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Restructured Mitochondrial-Nuclear Interaction in Plasmodium falciparum Dormancy and Persister Survival after
Sean V Connelly1, Javier Manzella-Lapeira2, Zoë C Levine1
1Laboratory of Malaria and Vector Research, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Bethesda, Maryland, USA.
Abstract:
Artemisinin and its semisynthetic derivatives (ART) are fast acting, potent antimalarials; however, their use in malaria treatment is frequently confounded by recrudescences from bloodstream Plasmodium parasites that enter into and later reactivate from a dormant persister state. Here, we provide evidence that the mitochondria of dihydroartemisinin (DHA)-exposed persisters are dramatically altered and enlarged relative to the mitochondria of young, actively replicating ring forms. Restructured mitochondrial-nuclear associations and an altered metabolic state are consistent with stress from reactive oxygen species. New contacts between the mitochondria and nuclei may support communication pathways of mitochondrial retrograde signaling, resulting in transcriptional changes in the nucleus as a survival response. Further characterization of the organelle communication and metabolic dependencies of persisters may suggest strategies to combat recrudescences of malaria after treatment. IMPORTANCE The major first-line treatment for malaria, especially the deadliest form caused by Plasmodium falciparum, is combination therapy with an artemisinin-based drug (ART) plus a partner drug to assure complete cure. Without an effective partner drug, ART administration alone can fail because of the ability of small populations of blood-stage malaria parasites to enter into a dormant state and survive repeated treatments for a week or more. Understanding the nature of parasites in dormancy (persisters) and their ability to wake and reestablish actively propagating parasitemias (recrudesce) after ART exposure may suggest strategies to improve treatment outcomes and counter the threats posed by parasites that develop resistance to partner drugs. Here, we show that persisters have dramatically altered mitochondria and mitochondrial-nuclear interactions associated with features of metabolic quiescence. Restructured associations between the mitochondria and nuclei may support signaling pathways that enable the ART survival responses of dormancy.
Insights
Artemisinin antimalarials can fail due to dormant Plasmodium parasites. This study reveals altered mitochondria and nuclear interactions in dihydroartemisinin-exposed persisters, suggesting survival mechanisms against malaria treatment.
Area of Science:
- Malariology
- Parasitology
- Cell Biology
Background:
- Artemisinin-based antimalarials (ART) are crucial for malaria treatment.
- Parasite recrudescence after ART treatment is linked to dormant persister stages.
- Understanding persister biology is key to improving malaria cure rates.
Purpose of the Study:
- Investigate the cellular changes in Plasmodium persisters exposed to dihydroartemisinin (DHA).
- Elucidate the role of mitochondria and nuclear interactions in parasite survival.
- Identify potential targets to prevent malaria treatment failure.
Main Methods:
- Microscopy to observe mitochondrial morphology in DHA-exposed persisters.
- Analysis of mitochondrial-nuclear associations and metabolic state.
- Investigation of potential retrograde signaling pathways.
Main Results:
- Mitochondria in DHA-exposed persisters are enlarged and altered compared to replicating forms.
- Persisters exhibit restructured mitochondrial-nuclear contacts and altered metabolism.
- Evidence suggests mitochondrial retrograde signaling contributes to parasite survival.
Conclusions:
- Altered mitochondria and nuclear communication are key features of dormant malaria parasites.
- These changes represent a survival response to antimalarial drug stress.
- Targeting these persister-specific mechanisms could enhance malaria treatment efficacy.
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