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1.
Parasit Vectors ; 17(1): 215, 2024 May 11.
Article in English | MEDLINE | ID: mdl-38734633

ABSTRACT

BACKGROUND: Animal African trypanosomiasis, which is caused by different species of African trypanosomes, is a deadly disease in livestock. Although African trypanosomes are often described as blood-borne parasites, there have been recent reappraisals of the ability of these parasites to reside in a wide range of tissues. However, the majority of those studies were conducted on non-natural hosts infected with only one species of trypanosome, and it is unclear whether a similar phenomenon occurs during natural animal infections, where multiple species of these parasites may be present. METHODS: The infective trypanosome species in the blood and other tissues (adipose and skin) of a natural host (cows, goats and sheep) were determined using a polymerase chain reaction-based diagnostic. RESULTS: The animals were found to harbour multiple species of trypanosomes. Different patterns of distribution were observed within the host tissues; for instance, in some animals, the blood was positive for the DNA of one species of trypanosome and the skin and adipose were positive for the DNA of another species. Moreover, the rate of detection of trypanosome DNA was highest for skin adipose and lowest for the blood. CONCLUSIONS: The findings reported here emphasise the complexity of trypanosome infections in a natural setting, and may indicate different tissue tropisms between the different parasite species. The results also highlight the need to include adipose and skin tissues in future diagnostic and treatment strategies.


Subject(s)
Adipose Tissue , Goat Diseases , Goats , Skin , Trypanosoma , Trypanosomiasis, African , Animals , Goats/parasitology , Trypanosomiasis, African/veterinary , Trypanosomiasis, African/parasitology , Adipose Tissue/parasitology , Trypanosoma/genetics , Trypanosoma/isolation & purification , Trypanosoma/classification , Skin/parasitology , Sheep/parasitology , Goat Diseases/parasitology , Cattle , Polymerase Chain Reaction , Sheep Diseases/parasitology , DNA, Protozoan/genetics , Cattle Diseases/parasitology
2.
PLoS One ; 16(11): e0258996, 2021.
Article in English | MEDLINE | ID: mdl-34807936

ABSTRACT

In the midst of numerous setbacks that beclouds the fight against leishmaniasis; a neglected tropical disease, the search for new chemotherapeutics against this disease is of utmost importance. Leishmaniasis is a disease closely associated with poverty and endemic in Africa, Asia, southern Europe and the Americas. It is caused by parasites of the genus Leishmania and transmitted by a sandfly vector. In this study, we evaluated the antileishmanial potency of eighteen pathogen box compounds and elucidated their biosafety and possible mechanisms of action against Leishmania donovani promastigotes and amastigotes in vitro. IC50s range of 0.12±0.15 to >6.25 µg/ml and 0.13±0.004 to >6.25µg/ml were observed for the promastigotes and amastigotes, respectively. We demonstrated the ability of some of the compounds to cause cytocidal effect on the parasites, induce increased production of reactive oxygen species (ROS), disrupt the normal parasite morphology and cause the accumulation of parasites at the DNA synthesis phase of the cell cycle. We recommend a further in vivo study on these compounds to validate the findings.


Subject(s)
Antiprotozoal Agents/pharmacology , Cell Cycle , Leishmania donovani/cytology , Cell Cycle/drug effects , DNA, Kinetoplast/metabolism , Humans , Inhibitory Concentration 50 , Kinetics , Leishmania donovani/drug effects , Leishmania donovani/growth & development , Macrophages/drug effects , Macrophages/parasitology , Mitochondria/drug effects , Mitochondria/metabolism , Oxidation-Reduction/drug effects , Phosphatidylserines/metabolism , Reactive Oxygen Species/metabolism
3.
Molecules ; 26(15)2021 Jul 25.
Article in English | MEDLINE | ID: mdl-34361641

ABSTRACT

The search for novel antitrypanosomals and the investigation into their mode of action remain crucial due to the toxicity and resistance of commercially available antitrypanosomal drugs. In this study, two novel antitrypanosomals, tortodofuordioxamide (compound 2) and tortodofuorpyramide (compound 3), were chemically derived from the natural N-alkylamide tortozanthoxylamide (compound 1) through structural modification. The chemical structures of these compounds were confirmed through spectrometric and spectroscopic analysis, and their in vitro efficacy and possible mechanisms of action were, subsequently, investigated in Trypanosoma brucei (T. brucei), one of the causative species of African trypanosomiasis (AT). The novel compounds 2 and 3 displayed significant antitrypanosomal potencies in terms of half-maximal effective concentrations (EC50) and selectivity indices (SI) (compound 1, EC50 = 7.3 µM, SI = 29.5; compound 2, EC50 = 3.2 µM, SI = 91.3; compound 3, EC50 = 4.5 µM, SI = 69.9). Microscopic analysis indicated that at the EC50 values, the compounds resulted in the coiling and clumping of parasite subpopulations without significantly affecting the normal ratio of nuclei to kinetoplasts. In contrast to the animal antitrypanosomal drug diminazene, compounds 1, 2 and 3 exhibited antioxidant absorbance properties comparable to the standard antioxidant Trolox (Trolox, 0.11 A; diminazene, 0.50 A; compound 1, 0.10 A; compound 2, 0.09 A; compound 3, 0.11 A). The analysis of growth kinetics suggested that the compounds exhibited a relatively gradual but consistent growth inhibition of T. brucei at different concentrations. The results suggest that further pharmacological optimization of compounds 2 and 3 may facilitate their development into novel AT chemotherapy.


