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1.
Medicine (Baltimore) ; 103(18): e38039, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38701291

ABSTRACT

As a result of increasing drug resistance, crossover resistance development, prolonged therapy, and the absence of different agents with innovative methods for implementation, the efficacy of recent antileishmanial medications is severely declining. So, it is vital to look for other medications from botanical remedies that have antileishmanial activity. The latex of Euphorbia abyssinica (E abyssinica) and the leaves of Clematis simensis fresen (C simensis) were macerated in methanol (80%). In vitro antileishmanial activity of the preparation was tried on promastigotes of Leishmania aethiopica (L aethiopica) and Leishmania donovani (L donovani) using resazurin assay, and fluorescence intensity was measured. One percent of dimethyl sulfoxide (DMSO) and media as negative control and amphotericin B as positive control were used. Additionally, hemolytic & phytochemical tests of the preparation were done. The mean and standard errors of each extract were evaluated and interpreted for statistical significance using one-way analysis of variance. From sigmoidal dose-response curves of % inhibition, half maximal inhibitory concentration (IC50) values were determined by GraphPad Prism and Microsoft Excel; outcomes were presented as mean ±â€…standard error of mean of triplicate trials. P < .05 was statistical significance. The phytochemical screening of C simensis and E abyssinica confirmed the existence of steroids, phenols, tannins, saponins, alkaloids, terpenoids, flavonoids and glycosides. C simensis possesses antileishmanial activity with IC50 outcomes of 46.12 ±â€…0.03 and 8.18 ±â€…0.10 µg/mL on the promastigotes of L aethiopica and L donovani, respectively. However, E abyssinica showed stronger activity with IC50 outcomes of 16.07 ±â€…0.05 µg/mL and 4.82 ±â€…0.07 µg/mL on L aethiopica and L donovani, respectively. C simensis and E abyssinica have a less hemolytic effect on human red blood cells at low concentrations. The outcomes from this investigation demonstrated that the preparation of C simensis and E abyssinica indicated significant antileishmanial activity. Therefore, further in vivo assessment of antileishmanial, cytotoxicity activity and quantitative identification of secondary metabolites are highly recommended.


Subject(s)
Antiprotozoal Agents , Euphorbia , Latex , Plant Extracts , Plant Leaves , Plant Extracts/pharmacology , Euphorbia/chemistry , Latex/pharmacology , Latex/chemistry , Antiprotozoal Agents/pharmacology , Plant Leaves/chemistry , Humans , Leishmania donovani/drug effects , Inhibitory Concentration 50 , Leishmania/drug effects , Methanol , Solvents , Hemolysis/drug effects
2.
Drug Dev Res ; 85(3): e22194, 2024 May.
Article in English | MEDLINE | ID: mdl-38704828

ABSTRACT

The aim the present study was to investigate the impact of novel pentavalent organobismuth and organoantimony complexes on membrane integrity and their interaction with DNA, activity against Sb(III)-sensitive and -resistant Leishmania strains and toxicity in mammalian peritoneal macrophages. Ph3M(L)2 type complexes were synthesized, where M = Sb(V) or Bi(V) and L = deprotonated 3-(dimethylamino)benzoic acid or 2-acetylbenzoic acid. Both organobismuth(V) and organoantimony(V) complexes exhibited efficacy at micromolar concentrations against Leishmania amazonensis and L. infantum but only the later ones demonstrated biocompatibility. Ph3Sb(L1)2 and Ph3Bi(L1)2 demonstrated distinct susceptibility profiles compared to inorganic Sb(III)-resistant strains of MRPA-overexpressing L. amazonensis and AQP1-mutated L. guyanensis. These complexes were able to permeate the cell membrane and interact with the Leishmania DNA, suggesting that this effect may contribute to the parasite growth inhibition via apoptosis. Taken altogether, our data substantiate the notion of a distinct mechanism of uptake pathway and action in Leishmania for these organometallic complexes, distinguishing them from the conventional inorganic antimonial drugs.


Subject(s)
Antimony , Antiprotozoal Agents , Cell Membrane , Drug Resistance , Organometallic Compounds , Antimony/pharmacology , Antimony/chemistry , Animals , Organometallic Compounds/pharmacology , Mice , Cell Membrane/drug effects , Antiprotozoal Agents/pharmacology , Macrophages, Peritoneal/drug effects , Macrophages, Peritoneal/parasitology , Leishmania/drug effects , DNA, Protozoan , Leishmania infantum/drug effects , Leishmania infantum/genetics , Mice, Inbred BALB C
3.
An Acad Bras Cienc ; 96(2): e20230375, 2024.
Article in English | MEDLINE | ID: mdl-38747836

ABSTRACT

In pursuit of potential agents to treat Chagas disease and leishmaniasis, we report the design, synthesis, and identification novel naphthoquinone hydrazide-based molecular hybrids. The compounds were subjected to in vitro trypanocide and leishmanicidal activities. N'-(1,4-Dioxo-1,4-dihydronaphthalen-2-yl)-3,5-dimethoxybenzohydrazide (13) showed the best performance against Trypanosoma cruzi (IC50 1.83 µM) and Leishmania amazonensis (IC50 9.65 µM). 4-Bromo-N'-(1,4-dioxo-1,4-dihydronaphthalen-2-yl)benzohydrazide (16) exhibited leishmanicidal activity (IC50 12.16 µM). Regarding trypanocide activity, compound 13 was low cytotoxic to LLC-MK2 cells (SI = 95.28). Furthermore, through molecular modeling studies, the cysteine proteases cruzain, rhodesain and CPB2.8 were identified as the potential biological targets.


