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1.
PLoS Negl Trop Dis ; 16(9): e0010779, 2022 09.
Article in English | MEDLINE | ID: mdl-36170238

ABSTRACT

Amphotericin B is increasingly used in treatment of leishmaniasis. Here, fourteen independent lines of Leishmania mexicana and one L. infantum line were selected for resistance to either amphotericin B or the related polyene antimicrobial, nystatin. Sterol profiling revealed that, in each resistant line, the predominant wild-type sterol, ergosta-5,7,24-trienol, was replaced by other sterol intermediates. Broadly, two different profiles emerged among the resistant lines. Whole genome sequencing then showed that these distinct profiles were due either to mutations in the sterol methyl transferase (C24SMT) gene locus or the sterol C5 desaturase (C5DS) gene. In three lines an additional deletion of the miltefosine transporter gene was found. Differences in sensitivity to amphotericin B were apparent, depending on whether cells were grown in HOMEM, supplemented with foetal bovine serum, or a serum free defined medium (DM). Metabolomic analysis after exposure to AmB showed that a large increase in glucose flux via the pentose phosphate pathway preceded cell death in cells sustained in HOMEM but not DM, indicating the oxidative stress was more significantly induced under HOMEM conditions. Several of the lines were tested for their ability to infect macrophages and replicate as amastigote forms, alongside their ability to establish infections in mice. While several AmB resistant lines showed reduced virulence, at least two lines displayed heightened virulence in mice whilst retaining their resistance phenotype, emphasising the risks of resistance emerging to this critical drug.


Subject(s)
Antiprotozoal Agents , Leishmania mexicana , Mice , Animals , Amphotericin B/pharmacology , Leishmania mexicana/metabolism , Nystatin , Serum Albumin, Bovine/metabolism , Sterols , Oxidative Stress , Polyenes , Transferases/metabolism , Glucose , Fatty Acid Desaturases/metabolism , Antiprotozoal Agents/pharmacology
2.
PLoS Negl Trop Dis ; 11(6): e0005649, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28622334

ABSTRACT

Amphotericin B has emerged as the therapy of choice for use against the leishmaniases. Administration of the drug in its liposomal formulation as a single injection is being promoted in a campaign to bring the leishmaniases under control. Understanding the risks and mechanisms of resistance is therefore of great importance. Here we select amphotericin B-resistant Leishmania mexicana parasites with relative ease. Metabolomic analysis demonstrated that ergosterol, the sterol known to bind the drug, is prevalent in wild-type cells, but diminished in the resistant line, where alternative sterols become prevalent. This indicates that the resistance phenotype is related to loss of drug binding. Comparing sequences of the parasites' genomes revealed a plethora of single nucleotide polymorphisms that distinguish wild-type and resistant cells, but only one of these was found to be homozygous and associated with a gene encoding an enzyme in the sterol biosynthetic pathway, sterol 14α-demethylase (CYP51). The mutation, N176I, is found outside of the enzyme's active site, consistent with the fact that the resistant line continues to produce the enzyme's product. Expression of wild-type sterol 14α-demethylase in the resistant cells caused reversion to drug sensitivity and a restoration of ergosterol synthesis, showing that the mutation is indeed responsible for resistance. The amphotericin B resistant parasites become hypersensitive to pentamidine and also agents that induce oxidative stress. This work reveals the power of combining polyomics approaches, to discover the mechanism underlying drug resistance as well as offering novel insights into the selection of resistance to amphotericin B itself.


Subject(s)
Amphotericin B/pharmacology , Antiprotozoal Agents/pharmacology , Drug Resistance , Leishmania mexicana/drug effects , Leishmania mexicana/enzymology , Mutation, Missense , Sterol 14-Demethylase/genetics , Ergosterol/analysis , Genetic Complementation Test , Genome, Protozoan , Leishmania mexicana/chemistry , Metabolomics , Mutant Proteins/genetics , Mutant Proteins/metabolism , Polymorphism, Single Nucleotide , Sterol 14-Demethylase/metabolism
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