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Lucky, A. B.

Publications and source records attributed to Lucky, A. B..

2 recordsLinked to original sources

Clathrins are involved in the endocytosis of host cytosol in the malaria parasite

In eukaryotic cells, clathrins interact with adaptor protein complexes to regulate key intracellular trafficking events. Specifically, they are associated with the adaptor protein (AP) complex-2 (AP2) to facilitate endocytosis and AP1 to mediate secretion and trafficking between endosome and Golgi. In Plasmodium falciparum, recent studies revealed that the Kelch domain-containing protein 13 and AP2 participate in hemoglobin uptake via cytostomes. However, clathrins appear not to be involved in this process because they primarily associate with AP1. To investigate the roles of clathrins in P. falciparum, we characterized the clathrin heavy chain (PfCHC), the clathrin light chain (PfCLC), and the AP1 {gamma} subunit (PfAP1 {gamma}). Extensive interactome analyses confirmed the major association of clathrins with AP1 components alongside proteins involved in cytostome formation. Live-cell imaging and protein colocalization studies showed that PfCHC, PfCLC, and PfAP1 {gamma} are localized in the parasite cytoplasm, predominantly at the parasite periphery and near the cis-Golgi. Ultrastructural studies using ascorbate peroxidase 2- based electron microscopy confirmed their presence at coated vesicle-like structures at the parasite periphery and, unexpectedly, at the collars of cytostomes. Consistent with these observations, the knockdown of PfCHC led to the formation of abnormally long cytostome tubes and impaired hemoglobin digestion. This study demonstrates that clathrins are essential for proper cytostome formation in P. falciparum, highlighting their critical role in the parasites hemoglobin uptake and digestion processes. IMPORTANCEMalaria is still one of the most severe public health problems worldwide and understanding how malaria parasites obtain hemoglobin from their host cells, red blood cells (RBCs), is critical for identifying targets for antimalarials. In this study, affinity purification revealed that clathrins (PfCHC and PfCLC) were not only mainly associated with AP1 complex but also marginally interacted with proteins that participated in hemoglobin uptake. Localization analysis demonstrated that clathrins and AP1 coated the clusters of vesicles at the parasite periphery and at the neck of the cytostome, an organelle for hemoglobin uptake. Consistently, the knockdown of PfCHC caused the formation of abnormally long cytostome tubes and reduced hemoglobin digestion. Collectively, this study demonstrates that clathrins play a critical role in the parasites hemoglobin uptake.

microbiology↗

Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses

Plasmodium falciparum causes the most severe malaria and is exposed to various environmental and physiological stresses in the human host. Given that GCN5 plays a critical role in regulating stress responses in model organisms, we aimed to elucidate PfGCN5s function in stress responses in P. falciparum. The protein level of PfGCN5 was substantially induced under three stress conditions (heat shock, low glucose starvation, and dihydroartemisinin, the active metabolite of artemisinin (ART)). With a TetR-DOZI conditional knockdown (KD) system, we successfully down-regulated PfGCN5 to [~]50% and found that KD parasites became more sensitive to all three stress conditions. Transcriptomic analysis via RNA-seq identified [~]1,000 up-and down-regulated genes in the wildtype (WT) and KD parasites under these stress conditions. Importantly, DHA induced transcriptional alteration of many genes involved in many aspects of stress responses, which were heavily shared among the altered genes under heat shock and low glucose conditions, including ART-resistance-related genes such as K13 and coronin. Based on the expression pattern between WT and KD parasites under three stress conditions, [~]300-400 genes were identified to be involved in PfGCN5-dependent, general and stress-condition-specific responses with high levels of overlaps among three stress conditions. Notably, using ring-stage survival assay (RSA), we found that KD or inhibition of PfGCN5 could sensitize the ART-resistant parasites to the DHA treatment. All these indicate that PfGCN5 is pivotal in regulating general and ART-resistance-related stress responses in malaria parasites, implicating PfGCN5 as a potential target for malaria intervention. IMPORTANCEMalaria leads to about half a million deaths annually and these casualties were majorly caused by the infection of Plasmodium falciparum. This parasite strives to survive by defending against a variety of stress conditions, such as malaria cyclical fever (heat shock), starvation due to low blood sugar (glucose) levels (hypoglycemia), and drug treatment. Previous studies have revealed that P. falciparum has developed unique stress responses to different stresses including ART treatment, and ART-resistant parasites harbor elevated stress responses. In this study, we provide critical evidence on the role of PfGCN5, a histone modifier, and a chromatin coactivator, in regulating general and stress-specific responses in malaria parasites, indicating that PfGCN5 can be used as a potential target for anti-malaria intervention.

microbiology↗