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The plasmodial surface anion channel (PSAC) is an unusual small-conductance ion channel induced on erythrocytes infected with plasmodia, including parasites responsible for human malaria. Although broadly available inhibitors produce microscopic clearance of parasite cultures at high concentrations and suggest that PSAC is an antimalarial target, they have low affinity for the channel and may interfere with other parasite activities. To address these concerns, we developed a miniaturized assay for PSAC activity and carried out a high-throughput inhibitor screen. Approximately 70,000 compounds from synthetic and natural product libraries were screened, revealing inhibitors from multiple structural classes including two novel and potent heterocyclic scaffolds. Single-channel patch-clamp studies indicated that these compounds act directly on PSAC, further implicating a proposed role in transport of diverse solutes. A statistically significant correlation between channel inhibition and in vitro parasite killing by a family of compounds provided chemical validation of PSAC as a drug target. These new inhibitors should be important research tools and may be starting points for much-needed antimalarial drugs.
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http://dx.doi.org/10.1124/mol.109.062711 | DOI Listing |
J Infect Dis
September 2025
Center for Global Infectious Disease Research, Seattle Children's Research Institute, Seattle, WA USA.
Sequestration of Plasmodium falciparum-infected erythrocytes (IE) in the microvasculature is a major virulence determinant. While the sequestration of mature stage parasites (trophozoite and schizonts) to vascular endothelium is well established, the conditions that promote ring-stage IE sequestration is less understood. Here, we observed in ring-stage parasites that febrile exposure increased transcript levels of several exported parasite genes involved in the trafficking of the P.
View Article and Find Full Text PDFEmerg Microbes Infect
December 2025
School of Global Health, Chinese Centre for Tropical Diseases Research, Shanghai Jiao Tong University School of Medicine, Shanghai, People's Republic of China.
There is no vaccine for severe malaria. STEVOR antigens on the surface of -infected red blood cells are implicated in severe malaria and are targeted by neutralizing antibodies, but their epitopes remain unknown. Using computational immunology, we identified highly immunogenic overlapping B- and T-cell epitopes (referred to as multiepitopes, 7-27 amino acids) in the semiconserved domain of four STEVORs linked with severe malaria and clinical immunity.
View Article and Find Full Text PDFJ Parasit Dis
September 2025
Department of Medical Laboratory Technology, School of Medical Sciences, Accra Technical University, Accra, Ghana.
The host immune response to malaria is a complex interplay between the parasite, Plasmodium, and the human immune system. Upon infection, various components of the immune system, including innate and adaptive responses, are mobilized to combat the parasite. Innate immunity provides the initial defense, with cells such as macrophages, dendritic cells, and natural killer cells recognizing and responding to the parasite.
View Article and Find Full Text PDFOne Health
December 2025
SimplexDNA AG, Winterthur 8404, Switzerland.
Zoonotic malaria risk at human-wildlife-environment interfaces requires surveillance that integrates signals from reservoirs, vectors and the environment. We coupled a drone-based environmental DNA (eDNA) canopy swabbing approach with portable quantitative PCR (qPCR) to detect DNA in situ during a 24-h field exercise in the Amazon rainforest. Drone-lowered sterile swabs into the canopy, which were then extracted and subjected to a multiplex pan- assay targeting five human-infecting species (limit of detection 0.
View Article and Find Full Text PDFTrends Parasitol
August 2025
Institut Pasteur, Université Paris Cité, Malaria Infection and Immunity, BioSPC, F-75015, Paris, France. Electronic address:
Malaria remains a major global health burden. Antibodies targeting the circumsporozoite protein (CSP), the main surface protein of Plasmodium sporozoites, have emerged as a promising prophylactic tool. Antibodies that bind to the CSP central repetitive region are the foundation of protection against sporozoite infection elicited by CSP-based vaccines.
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