Subject(s)
Drug Design , Hydrazines , Leishmania , Naphthoquinones , Trypanocidal Agents , Trypanosoma cruzi , Naphthoquinones/pharmacology , Naphthoquinones/chemistry , Naphthoquinones/chemical synthesis , Trypanosoma cruzi/drug effects , Trypanocidal Agents/pharmacology , Trypanocidal Agents/chemical synthesis , Trypanocidal Agents/chemistry , Leishmania/drug effects , Hydrazines/chemistry , Hydrazines/pharmacology , Animals , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemical synthesis , Antiprotozoal Agents/chemistry , Parasitic Sensitivity Tests , Inhibitory Concentration 50 , Structure-Activity Relationship , Cysteine Endopeptidases
4.
Chem Biol Drug Des ; 103(5): e14535, 2024 May.
Article in English | MEDLINE | ID: mdl-38772877

ABSTRACT

Despite efforts, available alternatives for the treatment of leishmaniasis are still scarce. In this work we tested a class of 15 quinolinylhydrazone analogues and presented data that support the use of the most active compound in cutaneous leishmaniasis caused by Leishmania amazonensis. In general, the compounds showed activity at low concentrations for both parasitic forms (5.33-37.04 µM to promastigotes, and 14.31-61.98 µM to amastigotes). In addition, the best compound (MHZ15) is highly selective for the parasite. Biochemical studies indicate that the treatment of promastigotes with MHZ15 leads the loss of mitochondrial potential and increase in ROS levels as the primary effects, which triggers accumulation of lipid droplets, loss of plasma membrane integrity and apoptosis hallmarks, including DNA fragmentation and phosphatidylserine exposure. These effects were similar in the intracellular form of the parasite. However, in this parasitic form there is no change in plasma membrane integrity in the observed treatment time, which can be attributed to metabolic differences and the resilience of the amastigote. Also, ultrastructural changes such as vacuolization suggesting autophagy were observed. The in vivo effectiveness of MHZ15 in the experimental model of cutaneous leishmaniasis was carried out in mice of the BALB/c strain infected with L. amazonensis. The treatment by intralesional route showed that MHZ15 acted with great efficiency with significantly reduction in the parasite load in the injured paws and draining lymph nodes, without clinical signs of distress or compromise of animal welfare. In vivo toxicity was also evaluated and null alterations in the levels of hepatic enzymes aspartate aminotransferase, and alanine aminotransferase was observed. The data presented herein demonstrates that MHZ15 exhibits a range of favorable characteristics conducive to the development of an antileishmanial agent.


Subject(s)
Apoptosis , Hydrazones , Leishmaniasis, Cutaneous , Mice, Inbred BALB C , Mitochondria , Animals , Apoptosis/drug effects , Mice , Mitochondria/drug effects , Mitochondria/metabolism , Hydrazones/pharmacology , Hydrazones/chemistry , Leishmaniasis, Cutaneous/drug therapy , Leishmaniasis, Cutaneous/parasitology , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemistry , Antiprotozoal Agents/therapeutic use , Leishmania/drug effects , Reactive Oxygen Species/metabolism , Female , Leishmania mexicana/drug effects , Membrane Potential, Mitochondrial/drug effects
5.
PLoS Negl Trop Dis ; 18(5): e0012175, 2024 May.
Article in English | MEDLINE | ID: mdl-38768213

ABSTRACT

In Brazil, Leishmania amazonensis is the etiological agent of cutaneous and diffuse cutaneous leishmaniasis. The state of Maranhão in the Northeast of Brazil is prevalent for these clinical forms of the disease and also has high rates of HIV infection. Here, we characterized the drug susceptibility of a L. amazonensis clinical isolate from a 46-year-old man with diffuse cutaneous leishmaniasis coinfected with HIV from this endemic area. This patient underwent several therapeutic regimens with meglumine antimoniate, liposomal amphotericin B, and pentamidine, without success. In vitro susceptibility assays against promastigotes and intracellular amastigotes demonstrated that this isolate had low susceptibility to amphotericin B, when compared with the reference strain of this species that is considered susceptible to antileishmanial drugs. Additionally, we investigated whether the low in vitro susceptibility would affect the in vivo response to amphotericin B treatment. The drug was effective in reducing the lesion size and parasite burden in mice infected with the reference strain, whereas those infected with the clinical isolate and a resistant line (generated experimentally by stepwise selection) were refractory to amphotericin B treatment. To evaluate whether the isolate was intrinsically resistant to amphotericin B in animals, infected mice were treated with other drugs that had not been used in the treatment of the patient (miltefosine, paromomycin, and a combination of both). Our findings demonstrated that all drug schemes were able to reduce lesion size and parasite burden in animals infected with the clinical isolate, confirming the amphotericin B-resistance phenotype. These findings indicate that the treatment failure observed in the patient may be associated with amphotericin B resistance, and demonstrate the potential emergence of amphotericin B-resistant L. amazonensis isolates in an area of Brazil endemic for cutaneous leishmaniasis.


