Identifying purine nucleoside phosphorylase as the target of quinine using cellular thermal shift assay.

Dziekan, Jerzy M; Yu, Han; Chen, Dan; Dai, Lingyun; Wirjanata, Grennady; Larsson, Andreas; Prabhu, Nayana; Sobota, Radoslaw M et al. · Sci Transl Med · 2019

basic_science · Level V

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Abstract

Mechanisms of action (MoAs) have been elusive for most antimalarial drugs in clinical use. Decreasing responsiveness to antimalarial treatments stresses the need for a better resolved understanding of their MoAs and associated resistance mechanisms. In the present work, we implemented the cellular thermal shift assay coupled with mass spectrometry (MS-CETSA) for drug target identification in <i>Plasmodium falciparum</i>, the main causative agent of human malaria. We validated the efficacy of this approach for pyrimethamine, a folic acid antagonist, and E64d, a broad-spectrum cysteine proteinase inhibitor. Subsequently, we applied MS-CETSA to quinine and mefloquine, two important antimalarial drugs with poorly characterized MoAs. Combining studies in the <i>P. falciparum</i> parasite lysate and intact infected red blood cells, we found <i>P. falciparum</i> purine nucleoside phosphorylase (PfPNP) as a common binding target for these two quinoline drugs. Biophysical and structural studies with a recombinant protein further established that both compounds bind within the enzyme's active site. Quinine binds to PfPNP at low nanomolar affinity, suggesting a substantial contribution to its therapeutic effect. Overall, we demonstrated that implementation of MS-CETSA for <i>P. falciparum</i> constitutes a promising strategy to elucidate the MoAs of existing and candidate antimalarial drugs.

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