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Escrivani, D.

Publications and source records attributed to Escrivani, D..

2 recordsLinked to original sources

Origins and consequences of kinetoplast loss in trypanosomes

The kinetoplast is the large mitochondrial genome present in the eponymous Kinetoplastida. Trypanosoma brucei is an African trypanosome that can lose kinetoplast DNA (kDNA), however, when the nuclear-encoded gamma subunit of the mitochondrial F1FO-ATP synthase ({gamma}ATPase) is mutated. These mutations, analogous to a broken camshaft at the core of the ATP synthase rotary motor, are associated with multidrug resistance, and correlated with tsetse-fly independent mechanical transmission, and geographical spread of these parasites beyond Africa. Here we engineer kinetoplast-independent T. brucei to explore origins and consequences of kDNA loss. We used oligo targeting to edit the native{gamma} ATPase gene, and selection with the ATP synthase targeting drug oligomycin to enrich the desired mutants. Using this approach, we identified novel M282F, M282W, and M282Y mutants, and subsequently generated precision-edited strains expressing the previously described L262P or A273P mutants, or the novel M282F mutant. Heterozygous M282F mutants retained sensitivity to the kDNA-targeting drug acriflavine, while homozygous M282F mutants were acriflavine resistant and readily tolerated acriflavine-induced kDNA loss. Proteomics analysis of the homozygous mutant pre-kDNA-loss revealed highly specific depletion of ATP synthase-associated proteins, but not the F1 subunits. Complete kDNA-loss in these cells was associated with substantial depletion of kDNA-binding proteins and mitochondrial RNA-processing factors. In contrast, mitochondrial membrane-associated transporters were increased in abundance. We conclude that T. brucei cells with a homozygous{gamma} ATPase M282F mutation assemble a remodelled ATP synthase and readily tolerate kDNA loss, which is accompanied by substantial remodelling of the mitochondrial proteome Author summaryMutations in the gamma subunit of the mitochondrial ATP synthase in parasitic African trypanosomes can have major consequences. Specifically, the entire large and complex mitochondrial genome, the kinetoplast, is rendered dispensable, and the cells become resistant to important kinetoplast-targeting drugs. Veterinary parasites with these mutations have also spread outside Africa through simple mechanical transmission, either sexually or by biting flies or vampire bats. We precision-edited the gamma subunit to replicate previously described mutants and identified a novel mutant that readily tolerated kinetoplast loss. Using quantitative proteomics, we demonstrated highly specific depletion of ATP synthase-associated proteins pre-kinetoplast-loss. We then use genome sequencing to show that the kinetoplast could be completely lost by these cells and demonstrated that cells lacking mitochondrial nucleic acids displayed specific depletion of mitochondrial nucleic acid-binding proteins. Notably, several mitochondrial membrane-associated transporter complexes were increased in abundance. Thus, we establish a method to test precise {gamma}ATPase mutations and to identify new mutations associated with kinetoplast loss. We also show that trypanosomes with a dispensable kinetoplast specifically remodel the ATP synthase pre-kinetoplast-loss and substantially remodel the mitochondrial proteome post-kinetoplast-loss.

microbiology↗

A non-coding role for trypanosome VSG transcripts in allelic exclusion

Bloodstream-form African trypanosomes display mono-telomeric expression of a Variant Surface Glycoprotein (VSG) gene in an inter-chromosomally bridged transcription and splicing compartment, such that the dominant gene produces 10,000 times more transcript than excluded VSG genes. Antigenic variation, whereby parasites switch to express other VSGs, then underpins a robust host immune evasion strategy. Specific chromatin and RNA-associated factors are required to maintain VSG exclusion, but our understanding of the mechanisms involved remains incomplete. Here we show that the VSG transcript impacts allelic competition. We induced either specific translation blockade by recruiting MS2 coat protein to the active VSG 5-untranslated region, or VSG transcript depletion using RNA interference. Neither perturbation substantially compromised exclusion of native VSGs, as determined by transcriptomic analyses. In contrast, exclusion of a VSG transgene was compromised when the native transcript was transiently depleted. Notably, while both perturbations blocked cytokinesis, an additional round of DNA replication and mitosis was observed when the transcript, known to be stabilized by a bloodstream-form specific cyclin-like F-box protein, was translationally blocked. We conclude that the VSG transcript is a bi-functional coding and non-coding RNA that participates in allelic competition to establish exclusion. Significance statementAllelic exclusion mechanisms underpin immune evasion in parasites and olfaction in mammals but the mechanisms responsible remain mysterious. VSG exclusion factors have been identified in trypanosomes, while RNA has been implicated in olfactory receptor exclusion, and in var gene exclusion in the parasites that cause malaria. The current study demonstrates a role for RNA in VSG exclusion in trypanosomes.

molecular biology↗