4.5 Article

Comparison of the cellular and biochemical properties of Plasmodium falciparum choline and ethanolamine kinases

期刊

BIOCHEMICAL JOURNAL
卷 425, 期 -, 页码 149-158

出版社

PORTLAND PRESS LTD
DOI: 10.1042/BJ20091119

关键词

choline kinase (Cho kinase; CK); ethanolamine kinase (Etn kinase; EK); inhibition; kinetic parameter; phospholipid metabolism (PL metabolism); Plasmodium falciparum

资金

  1. EU FP6 [IP-018834]
  2. Network of Excellence BioMaIPar [LSHP-CT-2004-503578]

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The proliferation of the malaria-causing parasite Plasmodium falciparum within the erythrocyte is concomitant with massive phosphatidylcholine and phosphatidylethanolamine biosynthesis. Based on pharmacological and genetic data, de novo biosynthesis pathways of both phospholipids appear to be essential for parasite survival. The present Study characterizes PfCK (P. falciparum choline kinase) and PfEK (P. falciparum ethanolamine kinase), which catalyse the first enzymatic steps of these essential metabolic pathways. Recombinant PfCK and PfEK were expressed as His(6)-tagged fusion proteins from overexpressing Escherichia coli strains, then purified to homogeneity and characterized. Using murine polyclonal antibodies against recombinant kinases, PfCK and PfEK were shown to be localized within the parasite cytoplasm. Protein expression levels increased during erythrocytic development. PfCK and PfEK appeared to be specific to their respective substrates and followed Michaelis-Menten kinetics. The K value of PfCK for choline was 135.3 +/- 15.5 mu M. PfCK was also able to phosphorylate ethanolamine with a very low affinity. PfEK was found to be an ethanolamine-specific kinase (K-m = 475.7 +/- 80.2 mu M for ethanolamine). The quaternary ammonium compound hemicholinium-3 and an ethanolamine analogue, 2-amino-l-butanol, selectively inhibited PfCK or PfEK. In contrast, the bis-thiazolium compound T3, which was designed as a choline analogue and is Currently in clinical trials for antimalarial treatment. affected PfCK and PfEK activities similarly. Inhibition exerted by T3 was competitive for both PfCK and PfEK and correlated with the impairment of cellular phosphatidylcholine biosynthesis. Comparative analyses of sequences and structures for both kinase types gave insights into their specific inhibition profiles and into the dual capacity of T3 to inhibit both PfCK and PfEK.

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