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Updated: May 7, 2026

Understanding the Development of Compensatory Pathways in a Mutant Malaria Parasite Harbouring Hypomorphic Allele of Plant-Like Kinases
Published on: November 22, 2024
The suf iron-sulfur cluster synthesis pathway is required for apicoplast maintenance in malaria parasites
Jolyn E Gisselberg1, Teegan A Dellibovi-Ragheb, Krista A Matthews
1Department of Biochemistry and Molecular Biology, Johns Hopkins Bloomberg School of Public Health, Baltimore, Maryland, United States of America.
Abstract:
The apicoplast organelle of the malaria parasite Plasmodium falciparum contains metabolic pathways critical for liver-stage and blood-stage development. During the blood stages, parasites lacking an apicoplast can grow in the presence of isopentenyl pyrophosphate (IPP), demonstrating that isoprenoids are the only metabolites produced in the apicoplast which are needed outside of the organelle. Two of the isoprenoid biosynthesis enzymes are predicted to rely on iron-sulfur (FeS) cluster cofactors, however, little is known about FeS cluster synthesis in the parasite or the roles that FeS cluster proteins play in parasite biology. We investigated two putative FeS cluster synthesis pathways (Isc and Suf) focusing on the initial step of sulfur acquisition. In other eukaryotes, these proteins can be located in multiple subcellular compartments, raising the possibility of cross-talk between the pathways or redundant functions. In P. falciparum, SufS and its partner SufE were found exclusively the apicoplast and SufS was shown to have cysteine desulfurase activity in a complementation assay. IscS and its effector Isd11 were solely mitochondrial, suggesting that the Isc pathway cannot contribute to apicoplast FeS cluster synthesis. The Suf pathway was disrupted with a dominant negative mutant resulting in parasites that were only viable when supplemented with IPP. These parasites lacked the apicoplast organelle and its organellar genome--a phenotype not observed when isoprenoid biosynthesis was specifically inhibited with fosmidomycin. Taken together, these results demonstrate that the Suf pathway is essential for parasite survival and has a fundamental role in maintaining the apicoplast organelle in addition to any role in isoprenoid biosynthesis.
Insights
The malaria parasite Plasmodium falciparum
Area of Science:
- Malaria parasite biology
- Organelle biogenesis
- Biochemistry
Background:
- The apicoplast is vital for Plasmodium falciparum development.
- Isoprenoid biosynthesis in the apicoplast is essential, relying on iron-sulfur (FeS) clusters.
- FeS cluster synthesis pathways (Isc and Suf) in parasites are poorly understood.
Purpose of the Study:
- Investigate the roles of the Isc and Suf pathways in FeS cluster synthesis.
- Determine the subcellular localization and function of key enzymes in these pathways.
- Elucidate the essentiality of the Suf pathway for parasite survival and apicoplast maintenance.
Main Methods:
- Subcellular localization studies of SufS, SufE, IscS, and Isd11.
- Enzymatic assays, including cysteine desulfurase activity of SufS.
- Genetic disruption of the Suf pathway using dominant-negative mutants.
- Phenotypic analysis of mutant parasites, including apicoplast integrity and rescue experiments with IPP.
Main Results:
- SufS and SufE are localized to the apicoplast, with SufS exhibiting cysteine desulfurase activity.
- IscS and Isd11 are exclusively mitochondrial, indicating the Isc pathway does not support apicoplast FeS cluster synthesis.
- Disruption of the Suf pathway leads to apicoplast loss and parasite death, unless supplemented with isopentenyl pyrophosphate (IPP).
Conclusions:
- The Suf pathway is essential for Plasmodium falciparum survival.
- The Suf pathway plays a critical role in maintaining the apicoplast organelle.
- Targeting the Suf pathway offers a potential strategy for antimalarial drug development.
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