Subject(s)
Amphotericin B , Antiprotozoal Agents , Drug Resistance , Amphotericin B/pharmacology , Amphotericin B/therapeutic use , Animals , Brazil , Middle Aged , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/therapeutic use , Humans , Male , Mice , Leishmania/drug effects , Leishmania/isolation & purification , Leishmania/classification , Leishmania mexicana/drug effects , Leishmania mexicana/isolation & purification , Leishmaniasis, Cutaneous/drug therapy , Leishmaniasis, Cutaneous/parasitology , HIV Infections/complications , HIV Infections/drug therapy , Parasitic Sensitivity Tests , Mice, Inbred BALB C , Leishmaniasis, Diffuse Cutaneous/parasitology , Leishmaniasis, Diffuse Cutaneous/drug therapy
6.
Molecules ; 29(10)2024 May 09.
Article in English | MEDLINE | ID: mdl-38792079

ABSTRACT

Infectious diseases caused by trypanosomatids, including African trypanosomiasis (sleeping sickness), Chagas disease, and different forms of leishmaniasis, are Neglected Tropical Diseases affecting millions of people worldwide, mainly in vulnerable territories of tropical and subtropical areas. In general, current treatments against these diseases are old-fashioned, showing adverse effects and loss of efficacy due to misuse or overuse, thus leading to the emergence of resistance. For these reasons, searching for new antitrypanosomatid drugs has become an urgent necessity, and different metabolic pathways have been studied as potential drug targets against these parasites. Considering that trypanosomatids possess a unique redox pathway based on the trypanothione molecule absent in the mammalian host, the key enzymes involved in trypanothione metabolism, trypanothione reductase and trypanothione synthetase, have been studied in detail as druggable targets. In this review, we summarize some of the recent findings on the molecules inhibiting these two essential enzymes for Trypanosoma and Leishmania viability.


Subject(s)
Amide Synthases , Glutathione , NADH, NADPH Oxidoreductases , Trypanosoma , NADH, NADPH Oxidoreductases/metabolism , NADH, NADPH Oxidoreductases/antagonists & inhibitors , Humans , Amide Synthases/metabolism , Amide Synthases/antagonists & inhibitors , Trypanosoma/drug effects , Trypanosoma/metabolism , Glutathione/metabolism , Glutathione/analogs & derivatives , Animals , Spermidine/analogs & derivatives , Spermidine/metabolism , Leishmania/drug effects , Leishmania/metabolism , Trypanocidal Agents/pharmacology , Trypanocidal Agents/therapeutic use , Leishmaniasis/drug therapy , Leishmaniasis/metabolism , Leishmaniasis/parasitology , Trypanosomatina/metabolism , Trypanosomatina/drug effects , Protozoan Proteins/metabolism , Protozoan Proteins/antagonists & inhibitors , Chagas Disease/drug therapy , Chagas Disease/parasitology , Chagas Disease/metabolism
7.
Phytomedicine ; 129: 155640, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38714091

ABSTRACT

BACKGROUND: The discovery of artemisinin, an endoperoxide, encouraged the scientific community to explore endoperoxides as potential anti-parasitic molecules. Although artemisinin derivatives are rapidly evolving as potent anti-malarials, their potential as anti-leishmanials is emerging gradually. The treatment of leishmaniasis, a group of neglected tropical diseases is handicapped by lack of effective vaccines, drug toxicities and drug resistance. The weak antioxidant defense mechanism of the Leishmania parasites due to lack of catalase and a selenium dependent glutathione peroxidase system makes them vulnerable to oxidative stress, and this has been successful exploited by endoperoxides. PURPOSE: The study aimed to review the available literature on the anti-leishmanial efficacy of natural endoperoxides with a view to achieve insights into their mode of actions. METHODS: We reviewed more around 110 research and review articles restricted to the English language, sourced from electronic bibliographic databases including PubMed, Google, Web of Science, Google scholar etc. RESULTS: Natural endoperoxides could potentially augment the anti-leishmanial drug library, with artemisinin and ascaridole emerging as potential anti-leishmanial agents. Due to higher reactivity of the cyclic peroxide moiety, and exploiting the compromised antioxidant defense of Leishmania, endoperoxides like artemisinin and ascaridole potentiate their leishmanicidal efficacy by creating a redox imbalance. Furthermore, these molecules minimally impair oxidative phosphorylation; instead inhibit glycolytic functions, culminating in depolarization of the mitochondrial membrane and depletion of ATP. Additionally, the carbon-centered free radicals generated from endoperoxides, participate in chain reactions that can generate even more reactive organic radicals that are toxic to macromolecules, including lipids, proteins and DNA, leading to cell cycle arrest and apoptosis of Leishmania parasites. However, the precise target(s) of the toxic free radicals remains open-ended. CONCLUSION: In this overview, the spectrum of natural endoperoxide molecules as major anti-leishmanials and their mechanism of action has been delineated. In view of the substantial evidence that natural endoperoxides (e.g., artemisinin, ascaridole) exert a noxious effect on different species of Leishmania, identification and characterization of other natural endoperoxides is a promising therapeutic option worthy of further pharmacological consideration.


