Optimization and Characterization of the Antimalarial Activity of N-Aryl Acetamides that are Susceptible to Mutations in ROM8 and CSC1

Nguyen, WORCID logo; Boulet, CORCID logo; Dans, MG; Loi, K; Jarman, KE; Barnes, CBG; Yeo, T; Sheth, T; Mukherjee, P; Chakraborty, A; Famodimu, M; Delves, MJORCID logo; Pollard, H; Sutherland, CJORCID logo; Coyle, R; Sevilleno, N; Boonyalai, N; Lee, MCS; Rabie, T; Birkholtz, L; Baud, DORCID logo; Brand, S; Chowdury, M; de Koning-Ward, TF; Fidock, DA; Gilson, PRORCID logo and Sleebs, BEORCID logo (2025). Optimization and Characterization of the Antimalarial Activity of N-Aryl Acetamides that are Susceptible to Mutations in ROM8 and CSC1. [Dataset]. ACS Publications. https://doi.org/10.1021/acs.jmedchem.5c01471
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New antimalarials are needed due to the threat of emerging resistance against existing antimalarial therapies. A phenotypic screen uncovered the N-aryl acetamide class that inhibits the development of P. falciparum asexual ring-stage parasites. The structure–activity relationship of this class was investigated, and key modifications were introduced that produced WEHI-326 with potent antimalarial activity. Enhancing the metabolic stability of this class will be a future challenge to achieve efficacy in a malaria mouse model. WEHI-326 was found to have a moderate barrier to resistance and a moderate rate of asexual kill, potently inhibited gametocyte and gamete development, and in turn, blocked the transmission of parasites to the mosquito. Forward genetics and cross-resistance profiling determined that parasites resistant to N-aryl acetamides had mutations in rhomboid protease 8 (ROM8) and the putative cation channel, CSC1. WEHI-326 will be an important tool in unraveling the role of ROM8 and CSC1 in P. falciparum development.

Keywords

Malaria; Mouse models; Antimalarials

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