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A choline-releasing glycerophosphodiesterase essential for phosphatidylcholine biosynthesis and blood stage development in the malaria parasite.
Ramaprasad, Abhinay; Burda, Paul-Christian; Calvani, Enrica; Sait, Aaron J; Palma-Duran, Susana Alejandra; Withers-Martinez, Chrislaine; Hackett, Fiona; Macrae, James; Collinson, Lucy; Gilberger, Tim Wolf; Blackman, Michael J.
Afiliação
  • Ramaprasad A; Malaria Biochemistry Laboratory, The Francis Crick Institute, London, United Kingdom.
  • Burda PC; Centre for Structural Systems Biology, Hamburg, Germany.
  • Calvani E; Bernhard Nocht Institute for Tropical Medicine, Hamburg, Germany.
  • Sait AJ; University of Hamburg, Hamburg, Germany.
  • Palma-Duran SA; Metabolomics Science Technology Platform, The Francis Crick Institute, London, United Kingdom.
  • Withers-Martinez C; Electron Microscopy Science Technology Platform, The Francis Crick Institute, London, United Kingdom.
  • Hackett F; Metabolomics Science Technology Platform, The Francis Crick Institute, London, United Kingdom.
  • Macrae J; Malaria Biochemistry Laboratory, The Francis Crick Institute, London, United Kingdom.
  • Collinson L; Malaria Biochemistry Laboratory, The Francis Crick Institute, London, United Kingdom.
  • Gilberger TW; Metabolomics Science Technology Platform, The Francis Crick Institute, London, United Kingdom.
  • Blackman MJ; Electron Microscopy Science Technology Platform, The Francis Crick Institute, London, United Kingdom.
Elife ; 112022 12 28.
Article em En | MEDLINE | ID: mdl-36576255
ABSTRACT
The malaria parasite Plasmodium falciparum synthesizes significant amounts of phospholipids to meet the demands of replication within red blood cells. De novo phosphatidylcholine (PC) biosynthesis via the Kennedy pathway is essential, requiring choline that is primarily sourced from host serum lysophosphatidylcholine (lysoPC). LysoPC also acts as an environmental sensor to regulate parasite sexual differentiation. Despite these critical roles for host lysoPC, the enzyme(s) involved in its breakdown to free choline for PC synthesis are unknown. Here, we show that a parasite glycerophosphodiesterase (PfGDPD) is indispensable for blood stage parasite proliferation. Exogenous choline rescues growth of PfGDPD-null parasites, directly linking PfGDPD function to choline incorporation. Genetic ablation of PfGDPD reduces choline uptake from lysoPC, resulting in depletion of several PC species in the parasite, whilst purified PfGDPD releases choline from glycerophosphocholine in vitro. Our results identify PfGDPD as a choline-releasing glycerophosphodiesterase that mediates a critical step in PC biosynthesis and parasite survival.
Malaria kills over half a million people every year worldwide. A single-celled parasite called Plasmodium falciparum is responsible for the most lethal form of the disease. This malaria-causing agent is carried by mosquitos which transmit the parasite to humans through their bite. Once in the bloodstream, the parasite enters red blood cells and starts to replicate so it can go on to infect other cells. Like our cells, P. falciparum is surrounded by a membrane, and further membranes surround a number of its internal compartments. To make these protective coats, the parasite has to gather a nutrient called choline to form an important building block in the membrane. The parasite gets most of its choline by absorbing and digesting a molecule known as lysoPC found in the bloodstream of its host. However, it was unclear precisely how the parasite achieves this. To address this question, Ramaprasad, Burda et al. used genetic and metabolomic approaches to study how P. falciparum breaks down lysoPC. The experiments found that mutant parasites that are unable to make an enzyme called GDPD were able to infect red blood cells, but failed to grow properly once inside the cells. The mutant parasites took up less choline and, as a result, also made fewer membrane building blocks. The team were able to rescue the mutant parasites by supplying them with large quantities of choline, which allowed them to resume growing. Taken together, the findings of Ramaprasad, Burda et al. suggest that P. falciparum uses GDPD to extract choline from lysoPC when it is living in red blood cells. More and more P. falciparum parasites are becoming resistant to many of the drugs currently being used to treat malaria. One solution is to develop new therapies that target different molecules in the parasite. Since it performs such a vital role, GDPD may have the potential to be a future drug target.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Parasitos / Malária Falciparum / Malária Limite: Animals Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Parasitos / Malária Falciparum / Malária Limite: Animals Idioma: En Ano de publicação: 2022 Tipo de documento: Article