Subject(s)
Antiprotozoal Agents , Artemisinins , Leishmania , Peroxides , Leishmania/drug effects , Peroxides/pharmacology , Peroxides/chemistry , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemistry , Artemisinins/pharmacology , Artemisinins/chemistry , Humans , Leishmaniasis/drug therapy , Oxidative Stress/drug effects , Animals , Antioxidants/pharmacology
8.
Sci Rep ; 14(1): 11575, 2024 05 21.
Article in English | MEDLINE | ID: mdl-38773273

ABSTRACT

Leishmaniasis is a disease caused by a protozoan of the genus Leishmania, affecting millions of people, mainly in tropical countries, due to poor social conditions and low economic development. First-line chemotherapeutic agents involve highly toxic pentavalent antimonials, while treatment failure is mainly due to the emergence of drug-resistant strains. Leishmania arginase (ARG) enzyme is vital in pathogenicity and contributes to a higher infection rate, thus representing a potential drug target. This study helps in designing ARG inhibitors for the treatment of leishmaniasis. Py-CoMFA (3D-QSAR) models were constructed using 34 inhibitors from different chemical classes against ARG from L. (L.) amazonensis (LaARG). The 3D-QSAR predictions showed an excellent correlation between experimental and calculated pIC50 values. The molecular docking study identified the favorable hydrophobicity contribution of phenyl and cyclohexyl groups as substituents in the enzyme allosteric site. Molecular dynamics simulations of selected protein-ligand complexes were conducted to understand derivatives' interaction modes and affinity in both active and allosteric sites. Two cinnamide compounds, 7g and 7k, were identified, with similar structures to the reference 4h allosteric site inhibitor. These compounds can guide the development of more effective arginase inhibitors as potential antileishmanial drugs.


Subject(s)
Arginase , Enzyme Inhibitors , Leishmania , Molecular Docking Simulation , Molecular Dynamics Simulation , Arginase/antagonists & inhibitors , Arginase/chemistry , Arginase/metabolism , Leishmania/enzymology , Leishmania/drug effects , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/pharmacology , Quantitative Structure-Activity Relationship , Protozoan Proteins/antagonists & inhibitors , Protozoan Proteins/chemistry , Protozoan Proteins/metabolism , Allosteric Site , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemistry , Catalytic Domain
9.
Biomolecules ; 14(4)2024 Mar 27.
Article in English | MEDLINE | ID: mdl-38672424

ABSTRACT

Originally developed as a chemotherapeutic agent, miltefosine (hexadecylphosphocholine) is an inhibitor of phosphatidylcholine synthesis with proven antiparasitic effects. It is the only oral drug approved for the treatment of Leishmaniasis and American Trypanosomiasis (Chagas disease). Although its precise mechanisms are not yet fully understood, miltefosine exhibits broad-spectrum anti-parasitic effects primarily by disrupting the intracellular Ca2+ homeostasis of the parasites while sparing the human hosts. In addition to its inhibitory effects on phosphatidylcholine synthesis and cytochrome c oxidase, miltefosine has been found to affect the unique giant mitochondria and the acidocalcisomes of parasites. Both of these crucial organelles are involved in Ca2+ regulation. Furthermore, miltefosine has the ability to activate a specific parasite Ca2+ channel that responds to sphingosine, which is different to its L-type VGCC human ortholog. Here, we aimed to provide an overview of recent advancements of the anti-parasitic mechanisms of miltefosine. We also explored its multiple molecular targets and investigated how its pleiotropic effects translate into a rational therapeutic approach for patients afflicted by Leishmaniasis and American Trypanosomiasis. Notably, miltefosine's therapeutic effect extends beyond its impact on the parasite to also positively affect the host's immune system. These findings enhance our understanding on its multi-targeted mechanism of action. Overall, this review sheds light on the intricate molecular actions of miltefosine, highlighting its potential as a promising therapeutic option against these debilitating parasitic diseases.


