naphthoquinones/pharmacology , Naphthoquinones/chemistry , Naphthoquinones/therapeutic use , Quinones
2.
Braz. j. infect. dis ; 27(2): 102743, 2023. tab, graf
Article in English | LILACS-Express | LILACS | ID: biblio-1439697

ABSTRACT

ABSTRACT Natural products and their derivatives have been sources of search and research for new drugs for the treatment of neglected diseases. Naphthoquinones, a special group of quinones, are products of natural metabolites with a wide spectrum of biological activities and represent a group of interesting molecules for new therapeutic propositions. Among these compounds, lapachol stands out as a molecule from the heartwood of Tabebuia sp. whose structural changes resulted in compounds considered promising, such as epoxy-a-lapachone (ELAP). The biological activity of ELAP has been demonstrated, so far, for parasitic protozoa such as Leishmania spp., Trypanosoma cruzi and Plasmodium spp., species causing diseases needing new drug development and adequate health policy. This work gathers in vitro and in vivo studies on these parasites, as well as the toxicity profile, and the probable mechanisms of action elucidated until then. The potential of ELAP-based technology alternatives for a further drug is discussed here.

3.
Molecules ; 26(12)2021 Jun 10.
Article in English | MEDLINE | ID: mdl-34200517

ABSTRACT

Epoxy-α-lapachone (Lap) and Epoxymethyl-lawsone (Law) are oxiranes derived from Lapachol and have been shown to be promising drugs for Leishmaniases treatment. Although, it is known the action spectrum of both compounds affect the Leishmania spp. multiplication, there are gaps in the molecular binding details of target enzymes related to the parasite's physiology. Molecular docking assays simulations were performed using DockThor server to predict the preferred orientation of both compounds to form stable complexes with key enzymes of metabolic pathway, electron transport chain, and lipids metabolism of Leishmania spp. This study showed the hit rates of both compounds interacting with lanosterol C-14 demethylase (-8.4 kcal/mol to -7.4 kcal/mol), cytochrome c (-10.2 kcal/mol to -8.8 kcal/mol), and glyceraldehyde-3-phosphate dehydrogenase (-8.5 kcal/mol to -7.5 kcal/mol) according to Leishmania spp. and assessed compounds. The set of molecular evidence reinforces the potential of both compounds as multi-target drugs for interrupt the network interactions between parasite enzymes, which can lead to a better efficacy of drugs for the treatment of leishmaniases.


Subject(s)
Leishmania/drug effects , Naphthoquinones/pharmacology , Computer Simulation , Cytochromes c/metabolism , Electron Transport Chain Complex Proteins/metabolism , Epoxy Compounds/pharmacology , Glyceraldehyde-3-Phosphate Dehydrogenases/metabolism , Leishmaniasis/drug therapy , Leishmaniasis/metabolism , Lipid Metabolism/drug effects , Metabolic Networks and Pathways/drug effects , Molecular Docking Simulation
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