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De Souza, W.

Publications and source records attributed to De Souza, W..

2 recordsLinked to original sources

Cytosol-living Trypanosoma cruzi amastigotes scavenge cholesterol from host ER and Golgi complex

Chagas Disease, caused by the protozoan parasite Trypanosoma cruzi, stands as a prevalent neglected disease in Latin America. The amastigote stage, the replicant intracellular form of the parasite, is a crucial player in infection persistence within vertebrate hosts. The amastigotes exhibit remarkable adaptability regarding the cell type that they infect, being able to modulate their metabolism and growth based on the host cell resources availability. Lipid metabolism emerges as a key determinant of amastigote growth, with a dependency on the host cells lipid resources. While the parasite can synthesize some sterols and fatty acids, it also scavenges these essential components, particularly cholesterol, from the host. Alterations in the hosts cholesterol metabolism, potentially regulated by SREBPs, contribute to increased intracellular cholesterol levels, fostering parasite development. However, the mechanisms underlying cholesterol uptake by amastigotes remained elusive. Here, we investigate the cholesterol trafficking mechanism from host cells to amastigotes by employing a fluorescent cholesterol analog. Using advanced imaging techniques, such as confocal fluorescence microscopy and high-resolution volume electron microscopy we demonstrated that amastigotes internalize extracellular-derived cholesterol, defined the uptake kinetics for cholesterol by amastigotes, and demonstrated that cholesterol is important for amastigote development. Analysis of the interaction of host cell ER with the amastigotes revealed by the presence of membrane contact sites between this organelle and the amastigote plasma membrane. We also showed that amastigotes can take up host ER and Golgi proteins, probably by endocytosis, paving a new mechanism for host cell scavenging of molecules by the parasite. Author SummaryChagas Disease, a widespread yet often overlooked challenge in Latin America, is driven by the parasite Trypanosoma cruzi. Understanding the amastigote stage, the parasites replicative form, is crucial for grasping infection persistence. This study reveals a critical survival strategy - amastigotes adeptly scavenging cholesterol from host cells. We demonstrated that the amastigotes can take up cholesterol from the host and that cholesterol is important for parasite development. Analysis of host cell organelles involved with cholesterol traffic, ER and Golgi, suggested their involvement, establishing crucial conduits for cholesterol acquisition. Deciphering these mechanisms illuminates the intricate interplay between parasite and host, presenting a potential treatment target. The parasites reliance on host cholesterol underscores adaptable growth strategies. This breakthrough deepens Chagas Disease understanding, paving the way for targeted therapeutic interventions.

cell biology↗

The PP1 phosphatase exhibits pleiotropic roles controlling both the tachyzoite cell cycle and amylopectin-steady state levels in Toxoplasma gondii.

Virulence of apicomplexan parasites is based on their ability to divide rapidly to produce significant biomass. The regulation of their cell-cycle is therefore key to their pathogenesis. Phosphorylation is a crucial post-transcriptional modification that regulates many aspects of the eucaryotic cell cycle. The phosphatase PP1 is known to play a major role in the phosphorylation balance in eukaryotes. We explored the role of TgPP1 during the cell cycle of the tachyzoite form of the apicomplexan parasite Toxoplasma gondii. Using a conditional mutant strain, we show that TgPP1 regulates many aspects of the cell cycle including the proper assembly of the daughter cells inner membrane complex (IMC), the segregation of organelles and nuclear division. Unexpectedly, depletion of TgPP1 also results in the accumulation of amylopectin, a storage polysaccharide that is normally found in the latent bradyzoite form of the parasite. Using transcriptomics and phosphoproteomics, we show that TgPP1 mainly acts through post-transcriptional mechanisms by dephosphorylating target proteins including IMC proteins. TgPP1 also dephosphorylate a protein bearing a starch binding domain. Mutagenesis analysis reveals that the targeted phospho-sites are linked to the ability of the parasite to regulate amylopectin steady-state levels. Therefore, we show that TgPP1 has pleiotropic roles during the tachyzoite cell cycle regulation, but also regulates amylopectin accumulation.

microbiology↗