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Isolation of F1-ATPase from the Parasitic Protist Trypanosoma brucei
Published on: January 22, 2019
Vacuolar ATPase depletion affects mitochondrial ATPase function, kinetoplast dependency, and drug sensitivity in
Nicola Baker1, Graham Hamilton2, Jonathan M Wilkes2
1Division of Biological Chemistry and Drug Discovery, College of Life Sciences, University of Dundee, Dundee DD1 5EH, United Kingdom;
Abstract:
Kinetoplastid parasites cause lethal diseases in humans and animals. The kinetoplast itself contains the mitochondrial genome, comprising a huge, complex DNA network that is also an important drug target. Isometamidium, for example, is a key veterinary drug that accumulates in the kinetoplast in African trypanosomes. Kinetoplast independence and isometamidium resistance are observed where certain mutations in the F1-γ-subunit of the two-sector F1Fo-ATP synthase allow for Fo-independent generation of a mitochondrial membrane potential. To further explore kinetoplast biology and drug resistance, we screened a genome-scale RNA interference library in African trypanosomes for isometamidium resistance mechanisms. Our screen identified 14 V-ATPase subunits and all 4 adaptin-3 subunits, implicating acidic compartment defects in resistance; V-ATPase acidifies lysosomes and related organelles, whereas adaptin-3 is responsible for trafficking among these organelles. Independent strains with depleted V-ATPase or adaptin-3 subunits were isometamidium resistant, and chemical inhibition of the V-ATPase phenocopied this effect. While drug accumulation in the kinetoplast continued after V-ATPase subunit depletion, acriflavine-induced kinetoplast loss was specifically tolerated in these cells and in cells depleted for adaptin-3 or endoplasmic reticulum membrane complex subunits, also identified in our screen. Consistent with kinetoplast dispensability, V-ATPase defective cells were oligomycin resistant, suggesting ATP synthase uncoupling and bypass of the normal Fo-A6-subunit requirement; this subunit is the only kinetoplast-encoded product ultimately required for viability in bloodstream-form trypanosomes. Thus, we describe 30 genes and 3 protein complexes associated with kinetoplast-dependent growth. Mutations affecting these genes could explain natural cases of dyskinetoplasty and multidrug resistance. Our results also reveal potentially conserved communication between the compartmentalized two-sector rotary ATPases.
Insights
African trypanosomes develop resistance to the drug isometamidium by altering acidic compartments. This study identifies new genes and protein complexes linked to kinetoplast function and drug resistance in these parasites.
Area of Science:
- Parasitology
- Molecular Biology
- Drug Discovery
Background:
- Kinetoplastid parasites cause severe diseases.
- The kinetoplast houses the mitochondrial genome and is a drug target.
- Isometamidium is a veterinary drug targeting African trypanosomes.
Purpose of the Study:
- Investigate mechanisms of isometamidium resistance in African trypanosomes.
- Explore kinetoplast biology and drug resistance pathways.
- Identify genes and protein complexes involved in kinetoplast function.
Main Methods:
- Genome-scale RNA interference screening in African trypanosomes.
- Assessing isometamidium resistance in depleted strains.
- Chemical inhibition of V-ATPase.
- Analyzing acriflavine-induced kinetoplast loss.
Main Results:
- Screening identified V-ATPase and adaptin-3 subunits, implicating acidic compartment defects in resistance.
- Depletion of V-ATPase or adaptin-3 conferred isometamidium resistance.
- Cells with V-ATPase or adaptin-3 defects tolerated acriflavine-induced kinetoplast loss.
- 30 genes and 3 protein complexes were associated with kinetoplast-dependent growth.
Conclusions:
- Acidic compartment defects are linked to isometamidium resistance in African trypanosomes.
- Mutations in identified genes may explain natural drug resistance and dyskinetoplasty.
- The study reveals potential communication between rotary ATPases.
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