Subject(s)
Trypanocidal Agents , Trypanosoma brucei brucei/growth & development , Trypanosomiasis, African/drug therapy , Animals , Mice , RAW 264.7 Cells , Trypanocidal Agents/chemical synthesis , Trypanocidal Agents/chemistry , Trypanocidal Agents/pharmacology , Trypanosomiasis, African/metabolism
4.
PLoS One ; 14(5): e0216078, 2019.
Article in English | MEDLINE | ID: mdl-31048849

ABSTRACT

African trypanosomiasis remains a lethal disease to both humans and livestock. The disease persists due to limited drug availability, toxicity and drug resistance, hence the need for a better understanding of the parasite's biology and provision of alternative forms of therapy. In this study, the in vitro effects of phenolic acids were assessed for their trypanocidal activities against Trypanosoma brucei brucei. The effect of the phenolic acids on Trypanosoma brucei brucei was determined by the alamarBlue assay. The cell cycle effects were determined by flow cytometry and parasite morphological analysis was done by microscopy. Effect on cell proliferation was determined by growth kinetic analysis. Reverse Transcriptase quantitative Polymerase Chain Reaction was used to determine expression of iron dependent enzymes and iron distribution determined by atomic absorption spectroscopy. Gallic acid gave an IC50 of 14.2±1.5 µM. Deferoxamine, gallic acid and diminazene aceturate showed a dose dependent effect on the cell viability and the mitochondrion membrane integrity. Gallic acid, deferoxamine and diminazene aceturate caused loss of kinetoplast in 22%, 26% and 82% of trypanosomes respectively and less than 10% increase in the number of trypanosomes in S phase was observed. Gallic acid caused a 0.6 fold decrease, 50 fold increase and 7 fold increase in the expression levels of the transferrin receptor, ribonucleotide reductase and cyclin 2 genes respectively while treatment with deferoxamine and diminazene aceturate also showed differential expressions of the transferrin receptor, ribonucleotide reductase and cyclin 2 genes. The data suggests that gallic acid possibly exerts its effect on T. brucei via iron chelation leading to structural and morphological changes and arrest of the cell cycle. These together provide information on the cell biology of the parasite under iron starved conditions and provide leads into alternative therapeutic approaches in the treatment of African trypanosomiasis.


Subject(s)
Hydroxybenzoates/pharmacology , Trypanosoma brucei brucei/drug effects , Animals , Cell Proliferation/drug effects , Cell Survival/drug effects , Deferoxamine/pharmacology , Diminazene/analogs & derivatives , Diminazene/pharmacology , Drug Resistance/drug effects , Gallic Acid/pharmacology , Humans , Iron/metabolism , Mitochondrial Membranes/drug effects , Trypanocidal Agents/pharmacology , Trypanosoma/drug effects , Trypanosoma brucei brucei/pathogenicity , Trypanosomiasis, African/parasitology
5.
PLoS Negl Trop Dis ; 13(2): e0007206, 2019 02.
Article in English | MEDLINE | ID: mdl-30802252

ABSTRACT

BACKGROUND: Leishmaniasis is a disease caused by the protozoan parasite, Leishmania. The disease remains a global threat to public health requiring effective chemotherapy for control and treatment. In this study, the effect of some selected phenolic compounds on Leishmania donovani was investigated. The compounds were screened for their anti-leishmanial activities against promastigote and intracellular amastigote forms of Leishmania donovani. METHODOLOGY/PRINCIPAL FINDINGS: The dose dependent effect and cytotoxicity of the compounds were determined by the MTT assay. Flow cytometry was used to determine the effect of the compounds on the cell cycle. Parasite morphological analysis was done by microscopy and growth kinetic studies were conducted by culturing cells and counting at 24 hours intervals over 120 hours. The cellular levels of iron in promastigotes treated with compounds was determined by atomic absorption spectroscopy and the effect of compounds on the expression of iron dependent enzymes was investigated using RT-qPCR. The IC50 of the compounds ranged from 16.34 µM to 198 µM compared to amphotericin B and deferoxamine controls. Rosmarinic acid and apigenin were the most effective against the promastigote and the intracellular amastigote forms. Selectivity indexes (SI) of rosmarinic acid and apigenin were 15.03 and 10.45 respectively for promastigotes while the SI of 12.70 and 5.21 respectively was obtained for intracellular amastigotes. Morphologically, 70% of rosmarinic acid treated promastigotes showed rounded morphology similar to the deferoxamine control. About 30% of cells treated with apigenin showed distorted cell membrane. Rosmarinic acid and apigenin induced cell arrest in the G0/G1 phase in promastigotes. Elevated intracellular iron levels were observed in promastigotes when parasites were treated with rosmarinic acid and this correlated with the level of expression of iron dependent genes. CONCLUSIONS/SIGNIFICANCE: The data suggests that rosmarinic acid exerts its anti-leishmanial effect via iron chelation resulting in variable morphological changes and cell cycle arrest.


Subject(s)
Antiprotozoal Agents/pharmacology , Leishmania donovani/drug effects , Phenols/pharmacology , Amphotericin B/pharmacology , Animals , Apigenin/pharmacology , Cinnamates/pharmacology , Depsides/pharmacology , Inhibitory Concentration 50 , Iron/analysis , Kinetics , Leishmania donovani/growth & development , Macrophages/parasitology , Mice , RAW 264.7 Cells , Rosmarinic Acid
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