The cytosolic glyoxalases of Plasmodium falciparum are dispensable during asexual blood-stage development

Microb Cell. 2017 Nov 20;5(1):32-41. doi: 10.15698/mic2018.01.608.

Abstract

The enzymes glyoxalase 1 and 2 (Glo1 and Glo2) are found in most eukaryotes and catalyze the glutathione-dependent conversion of 2-oxoaldehydes to 2-hydroxycarboxylic acids. Four glyoxalases are encoded in the genome of the malaria parasite Plasmodium falciparum, the cytosolic enzymes PfGlo1 and PfcGlo2, the apicoplast enzyme PftGlo2, and an inactive Glo1-like protein that also carries an apicoplast-targeting sequence. Inhibition or knockout of the Plasmodium glyoxalases was hypothesized to lead to an accumulation of 2-oxoaldehydes and advanced glycation end-products (AGE) in the host-parasite unit and to result in parasite death. Here, we generated clonal P. falciparum strain 3D7 knockout lines for PFGLO1 and PFcGLO2 using the CRISPR-Cas9 system. Although 3D7Δglo1 knockout clones had an increased susceptibility to external glyoxal, all 3D7Δglo1 and 3D7Δcglo2 knockout lines were viable and showed no significant growth phenotype under standard growth conditions. Furthermore, the lack of PfcGlo2, but not PfGlo1, increased gametocyte commitment in the knockout lines. In summary, PfGlo1 and PfcGlo2 are dispensable during asexual blood-stage development while the loss of PfcGlo2 may induce the formation of transmissible gametocytes. These combined data show that PfGlo1 and PfcGlo2 are most likely not suited as targets for selective drug development.

Keywords: CRISPR/Cas9; Plasmodium falciparum; drug target; glyoxalase; malaria.

Grants and funding

The position of C.A.W. was funded by the German Academic Exchange Service (DAAD) and the Ministry of Education, Ghana. L.L. and V.S. were funded by the DFG (grants DE 1431/8-1 and DE 1431/10-1 to M.D.). M.D. and G.P. are grateful to the DFG for funding of their positions in the frame of the Heisenberg program (grants DE 1431/9-1 and PR905/8-1 and 8-2). We thank Jose-Juan Lopez-Rubio for plasmids pUF1-Cas9 and pL6.