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Ling, D. B.

Publications and source records attributed to Ling, D. B..

5 recordsLinked to original sources

Plasmodium berghei is resistant to aryl amino acetamides that inhibit P. falciparum growth by targeting the phospholipid transfer protein PfSTART1.

In a previous screen for compounds that inhibit Plasmodium falciparum merozoite invasion of red blood cells, we identified the Medicines for Malaria Venture compound MMV006833. This compound inhibits PfSTART1, a protein implicated in the expansion of the nascent parasitophorous vacuole membrane following invasion, to accommodate the developing ring-stage parasite. Live-cell lattice light-sheet microscopy of invading merozoites revealed that mNeonGreen-tagged PfSTART1 is released from structures within the merozoite into the nascent parasitophorous vacuole approximately 109 seconds after invasion. Expansion microscopy of PfSTART1-HA merozoites further showed that these punctate PfSTART1-containing structures do not colocalise with known secretory organelles (rhoptries, micronemes and dense granules). Although analogues of MMV006833 are highly potent against P. falciparum, they were previously found to be ineffective against P. berghei parasites in the mouse malaria model. Here, we demonstrate that PbSTART1 is highly resistant to MMV006833 and its analogues when expressed in P. falciparum, indicating that structural differences between the orthologous proteins reduce inhibitor potency. The crystal structure of PfSTART1 in complex with WEHI-991 revealed the molecular basis for inhibition and provided a structural explanation for the reduced potency of this family of compounds against P. berghei. To sensitise P. berghei parasites to MMV006833 analogues, the parasites were engineered to express PfSTART1; however, these chimeric parasites remained insensitive to the compounds. This suggests that factors beyond target engagement, such as compound half-life or bioavailability, contribute to the lack of efficacy observed in the mouse malaria model.

microbiology↗

Formation of the moving junction is the nexus for host cytoskeletal remodelling during Plasmodium falciparum invasion of human erythrocytes

Plasmodium falciparum invasion of human erythrocytes is a complex and tightly coordinated process, involving host cell attachment, moving junction formation and engagement of the parasites actomyosin motor. The temporal precision of these events is mediated by distinct ligand-receptor interactions and the sequential release of the merozoites apical organelles. What remains unclear is how these molecular and biophysical interactions enable Plasmodium to bypass the stable erythrocyte membrane-cytoskeletal complex. Here, several P. falciparum lines expressing different fluorescently tagged apical organelle proteins, were imaged with lattice light sheet microscopy (LLSM) to determine the timing of cytoskeletal disassembly and apical organelle release. Blocking the AMA1-RON2 interaction has no effect on the PfRh5-basigin Ca2+ flux but prevents host cytoskeleton disassembly. In contrast, the inhibition of parasite actin polymerisation had no effect on cytoskeletal clearance but caused a sustained Ca2+ response. We further demonstrate that establishment of the moving junction is temporally linked to clearance of the host cytoskeleton. Collectively, our findings support the existence of an association between the RON complex and components of the host cytoskeleton, which mediates the localised disruption of the erythrocyte-membrane cytoskeletal complex during invasion.

microbiology↗

MMV687794 blocks Plasmodium falciparum invasion of red blood cells by targeting a Surface-associated Lipid-Interacting Rhoptry Protein, PfSLIRP

Invasion of red blood cells (RBCs) by the human malaria parasite, Plasmodium falciparum, drives disease. During invasion, the parasite pushes its way into the RBC while wrapping the RBC membrane around itself to establish the parasitophorous vacuole, a stable niche within the RBC where the parasite grows. To better understand invasion, we investigated the mechanism of action of an invasion-inhibitory compound, MMV687794 (MMV794). Lattice light-sheet microscopy revealed that MMV794 blocks parasite entry by preventing parasitophorous vacuole formation. In vitro drug resistance selection of parasites with MMV794 found mutations to the /{beta} hydrolase, PF3D7_0403800, and engineering one of these mutations (C36W) into parasites by CRISPR/Cas9 recapitulated the resistance phenotype. Expansion microscopy demonstrated that this protein is expressed in schizonts, localising to the surface of rhoptries, which are specialised apical secretory organelles that function during invasion. Lipidomics and proteomics analyses of C36W parasites uncovered widespread changes to lipid composition/homeostasis and altered abundance of proteins involved in invasion, indicating a role for PF3D7_0403800 in invasion-associated lipid metabolism. Finally, we used solvent-induced proteome profiling and reactivity assays to confirm drug-target engagement. Together, our findings identify a novel Surface-associated Lipid-Interacting Rhoptry Protein (PfSLIRP) that coordinates lipid metabolism at the rhoptries to enable RBC invasion.

microbiology↗

Aryl amino acetamides prevent the development of Plasmodium falciparum rings via inhibition of the lipid transfer protein PfSTART1

With resistance to most antimalarials increasing, it is imperative that new antimalarial drugs are developed to replace or complement front-line artemisinin therapies. We previously identified an aryl acetamide compound, MMV006833 (M-833), that inhibited ring development of newly invaded merozoites. Here, we selected parasites resistant to M-833 and identified independent mutations arising in the START lipid transfer protein (PF3D7_0104200, PfSTART1). Introduction of the identified PfSTART1 mutations into wildtype parasites reproduced resistance to both M-833 and highly potent analogues, confirming PfSTART1 mutations were sufficient to confer resistance. The analogues bound to recombinant PfSTART1 with nanomolar affinity. We also demonstrated selective PfSTART1 engagement by the analogues using organic solvent-based Proteome Integral Solubility Alteration (Solvent PISA) assay for the first time in Plasmodium. Imaging of newly invaded merozoites showed the inhibitors prevented the conversion into larger amoeboid ring-stage parasites potentially through the inhibition of phospholipid transfer from the parasite to the encasing parasitophorous vacuole membrane (PVM) and/or within the parasite. We show that these PfSTART1 inhibitors also block transmission. With multiple stages of the parasites lifecycle being targeted by PfSTART1 inhibitors, this protein therefore represents a novel drug target with a new mechanism of action.

cell biology↗

A pyridyl-furan series developed from Open Global Health Library blocks red blood cell invasion and protein trafficking in Plasmodium falciparum through potential inhibition of the parasites PI4KIIIb enzyme.

With resistance increasing to current antimalarial medicines, there is an urgent need to discover new drug targets and to develop new medicines against these targets. We therefore screened the Open Global Health Library of Merck KGaA, Darmstadt, Germany of 250 compounds against the asexual blood stage of the deadliest malarial parasite Plasmodium falciparum, from which eight inhibitors with low micromolar potency were found. Due to its combined potencies against parasite growth and inhibition of red blood cell invasion, the pyridyl-furan compound OGHL250, was prioritised for further optimisation. The potency of the series lead compound (WEHI-518) was improved 250-fold to low nanomolar levels against parasite blood-stage growth. Parasites selected for resistance to a related compound MMV396797, were also resistant to WEHI-518 as well as KDU731, an inhibitor of the phosphatidylinositol kinase PfPI4KIIIB, suggesting this kinase is the target of the pyridyl-furan series. Inhibition of PfPI4KIIIB blocks multiple stages of the parasites life cycle and other potent inhibitors are currently under preclinical development. MMV396797-resistant parasites possess an E1316D mutation in PfPKI4IIIB which clusters with known resistance mutations of other inhibitors of the kinase. Building upon earlier studies which showed that PfPI4KIIIB inhibitors block the development of the invasive merozoite parasite stage, we show that members of the pyridyl-furan series also block invasion and/or the conversion of merozoites into ring-stage intracellular parasites through inhibition of protein secretion and export into red blood cells.

microbiology↗