TY - JOUR
T1 - Enzyme mechanism and slow-onset inhibition of Plasmodium falciparum enoyl-acyl carrier protein reductase by an inorganic complex
AU - De Maria De Medeiros, Patrícia Soares
AU - Ducati, Rodrigo Gay
AU - Basso, Luiz Augusto
AU - Santos, Diógenes Santiago
AU - Da Silva, Luiz Hildebrando Pereira
PY - 2011
Y1 - 2011
N2 - Malaria continues to be a major cause of children's morbidity and mortality worldwide, causing nearly one million deaths annually. The human malaria parasite, Plasmodium falciparum, synthesizes fatty acids employing the Type II fatty acid biosynthesis system (FAS II), unlike humans that rely on the Type I (FAS I) pathway. The FAS II system elongates acyl fatty acid precursors of the cell membrane in Plasmodium. Enoyl reductase (ENR) enzyme is a member of the FAS II system. Here we present steady-state kinetics, pre-steady-state kinetics, and equilibrium fluorescence spectroscopy data that allowed proposal of P. falciparum ENR (PfENR) enzyme mechanism. Moreover, building on previous results, the present study also evaluates the PfENR inhibition by the pentacyano(isoniazid)ferrateII compound. This inorganic complex represents a new class of lead compounds for the development of antimalarial agents focused on the inhibition of PfENR.
AB - Malaria continues to be a major cause of children's morbidity and mortality worldwide, causing nearly one million deaths annually. The human malaria parasite, Plasmodium falciparum, synthesizes fatty acids employing the Type II fatty acid biosynthesis system (FAS II), unlike humans that rely on the Type I (FAS I) pathway. The FAS II system elongates acyl fatty acid precursors of the cell membrane in Plasmodium. Enoyl reductase (ENR) enzyme is a member of the FAS II system. Here we present steady-state kinetics, pre-steady-state kinetics, and equilibrium fluorescence spectroscopy data that allowed proposal of P. falciparum ENR (PfENR) enzyme mechanism. Moreover, building on previous results, the present study also evaluates the PfENR inhibition by the pentacyano(isoniazid)ferrateII compound. This inorganic complex represents a new class of lead compounds for the development of antimalarial agents focused on the inhibition of PfENR.
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U2 - 10.4061/2011/642758
DO - 10.4061/2011/642758
M3 - Article
C2 - 21603269
AN - SCOPUS:84869012675
SN - 2090-0406
VL - 2011
JO - Enzyme Research
JF - Enzyme Research
IS - 1
M1 - 642758
ER -