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Updated: Jan 11, 2026

Author Spotlight: Identifying Compensatory Pathways in Malaria Parasites Containing Hypomorphic Allele of Essential Protein Kinases
Published on: November 22, 2024
An Essential Adaptor for Apicoplast Fission and Inheritance in Malaria Parasites
James Blauwkamp1, Krithika Rajaram2,3, Sophia R Staggers4
1Indiana University School of Medicine, Department of Biochemistry Molecular Biology and Pharmacology, Indianapolis.
Abstract:
Blood-stage Plasmodium falciparum parasites rely on a non-photosynthetic plastid, the apicoplast, for survival, making it an attractive target for antimalarial intervention. Like the mitochondrion, the apicoplast cannot be generated de novo and must be inherited by daughter parasites during cell division. This inheritance relies on coordinated apicoplast positioning and fission, but the molecular mechanisms controlling these processes remain poorly understood. Here, we identify a previously uncharacterized P. falciparum protein (Pf3D7_0613600), which we name PfAnchor, as a key regulator of apicoplast fission. Using Ultrastructure Expansion Microscopy (U-ExM), we show that PfAnchor localizes to the apicoplast throughout the asexual blood-stage. Conditional depletion disrupts apicoplast fission, leading to incomplete cytokinesis and parasite death. Notably, loss of the apicoplast's elongated branched structure via azithromycin treatment rescues these defects, underscoring Anchor's specific role in apicoplast fission. Immunoprecipitation identified an interaction with the dynamin-like GTPase PfDyn2, a key mediator of both apicoplast and mitochondrial fission, establishing PfAnchor as the first apicoplast-specific dynamin adaptor protein. Our findings define PfAnchor as an essential factor for apicoplast fission and inheritance in P. falciparum blood-stage parasites, highlighting parasite-specific organelle division as a potential vulnerability for therapeutic intervention.
Insights
A new protein, PfAnchor, is essential for apicoplast fission and inheritance in malaria parasites. Disrupting this process offers a potential therapeutic target for antimalarial drugs.
Area of Science:
- Parasitology
- Cell Biology
- Molecular Biology
Background:
- The apicoplast is vital for Plasmodium falciparum survival and an antimalarial drug target.
- Apicoplast inheritance requires precise positioning and fission, but mechanisms are unclear.
Purpose of the Study:
- Identify novel regulators of apicoplast fission in P. falciparum.
- Characterize the role of PfAnchor in apicoplast inheritance.
Main Methods:
- Ultrastructure Expansion Microscopy (U-ExM) for protein localization.
- Conditional protein depletion to assess function.
- Immunoprecipitation to identify protein interactions.
Main Results:
- PfAnchor localizes to the apicoplast during asexual blood stages.
- PfAnchor depletion inhibits apicoplast fission, causing parasite death.
- PfAnchor interacts with PfDyn2, a dynamin-like GTPase.
Conclusions:
- PfAnchor is the first identified apicoplast-specific dynamin adaptor.
- PfAnchor is essential for apicoplast fission and inheritance.
- Targeting apicoplast division presents a potential antimalarial strategy.
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