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Essential Metal Uptake in Gram-negative Bacteria: X-ray Fluorescence, Radioisotopes, and Cell Fractionation
Published on: February 1, 2018
Identification of a divalent metal transporter required for cellular iron metabolism in malaria parasites
Kade M Loveridge1, Paul A Sigala1
1Department of Biochemistry, University of Utah School of Medicine, Salt Lake City, UT 84112.
Abstract:
Plasmodium falciparum malaria parasites invade and multiply inside red blood cells (RBCs), the most iron-rich compartment in humans. Like all cells, P. falciparum requires nutritional iron to support essential metabolic pathways, but the critical mechanisms of iron acquisition and trafficking during RBC infection have remained obscure. Parasites internalize and liberate massive amounts of heme during large-scale digestion of RBC hemoglobin within an acidic food vacuole (FV) but lack a heme oxygenase to release porphyrin-bound iron. Although most FV heme is sequestered into inert hemozoin crystals, prior studies indicate that trace heme escapes biomineralization and is susceptible to nonenzymatic degradation within the oxidizing FV environment to release labile iron. Parasites retain a homolog of divalent metal transporter 1 (DMT1), a known mammalian iron transporter, but its role in P. falciparum iron acquisition has not been tested. Our phylogenetic studies indicate that P. falciparum DMT1 (PfDMT1) retains conserved molecular features critical for metal transport. We localized this protein to the FV membrane and defined its orientation in an export-competent topology. Conditional knockdown of PfDMT1 expression is lethal to parasites, which display broad cellular defects in iron-dependent functions, including impaired apicoplast biogenesis and mitochondrial polarization. Parasites are selectively rescued from partial PfDMT1 knockdown by supplementation with exogenous iron, but not other metals. These results support a cellular paradigm whereby PfDMT1 is the molecular gatekeeper to essential iron acquisition by blood-stage malaria parasites and suggest that therapeutic targeting of PfDMT1 may be a potent antimalarial strategy.
Insights
Plasmodium falciparum malaria parasites acquire essential iron via the PfDMT1 transporter located in the food vacuole. Targeting this iron uptake mechanism is a potential antimalarial strategy.
Area of Science:
- Malariology
- Molecular parasitology
- Iron metabolism
Background:
- Malaria parasites (Plasmodium falciparum) infect human red blood cells (RBCs), a rich iron source.
- Iron acquisition mechanisms in P. falciparum remain poorly understood.
- Parasites digest hemoglobin, releasing heme, but lack heme oxygenase to extract iron.
Purpose of the Study:
- To investigate the role of a putative iron transporter, P. falciparum divalent metal transporter 1 (PfDMT1), in iron acquisition during RBC infection.
- To determine the localization and function of PfDMT1 in malaria parasites.
Main Methods:
- Phylogenetic analysis of PfDMT1.
- Localization studies using protein tagging and microscopy.
- Conditional knockdown of PfDMT1 expression.
- Rescue experiments with exogenous iron supplementation.
Main Results:
- PfDMT1 shares conserved metal transport features and is localized to the food vacuole membrane.
- Conditional knockdown of PfDMT1 is lethal, causing iron-dependent cellular defects.
- Parasites are rescued by iron supplementation, confirming PfDMT1's role in iron uptake.
Conclusions:
- PfDMT1 acts as the gatekeeper for essential iron acquisition in blood-stage malaria parasites.
- Targeting PfDMT1 presents a promising antimalarial therapeutic strategy.
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