AI Article Synopsis

  • The mitochondrial electron transport chain (mETC) is crucial for processes like ATP synthesis and the production of pyrimidines, with complex III (cytochrome complex) playing a key role in electron transfer and proton gradient generation.
  • Research highlights that the composition of complex III in parasites (PfCIII) differs from humans, making it a promising target for antimalarial drugs like atovaquone and other pre-clinical inhibitors.
  • This study demonstrates the importance of the PfCIII subunit, PfRieske, in parasite survival and gametocyte maturation, linking genetic disruption of PfRieske to mitochondrial dysfunction and emphasizing its potential as a target for future antimalarial drug development.

Article Abstract

The mitochondrial electron transport chain (mETC) is responsible for essential metabolic pathways such as de novo pyrimidine synthesis and ATP synthesis. The mETC complex III (cytochrome complex) is responsible for transferring electrons from ubiquinol to cytochrome and generating a proton gradient across the inner mitochondrial membrane, which is necessary for the function of ATP synthase. Recent studies have revealed that the composition of complex III (PfCIII) is divergent from humans, highlighting its suitability as a target for specific inhibition. Indeed, PfCIII is the target of the clinically used anti-malarial atovaquone and of several inhibitors undergoing pre-clinical trials, yet its role in parasite biology has not been thoroughly studied. We provide evidence that the universally conserved subunit, PfRieske, and the new parasite subunit, PfC3AP2, are part of PfCIII, with the latter providing support for the prediction of its divergent composition. Using inducible depletion, we show that PfRieske, and therefore, PfCIII as a whole, is essential for asexual blood stage parasite survival, in line with previous observations. We further found that depletion of PfRieske results in gametocyte maturation defects. These phenotypes are linked to defects in mitochondrial functions upon PfRieske depletion, including increased sensitivity to mETC inhibitors in asexual stages and decreased cristae abundance alongside abnormal mitochondrial morphology in gametocytes. This is the first study that explores the direct role of the PfCIII in gametogenesis via genetic disruption, paving the way for a better understanding of the role of mETC in the complex life cycle of these important parasites and providing further support for the focus of antimalarial drug development on this pathway.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11394760PMC
http://dx.doi.org/10.3390/ijms25179239DOI Listing

Publication Analysis

Top Keywords

complex iii
12
metc complex
8
providing support
8
depletion pfrieske
8
mitochondrial
5
pfciii
5
mitochondrial complex
4
iii target
4
target atovaquone
4
atovaquone essential
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!