Targeting Aurora Kinases as Essential Cell-Cycle Regulators to Deliver Multi-Stage Antimalarials Against Plasmodium

Henrico Langeveld1,2, Keletso Maepa3,4, Marché Maree1,2

  • 1Department of Biochemistry, Genetics and Microbiology, Hatfield, Pretoria, 0028, South Africa.

Insights

Human Aurora kinase inhibitors show potential against Plasmodium falciparum, targeting the parasite's mitotic kinase PfArk1. This discovery offers a new avenue for developing antimalarial drugs.

Area of Science:

  • Parasitology
  • Molecular Biology
  • Drug Discovery

Background:

  • Kinases are crucial for Plasmodium falciparum development and adaptation.
  • Mitotic kinases regulate parasite proliferation by controlling nuclear division and cytokinesis.
  • Targeting these kinases presents opportunities for novel antimalarial chemotherapeutics.

Purpose of the Study:

  • To evaluate human Aurora kinase (Aur) inhibitors for their potential to inhibit Plasmodium falciparum development.
  • To investigate the targeting of Aurora-related kinase (Ark) family members in P. falciparum.
  • To identify specific targets for antimalarial drug development.

Main Methods:

  • Screening of human Aurora kinase inhibitors against P. falciparum.
  • Assessing compound potency across various proliferative stages of the parasite.
  • Determining the selectivity of potent compounds towards P. falciparum over human kinases.
  • Identifying the specific P. falciparum Ark family member targeted by hesperadin.

Main Results:

  • Several human AurB inhibitors demonstrated potent, multistage activity (< 250 nM) against P. falciparum.
  • Hesperadin, TAE684, and AT83 showed high selectivity (>1000x) for the parasite.
  • PfArk1 was identified as the primary vulnerable Ark family member, with hesperadin specifically inhibiting it.
  • Inhibition of PfArk1 led to defects in mitotic processes, including unsegregated nuclei and aberrant microtubule organization.

Conclusions:

  • PfArk1 functions as the main Aurora mitotic kinase in proliferative stages of Plasmodium, exhibiting bifunctional AurA and B activity.
  • Hesperadin is a potent and selective PfArk1 inhibitor, validating its utility as a tool compound.
  • Targeting PfArk1 with hesperadin-based drug discovery offers a promising strategy for developing new antimalarial therapies.

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