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.

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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