Effect of 1,2,3-triazole salts, non-classical bioisosteres of miltefosine, on Leishmania amazonensis

Bioorganic & Medicinal Chemistry
2017.0

Abstract

Here, we report the effect of new non-classical bioisosteres of miltefosine on Leishmania amazonensis. Fifteen compounds were synthesized and the compound dhmtAc, containing an acetate anion, a side chain of 10 carbon atoms linked to N-1 and a methyl group linked to N-3, showed high and selective biological activity against L. amazonensis. On the intracellular amastigotes, stages of the parasite related to human disease, the IC50 values were near or similar to the 1.0μM (0.9, 0.8 and 1.0μM on L. amazonensis-WT, and two transgenic L. amazonensis expressing GFP and RFP, respectively), being more active than miltefosine. Furthermore, dhmtAc did not show toxic effects on human erythrocytes and macrophages (CC50=115.9μM) being more destructive to the intracellular parasites (selectivity index>115). Promastigotes and intramacrophage amastigotes treated with dhmtAc showed low capacity for reversion of the effect of the compound. A study of the mechanism of action of this compound showed some features of metazoan apoptosis, including cell volume decreases, loss of mitochondrial membrane potential, ROS production, an increase in the intracellular lipid bodies, in situ labeling of DNA fragments by TUNEL labeling and phosphatidylserine exposure to the outerleaflet of the plasma membrane. In addition, the plasma membrane disruption, revealed by PI labeling, suggests cell death by necrosis. No increase in autophagic vacuoles formation in treated promastigotes was observed. Taken together, the data indicate that the bioisostere of miltefosine, dhmtAc, has promising antileishmanial activity that is mediated via apoptosis and necrosis.

Knowledge Graph

Similar Paper

Effect of 1,2,3-triazole salts, non-classical bioisosteres of miltefosine, on Leishmania amazonensis
Bioorganic & Medicinal Chemistry 2017.0
Chemotherapy of leishmaniasis. Part XII: Design, synthesis and bioevaluation of novel triazole integrated phenyl heteroterpenoids as antileishmanial agents
Bioorganic & Medicinal Chemistry Letters 2013.0
Anti-leishmanial click modifiable thiosemicarbazones: Design, synthesis, biological evaluation and in silico studies
European Journal of Medicinal Chemistry 2018.0
Leishmanicidal, antiproteolytic, and mutagenic evaluation of alkyltriazoles and alkylphosphocholines
European Journal of Medicinal Chemistry 2015.0
The Natural Alkaloid Tryptanthrin Induces Apoptosis-like Death in Leishmania spp.
Tropical Medicine and Infectious Disease 2022.0
Discovery of Triazine Mimetics As Potent Antileishmanial Agents
ACS Medicinal Chemistry Letters 2013.0
Synthesis and evaluation against Leishmania amazonensis of novel pyrazolo[3,4- d ]pyridazinone- N -acylhydrazone-(bi)thiophene hybrids
European Journal of Medicinal Chemistry 2016.0
2-Amino-thiophene derivatives present antileishmanial activity mediated by apoptosis and immunomodulation in vitro
European Journal of Medicinal Chemistry 2015.0
Discovery and Pharmacological Studies of 4-Hydroxyphenyl-Derived Phosphonium Salts Active in a Mouse Model of Visceral Leishmaniasis
Journal of Medicinal Chemistry 2019.0
In Pursuit of Natural Product Leads: Synthesis and Biological Evaluation of 2-[3-hydroxy-2-[(3-hydroxypyridine-2-carbonyl)amino]phenyl]benzoxazole-4-carboxylic acid (A-33853) and Its Analogues: Discovery of N-(2-Benzoxazol-2-ylphenyl)benzamides as Novel Antileishmanial Chemotypes
Journal of Medicinal Chemistry 2008.0