Search PubMedSearch

PubMed · 39865504

Plasmodium falciparum CyRPA Glycan Binding Does Not Explain Adaptation to Humans.

Abstract

The human malaria parasite Plasmodium falciparum evolved from a parasite that infects gorillas, termed Plasmodium praefalciparum. The sialic acids on glycans on the surface of erythrocytes differ between humans and other apes. It has recently been shown that the P. falciparum cysteine-rich protective antigen (PfCyRPA) binds human sialoglycans as an essential step in the erythrocyte invasion pathway, while that of the chimpanzee parasite, Plasmodium reichenowi has affinities matching ape glycans. Two amino acid changes, at sites 154 and 209, were shown to be sufficient to switch glycan binding preferences and inferred to reflect adaptation of P. falciparum to humans. However, we show that sites 154 and 209 are identical in P. falciparum and P. praefalciparum, with no other differences located in or near the CyRPA glycan binding sites. Thus, the gorilla precursor appears to have already been preadapted to bind human sialoglycans.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Paul M Sharp, Frederic Bibollet-Ruche, Beatrice H Hahn. 2025-02-03. Plasmodium falciparum CyRPA Glycan Binding Does Not Explain Adaptation to Humans.. https://doi.org/10.1093/gbe%2Fevaf016

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Signal recognition particle 14 binds to importin α in Plasmodium falciparum.

BACKGROUND: The eukaryotic signal recognition particle (SRP) consists of six proteins and one SRP RNA. This ribonucleoprotein complex assembles inside the nucleus. Nucleocytoplasmic transport is an essential process for the biogenesis of signal recognition particles (SRPs) as well as for the survival of a cell. There are studies on cells that indicate the import receptor is responsible for import of SRP proteins into nucleus, but there is a lack of evidence that SRP proteins directly bind with import receptors. METHODS AND RESULTS: Coding sequences of SRP 14 and importin α were amplified from synthesized cDNA and genomic DNA, respectively, of Plasmodium falciparum cultivated in vitro culture. The amplified products were cloned and expressed in E. coli, followed by purification. A binding study was conducted on glutathione-agarose as well as in a 96-well plate format at different concentrations of SRP 14 with immobilized importin α. CONCLUSION: This is the first report of direct binding between importin α and a eukaryotic signal recognition particle 14 (SRP 14). A cost-effective 96-well plate-based assay has also been developed to study the binding of cargoes of importin α.

Plasmodium falciparum

Multiple local PfDHFR I164L haplotype expansions drive Plasmodium falciparum antifolate resistance in Uganda.

Mutations in the Plasmodium falciparum genes, pfdhfr and pfdhps, drive antifolate resistance and threaten malaria control in regions where sulfadoxine-pyrimethamine (SP) is the primary chemoprevention strategy. The spatial patterns and evolutionary dynamics of these mutations in high-transmission settings remain incompletely understood. Here we genotyped 11 resistance-associated mutations in pfdhfr and pfdhps in 4,725 P. falciparum isolates collected from 16 Ugandan health facilities as part of annual surveillance between 2016 and 2022. Notably, we show that the frequency of PfDHFR I164L, which confers higher pyrimethamine resistance, increased over time from 19.4% to 32.4%. Using identity-by-descent, haplotype structure, and extended haplotype homozygosity analyses, we show that PfDHFR I164L is present on multiple haplotype backgrounds and undergoes localised expansions, without detectable signatures of recent positive selection at all but one site. Our results suggest that the evolution of antifolate resistance, driven by PfDHFR I164L, is spatially heterogeneous and complex in regions that primarily use SP chemoprevention programmes.

Plasmodium falciparum

Discovery of Sphaeriaurantins as Rapid-Acting Antiplasmodials with Dual Activity in Blood and Liver Stages.

The rapid emergence of resistance in the malaria-causing protozoan Plasmodium falciparum has heightened the demand for treatments with novel modes of action. Having evolved to produce a myriad of structurally diverse natural products (NPs) as defenses against soil-dwelling parasites including protozoa, Actinomycetota strains are a promising source for the discovery of NPs as antiplasmodial drug leads. Herein, the selective inhibition of P. falciparum is reported for five distinct NP families from Actinomycetota, including an unprecedented family of glycosylated type II polyketides termed sphaeriaurantins (SPAs). The structures of SPAs were established through the combination of MS and NMR spectroscopic data analysis, derivatization and comparison of the deoxyhexose moieties to authentic standards, and quantum chemical calculations, including 1H and 13C NMR chemical shifts and electronic circular dichroism (ECD) spectra. The three isolated SPA congeners reveal that the characteristic pseudodimeric structure of the SPA family of NPs, likely introduced at a late stage of the SPA biosynthesis, is highly relevant for the observed low nanomolar activity. SPA A exhibits a rapid killing profile, with activities across all intraerythrocytic stages, and potent liver stage efficacy, as well as a low propensity for resistance development. Taken together, these results suggest a mode of action that most likely is distinct from the existing antimalarials, supporting SPA A as a promising antimalarial drug lead for further development.

Plasmodium falciparum