Subject(s)
Calcium , Chagas Disease , Homeostasis , Leishmaniasis , Phosphorylcholine , Phosphorylcholine/analogs & derivatives , Humans , Phosphorylcholine/pharmacology , Phosphorylcholine/therapeutic use , Chagas Disease/drug therapy , Chagas Disease/parasitology , Chagas Disease/metabolism , Calcium/metabolism , Leishmaniasis/drug therapy , Leishmaniasis/metabolism , Leishmaniasis/parasitology , Homeostasis/drug effects , Animals , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/therapeutic use , Mitochondria/metabolism , Mitochondria/drug effects , Leishmania/drug effects , Leishmania/metabolism , Trypanosoma cruzi/drug effects , Trypanosoma cruzi/metabolism
10.
Molecules ; 29(8)2024 Apr 19.
Article in English | MEDLINE | ID: mdl-38675696

ABSTRACT

The present study aimed to evaluate the leishmanicidal potential of the essential oil (EO) of Micromeria (M.) nervosa and to investigate its molecular mechanism of action by qPCR. Furthermore, in silicointeraction study of the major M. nervosa EO compounds with the enzyme cytochrome P450 sterol 14α-demethylase (CYP51) was also performed. M. nervosa EO was analyzed by gas chromatography-mass spectrometry (GC-MS). Results showed that α-pinene (26.44%), t-cadinol (26.27%), caryophyllene Oxide (7.73 ± 1.04%), and α-Cadinene (3.79 ± 0.12%) are the major compounds of M. nervosa EO. However, limited antioxidant activity was observed, as this EO was ineffective in neutralizing DPPH free radicals and in inhibiting ß-carotene bleaching. Interestingly, it displayed effective leishmanicidal potential against promastigote (IC50 of 6.79 and 5.25 µg/mL) and amastigote (IC50 of 8.04 and 7.32 µg/mL) forms of leishmania (L.) infantum and L. major, respectively. Molecular mechanism investigation showed that M. nervosa EO displayed potent inhibition on the thiol regulatory pathway. Furthermore, a docking study of the main components of the EO with cytochrome P450 sterol 14α-demethylase (CYP51) enzyme revealed that t-cadinol exhibited the best binding energy values (-7.5 kcal/mol), followed by α-cadinene (-7.3 kcal/mol) and caryophyllene oxide (-7 kcal/mol). These values were notably higher than that of the conventional drug fluconazole showing weaker binding energy (-6.9 kcal/mol). These results suggest that M. nervosa EO could serve as a potent and promising candidate for the development of alternative antileishmanial agent in the treatment of leishmaniasis.


Subject(s)
Antiprotozoal Agents , Molecular Docking Simulation , Oils, Volatile , Oils, Volatile/pharmacology , Oils, Volatile/chemistry , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemistry , Antioxidants/pharmacology , Antioxidants/chemistry , Gas Chromatography-Mass Spectrometry , Sterol 14-Demethylase/metabolism , Sterol 14-Demethylase/chemistry , Computer Simulation , Leishmania/drug effects , Leishmania/enzymology , Bicyclic Monoterpenes/pharmacology , Bicyclic Monoterpenes/chemistry
11.
ACS Infect Dis ; 10(5): 1520-1535, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38669567

ABSTRACT

The term "zoonosis" denotes diseases transmissible among vertebrate animals and humans. These diseases constitute a significant public health challenge, comprising 61% of human pathogens and causing an estimated 2.7 million deaths annually. Zoonoses not only affect human health but also impact animal welfare and economic stability, particularly in low- and middle-income nations. Leishmaniasis and schistosomiasis are two important neglected tropical diseases with a high prevalence in tropical and subtropical areas, imposing significant burdens on affected regions. Schistosomiasis, particularly rampant in sub-Saharan Africa, lacks alternative treatments to praziquantel, prompting concerns regarding parasite resistance. Similarly, leishmaniasis poses challenges with unsatisfactory treatments, urging the development of novel therapeutic strategies. Effective prevention demands a One Health approach, integrating diverse disciplines to enhance diagnostics and develop safer drugs. Metalloenzymes, involved in parasite biology and critical in different biological pathways, emerged in the last few years as useful drug targets for the treatment of human diseases. Herein we have reviewed recent reports on the discovery of inhibitors of metalloenzymes associated with zoonotic diseases like histone deacetylases (HDACs), carbonic anhydrase (CA), arginase, and heme-dependent enzymes.


Subject(s)
Leishmania , Leishmaniasis , Schistosoma , Schistosomiasis , Zoonoses , Animals , Humans , Leishmaniasis/drug therapy , Leishmaniasis/parasitology , Schistosoma/drug effects , Schistosoma/enzymology , Zoonoses/drug therapy , Schistosomiasis/drug therapy , Leishmania/drug effects , Leishmania/enzymology , Carbonic Anhydrases/metabolism , Histone Deacetylases/metabolism , Enzyme Inhibitors/pharmacology
12.
Mar Drugs ; 22(4)2024 Apr 12.
Article in English | MEDLINE | ID: mdl-38667788

ABSTRACT

A new tetramic acid glycoside, aurantoside L (1), was isolated from the sponge Siliquariaspongia japonica collected at Tsushima Is., Nagasaki Prefecture, Japan. The structure of aurantoside L (1) composed of a tetramic acid bearing a chlorinated polyene system and a trisaccharide part was elucidated using spectral analysis. Aurantoside L (1) showed anti-parasitic activity against L. amazonensis with an IC50 value of 0.74 µM.


