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Biology subjects

Maupin, A. J. M.

Publications and source records attributed to Maupin, A. J. M..

2 recordsLinked to original sources

ABCE1-dependent translational control links Fe-S cluster biogenesis to parasite growth and lipid homeostasis in Toxoplasma gondii

Toxoplasma gondii relies on tightly regulated protein synthesis to adapt to diverse host environments and to progress through its developmental stages. Here, we investigated the role of the ATP-binding cassette protein ABCE1, a broadly-conserved factor involved in ribosome recycling and translational control. Using a conditional knockdown approach, we demonstrate that depletion of TgABCE1 severely impairs parasite growth and disrupts global protein synthesis, confirming its essential role in maintaining translational capacity. TgABCE1 function depends on the incorporation of iron-sulfur (Fe-S) clusters, likely mediated by the cytosolic iron-sulfur assembly (CIA) pathway component HCF101. Depletion of TgABCE1 phenocopies the defects observed in TgHCF101-depleted parasites, supporting a functional link between these proteins. Notably, loss of TgABCE1 also disrupts lipid homeostasis, resulting in the accumulation of lipid droplets. Together, these findings uncover a critical link between translational regulation, Fe-S cluster biogenesis, and lipid homeostasis, highlighting the central role of proteostasis in parasite survival and development.

microbiology↗

Iron depletion has different consequences on the growth and survival of Toxoplasma gondii strains

Toxoplasma gondii is an obligate intracellular parasite that is responsible for a pathology called toxoplasmosis which is primarily affecting immunocompromised individuals and developing fetuses. The parasite is able to scavenge essential nutrients from its host to support its own growth and survival. Among them, iron is one of the most important elements needed to sustain basic cellular functions, as it is involved in a number of key metabolic processes, including oxygen transport, redox balance and electron transport. We have evaluated the effects of an iron chelator on the development of several parasite strains and found that they differed in their ability to tolerate iron depletion. The growth of parasites usually associated with a model of acute toxoplasmosis was strongly impacted by iron depletion, while cystogenic strains were less sensitive as they were able to convert into persisting developmental forms which are associated with the chronic form of the disease. Ultrastructural and biochemical characterization of the impact of iron depletion on the parasites also highlighted striking changes in both in their metabolism and the one of the host, with a marked accumulation of lipid droplets and perturbation of lipid homeostasis. Overall, our study demonstrates that although acute iron depletion has an important effect on the growth of T. gondii, it has a more profound impact on actively dividing parasites, while less metabolically-active parasite forms may be able to avoid some of the most detrimental consequences.

microbiology↗