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Apicoplast-targeting antibacterials inhibit the growth of Babesia parasites
Mahmoud Aboulaila1, Tserendorj Munkhjargal, Thillaiampalam Sivakumar
1National Research Center for Protozoan Diseases, Obihiro University of Agriculture and Veterinary Medicine, Inada-Cho, Obihiro, Hokkaido, Japan.
Abstract:
The apicoplast housekeeping machinery, specifically apicoplast DNA replication, transcription, and translation, was targeted by ciprofloxacin, thiostrepton, and rifampin, respectively, in the in vitro cultures of four Babesia species. Furthermore, the in vivo effect of thiostrepton on the growth cycle of Babesia microti in BALB/c mice was evaluated. The drugs caused significant inhibition of growth from an initial parasitemia of 1% for Babesia bovis, with 50% inhibitory concentrations (IC(50)s) of 8.3, 11.5, 12, and 126.6 μM for ciprofloxacin, thiostrepton, rifampin, and clindamycin, respectively. The IC(50)s for the inhibition of Babesia bigemina growth were 15.8 μM for ciprofloxacin, 8.2 μM for thiostrepton, 8.3 μM for rifampin, and 206 μM for clindamycin. The IC(50)s for Babesia caballi were 2.7 μM for ciprofloxacin, 2.7 μM for thiostrepton, 4.7 μM for rifampin, and 4.7 μM for clindamycin. The IC(50)s for the inhibition of Babesia equi growth were 2.5 μM for ciprofloxacin, 6.4 μM for thiostrepton, 4.1 μM for rifampin, and 27.2 μM for clindamycin. Furthermore, an inhibitory effect was revealed for cultures with an initial parasitemia of either 10 or 7% for Babesia bovis or Babesia bigemina, respectively. The three inhibitors caused immediate death of Babesia bovis and Babesia equi. The inhibitory effects of ciprofloxacin, thiostrepton, and rifampin were confirmed by reverse transcription-PCR. Thiostrepton at a dose of 500 mg/kg of body weight resulted in 77.5% inhibition of Babesia microti growth in BALB/c mice. These results implicate the apicoplast as a potential chemotherapeutic target for babesiosis.
Insights
Targeting the apicoplast in Babesia parasites with antibiotics like ciprofloxacin, thiostrepton, and rifampin effectively inhibited growth in vitro and in vivo, suggesting the apicoplast as a key therapeutic target for babesiosis.
Area of Science:
- Parasitology
- Molecular Biology
- Drug Discovery
Background:
- Babesiosis is a tick-borne disease caused by *Babesia* parasites.
- The apicoplast is a vital organelle in *Babesia*, essential for parasite survival.
- Targeting apicoplast functions offers a potential strategy for babesiosis treatment.
Purpose of the Study:
- To investigate the efficacy of targeting apicoplast functions in *Babesia* species.
- To evaluate the inhibitory effects of ciprofloxacin, thiostrepton, and rifampin on *Babesia* growth.
- To assess the in vivo efficacy of thiostrepton against *Babesia microti*.
Main Methods:
- In vitro drug susceptibility testing of four *Babesia* species using ciprofloxacin, thiostrepton, and rifampin.
- Determination of 50% inhibitory concentrations (IC50s) for each drug against different *Babesia* species.
- In vivo study of thiostrepton efficacy in BALB/c mice infected with *Babesia microti*.
- Confirmation of drug effects using reverse transcription-PCR.
Main Results:
- Ciprofloxacin, thiostrepton, and rifampin significantly inhibited *Babesia* growth in vitro, with varying IC50 values across species.
- The three drugs caused rapid death of *Babesia bovis* and *Babesia equi*.
- Thiostrepton demonstrated significant in vivo efficacy, inhibiting *Babesia microti* growth by 77.5% in mice.
- Reverse transcription-PCR confirmed the inhibitory effects of the tested drugs.
Conclusions:
- The apicoplast is a viable chemotherapeutic target for babesiosis.
- Ciprofloxacin, thiostrepton, and rifampin show promise as potential anti-babesial agents.
- Further research into apicoplast-targeting drugs could lead to novel treatments for babesiosis.
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