Subject(s)
Glycosides , Leishmania , Porifera , Porifera/chemistry , Animals , Glycosides/pharmacology , Glycosides/chemistry , Glycosides/isolation & purification , Leishmania/drug effects , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemistry , Antiprotozoal Agents/isolation & purification , Pyrrolidinones/pharmacology , Pyrrolidinones/chemistry , Pyrrolidinones/isolation & purification , Japan , Inhibitory Concentration 50
13.
Chem Biodivers ; 21(5): e202400491, 2024 May.
Article in English | MEDLINE | ID: mdl-38470945

ABSTRACT

We have evaluated eight p-coumaric acid prenylated derivatives in vitro for their antileishmanial activity against Leishmania amazonensis promastigotes and their antischistosomal activity against Schistosoma mansoni adult worms. Compound 7 ((E)-3,4-diprenyl-4-isoprenyloxycinnamic alcohol) was the most active against L. amazonensis (IC50=45.92 µM) and S. mansoni (IC50=64.25 µM). Data indicated that the number of prenyl groups, the presence of hydroxyl at C9, and a single bond between C7 and C8 are important structural features for the antileishmanial activity of p-coumaric acid prenylated derivatives.


Subject(s)
Antiprotozoal Agents , Coumaric Acids , Leishmania , Parasitic Sensitivity Tests , Schistosoma mansoni , Animals , Schistosoma mansoni/drug effects , Coumaric Acids/pharmacology , Coumaric Acids/chemistry , Leishmania/drug effects , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemistry , Antiprotozoal Agents/chemical synthesis , Structure-Activity Relationship , Prenylation , Propionates/pharmacology , Propionates/chemistry , Molecular Structure , Schistosomicides/pharmacology , Schistosomicides/chemistry , Schistosomicides/chemical synthesis , Dose-Response Relationship, Drug
14.
Exp Parasitol ; 260: 108747, 2024 May.
Article in English | MEDLINE | ID: mdl-38518969

ABSTRACT

Leishmaniasis are neglected infectious diseases caused by kinetoplastid protozoan parasites from the genus Leishmania. These sicknesses are present mainly in tropical regions and almost 1 million new cases are reported each year. The absence of vaccines, as well as the high cost, toxicity or resistance to the current drugs determines the necessity of new treatments against these pathologies. In this review, several compounds with potentialities as new antileishmanial drugs are presented. The discussion is restricted to the preclinical level and molecules are organized according to their chemical nature, source and molecular targets. In this manner, we present antimicrobial peptides, flavonoids, withanolides, 8-aminoquinolines, compounds from Leish-Box, pyrazolopyrimidines, and inhibitors of tubulin polymerization/depolymerization, topoisomerase IB, proteases, pteridine reductase, N-myristoyltransferase, as well as enzymes involved in polyamine metabolism, response against oxidative stress, signaling pathways, and sterol biosynthesis. This work is a contribution to the general knowledge of these compounds as antileishmanial agents.


Subject(s)
Antiprotozoal Agents , Leishmania , Leishmaniasis , Leishmaniasis/drug therapy , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/therapeutic use , Antiprotozoal Agents/chemistry , Leishmania/drug effects , Animals , Humans , Drug Evaluation, Preclinical , Flavonoids/pharmacology , Flavonoids/chemistry , Flavonoids/therapeutic use
15.
Parasitology ; 151(5): 506-513, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38533610

ABSTRACT

Leishmania is a trypanosomatid parasite that causes skin lesions in its cutaneous form. Current therapies rely on old and expensive drugs, against which the parasites have acquired considerable resistance. Trypanosomatids are unable to synthesize purines relying on salvaging from the host, and nucleoside analogues have emerged as attractive antiparasitic drug candidates. 4-Methyl-7-ß-D-ribofuranosyl-7H-pyrrolo[2,3-d]pyrimidine (CL5564), an analogue of tubercidin in which the amine has been replaced by a methyl group, demonstrates activity against Trypanosoma cruzi and Leishmania infantum. Herein, we investigated its in vitro and in vivo activity against L. amazonensis. CL5564 was 6.5-fold (P = 0.0002) more potent than milteforan™ (ML) against intracellular forms in peritoneal mouse macrophages, and highly selective, while combination with ML gave an additive effect. These results stimulated us to study the activity of CL5564 in mouse model of cutaneous Leishmania infection. BALB/c female and male mice infected by L. amazonensis treated with CL5564 (10 mg kg−1, intralesional route for five days) presented a >93% reduction of paw lesion size likely ML given orally at 40 mg kg−1, while the combination (10 + 40 mg kg−1 of CL5564 and ML, respectively) caused >96% reduction. The qPCR confirmed the suppression of parasite load, but only the combination approach reached 66% of parasitological cure. These results support additional studies with nucleoside derivatives.


Subject(s)
Disease Models, Animal , Leishmania mexicana , Leishmaniasis, Cutaneous , Mice, Inbred BALB C , Animals , Leishmaniasis, Cutaneous/drug therapy , Leishmaniasis, Cutaneous/parasitology , Mice , Female , Male , Leishmania mexicana/drug effects , Tubercidin/pharmacology , Tubercidin/analogs & derivatives , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/therapeutic use , Antiprotozoal Agents/administration & dosage , Macrophages, Peritoneal/parasitology , Macrophages, Peritoneal/drug effects , Leishmania/drug effects
16.
ChemMedChem ; 19(11): e202300545, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38445815

ABSTRACT

Among the many neglected tropical diseases, leishmaniasis ranks second in mortality rate and prevalence. In a previous study, acridine derivatives were synthesized and tested for their antileishmanial activity against L. chagasi. The most active compound identified in that study (1) showed a single digit IC50 value against the parasite (1.10 µg/mL), but its macromolecular target remained unknown. Aiming to overcome this limitation, this work exploited inverse virtual screening to identify compound 1's putative molecular mechanism of action. In vitro assays confirmed that compound 1 binds to Leishmania chagasi pteridine reductase 1 (LcPTR1), with moderate affinity (Kd=33,1 µM), according to differential scanning fluorimetry assay. Molecular dynamics simulations confirm the stability of LcPTR1-compound 1 complex, supporting a competitive mechanism of action. Therefore, the workflow presented in this work successfully identified PTR1 as a macromolecular target for compound 1, allowing the designing of novel potent antileishmanial compounds.


Subject(s)
Acridines , Enzyme Inhibitors , Oxidoreductases , Oxidoreductases/antagonists & inhibitors , Oxidoreductases/metabolism , Acridines/chemistry , Acridines/pharmacology , Acridines/chemical synthesis , Enzyme Inhibitors/pharmacology , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/chemical synthesis , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/chemistry , Antiprotozoal Agents/chemical synthesis , Molecular Dynamics Simulation , Spiro Compounds/chemistry , Spiro Compounds/pharmacology , Spiro Compounds/chemical synthesis , Structure-Activity Relationship , Molecular Structure , Parasitic Sensitivity Tests , Dose-Response Relationship, Drug , Leishmania/drug effects , Leishmania/enzymology , Molecular Docking Simulation
17.
Article in English | MEDLINE | ID: mdl-38279725

ABSTRACT

AIMS: Leishmaniasis is a deadly tropical disease that is neglected in many countries. World Health Organization, along with a few other countries, has been working together to protect against these parasites. Many novel drugs from the past few years have been discovered and subjected against leishmaniasis, which have been effective but they are quite expensive for lower-class people. Some drugs showed no effect on the patients, and the longer use of these medicines has made resistance against these deadly parasites. Researchers have been working for better medication by using natural products from medicinal plants (oils, secondary metabolites, plant extracts) and other alternatives to find active compounds as an alternative to the current synthetic drugs. MATERIALS AND METHODS: To find more potential natural products to treat Leishmania spp, a study has been conducted and reported many plant metabolites and other natural alternatives from plants and their extracts. Selected research papers with few term words such as natural products, plant metabolites, Leishmaniasis, in vivo, in vitro, and treatment against leishmaniasis; in the Google Scholar, PubMed, and Science Direct databases with selected research papers published between 2015 and 2021 have been chosen for further analysis has been included in this report which has examined either in vivo or in vitro analysis. RESULTS: This paper reported more than 20 novel natural compounds in 20 research papers that have been identified which report a leishmanicidal activity and shows an action against promastigote, axenic, and intracellular amastigote forms. CONCLUSION: Medicinal plants, along with a few plant parts and extracts, have been reported as a possible novel anti-leishmanial medication. These medicinal plants are considered nontoxic to Host cells. Leishmaniasis treatments will draw on the isolated compounds as a source further and these compounds compete with those already offered in clinics.


Subject(s)
Antiprotozoal Agents , Biological Products , Leishmania , Leishmaniasis , Plants, Medicinal , Humans , Biological Products/pharmacology , Biological Products/therapeutic use , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/therapeutic use , Leishmaniasis/drug therapy , Animals , Plants, Medicinal/chemistry , Leishmania/drug effects , Plant Extracts/pharmacology , Plant Extracts/therapeutic use
18.
Braz. j. biol ; 83: 1-5, 2023. tab
Article in English | LILACS, VETINDEX | ID: biblio-1468828

ABSTRACT

Numerous studies have investigated the chemical composition and biological activities of essential oils from different Citrus species fruit peel, leaves and flowers. This paper aims to investigate the chemical composition, larvicidal and antileishmanial activities of essential oil from Citrus reticulata fruit peel (CR-EO). CR-EO was obtained by hydrodistillation in a Clevenger-type apparatus and its chemical composition was analyzed by GC-MS and GC-FID. Limonene (85.7%), ɣ-terpinene (6.7%) and myrcene (2.1%) were identified as its major components. CR-EO showed high activity against promastigote forms of Leishmania amazonensis (IC50 = 8.23 µg/mL). CR-EO also exhibited high larvicidal activity against third instar Aedes aegypti larvae at a lethal concentration (LC50 = 58.35 µg/mL) and 100% mortality at 150 µg/mL. This study suggests, for the first time, the potential use of CR-EO against this important mosquito-borne viral disease caused by the genus Aedes.


Numerosos estudos têm investigado a composição química e as atividades biológicas de óleos essenciais extraídos de cascas dos frutos, folhas e flores de diferentes espécies de Citrus. Este trabalho tem como objetivo investigar a composição química e as atividades larvicida e leishmanicida in vitro do óleo essencial das cascas dos frutos de Citrus reticulata (CR-EO). CR-EO foi obtido pela técnica de extração em aparelho Clevenger e sua composição química foi determinada por CG-EM e CG-DIC. Limoneno (85,7%), ɣ-terpineno (6,7%) and mirceno (2,1%) foram identificados como os constituintes majoritários. CR-EO mostrou alta atividade contra as formas promastigota de Leishmania amazonensis (CI50 = 8,23 µg/mL). CR-EO também exibiu alta atividade larvicida contra as larvas do terceiro estágio do Aedes aegypti com concentração letal (CL50 = 58,35 µg/mL) e mortalidade de 100% em 150 µg/mL. Este estudo sugere, pela primeira vez, o uso potencial de CR-EO contra esta importante doença viral transmitida por mosquitos do gênero Aedes.


Subject(s)
Aedes/drug effects , Citrus/chemistry , Leishmania/drug effects , Limonene/analysis , In Vitro Techniques , Oils, Volatile/chemistry
19.
Eur J Med Chem ; 237: 114367, 2022 Jul 05.
Article in English | MEDLINE | ID: mdl-35533570

ABSTRACT

Leishmaniasis causes high mortality and morbidity in tropical and subtropical regions of Africa, Asia, the Americas and southern Europe, and is characterized by diverse clinical manifestations. As a neglected tropical disease, limited resources are allocated for antileishmanial drug discovery. The Leishmania parasite is deficient in de novo purine synthesis, and therefore acquires purines from the host and processes these using a purine salvage pathway. By making use of purine transport systems and interfering with this salvage pathway, purine (nucleoside) analogues might exert a selective detrimental impact on its growth and survival. In vitro screening of an in-house purine nucleoside library and analogue synthesis afforded the 6-methyl-7-(2-pyridyl)-7-deazapurine ribonucleoside analogue 18 as a promising hit. Optimization of the 7-substituent afforded 31 and 32 which displayed potent activity against wild-type and resistant L. infantum, intracellular amastigote and extracellular promastigote forms, and favorable selectivity versus primary mouse macrophages (Mφ) and MRC-5 cells. Encouraged by the favorable in vitro metabolic stability of 32, an in vivo study was performed using an early curative L. infantum hamster model. When orally administrated at 50 mg/kg once daily (s.i.d) for 10 days, 32 was devoid of side effects, however, it only poorly reduced amastigote burdens in the major target organs.


Subject(s)
Antiprotozoal Agents , Leishmania , Leishmaniasis , Purines , Ribonucleosides , Animals , Antiprotozoal Agents/pharmacology , Antiprotozoal Agents/therapeutic use , Cricetinae , Leishmania/drug effects , Leishmania/metabolism , Leishmaniasis/drug therapy , Mice , Nucleosides/pharmacology , Nucleosides/therapeutic use , Purine Nucleosides/pharmacology , Purine Nucleosides/therapeutic use , Purines/pharmacology , Purines/therapeutic use , Ribonucleosides/pharmacology , Ribonucleosides/therapeutic use
20.
Molecules ; 27(4)2022 Feb 18.
Article in English | MEDLINE | ID: mdl-35209185

ABSTRACT

Trypanosomiasis and leishmaniasis are among the major neglected diseases that affect poor people, mainly in developing countries. In Ethiopia, the latex of Aloe rugosifolia Gilbert & Sebsebe is traditionally used for the treatment of protozoal diseases, among others. In this study, the in vitro antitrypanosomal activity of the leaf latex of A. rugosifolia was evaluated against Trypanosoma congolense field isolate using in vitro motility and in vivo infectivity tests. The latex was also tested against the promastigotes of Leishmania aethiopica and L. donovani clinical isolates using alamar blue assay. Preparative thin-layer chromatography of the latex afforded a naphthalene derivative identified as plicataloside (2,8-O,O-di-(ß-D-glucopyranosyl)-1,2,8-trihydroxy-3-methyl-naphthalene) by means of spectroscopic techniques (HRESI-MS, 1H, 13C-NMR). Results of the study demonstrated that at 4.0 mg/mL concentration plicataloside arrested mobility of trypanosomes within 30 min of incubation period. Furthermore, plicataloside completely eliminated subsequent infectivity in mice for 30 days at concentrations of 4.0 and 2.0 mg/mL. Plicataloside also displayed antileishmanial activity against the promastigotes of L. aethopica and L. donovani with IC50 values 14.22 ± 0.41 µg/mL (27.66 ± 0.80 µM) and 18.86 ± 0.03 µg/mL (36.69 ± 0.06 µM), respectively. Thus, plicataloside may be used as a scaffold for the development of novel drugs effective against trypanosomiasis and leishmaniasis.


Subject(s)
Aloe/chemistry , Antiprotozoal Agents/pharmacology , Latex/chemistry , Plant Extracts/pharmacology , Antiprotozoal Agents/chemistry , Dose-Response Relationship, Drug , Leishmania/drug effects , Molecular Structure , Plant Extracts/chemistry , Structure-Activity Relationship , Trypanocidal Agents/chemistry , Trypanocidal Agents/pharmacology
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