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Biology subjects

Butterill, P. T.

Publications and source records attributed to Butterill, P. T..

2 recordsLinked to original sources

Interconnections with and within the trypanosomal respiratory chain revealed by complexome profiling

Proteins are frequently integrated into multicomponent complexes that execute the elaborate processes supporting life. Thus, a protein's function can only be defined by the company it keeps within a complex. Proteomes provide informative protein inventories but lack information about protein quaternary structures. Complexome profiling (CP) has been transformative in capturing the comprehensive population structure of complexes at a given moment within a cell. We have employed CP to chart the multiprotein complex landscape of two life cycle stages of Trypanosoma brucei. These data have allowed the observation of previously hidden interactions with and within the mitochondrial respiratory chain. We have found (1) an exceptional case of a SLC25 solute transporter that interacts with NADH dehydrogenase, (2) two ATP synthase subunit g paralogs that are intriguingly excluded from the enzyme's dimers, and (3) refined the known composition of ubiquinol:cytochrome c oxidoreductase by addition of missing subunits and removing an incorrectly assigned subunit, which more likely acts to insert the iron-sulfur co-factor into the complex. Further investigation into ubiquinol:cytochrome c oxidoreductase assembly revealed crosstalk between incorporation of its nuclear subunits with mitochondrial translation, possibly facilitating a hitherto unknown quality control mechanism. These discoveries demonstrate the power of our CP data for generation and testing of hypotheses about the mitochondrial and other organellar multiprotein complexes of T. brucei, a protist of medical and evolutionary importance.

cell biology↗

Spatial turnover amplifies with trophic level in hyperdiverse food webs

One of the most intuitive ideas in ecology is that diversity at lower trophic levels in food webs provides niches to support diversity at higher trophic levels. This accumulation of diversity can be limited by survival of species in the landscape, but revealing these limits has been challenging. We analyze spatial turnover in a hyperdiverse parasitoid-caterpillar-plant food web across 75,000 km2 of continuous lowland rainforest in Papua New Guinea. Species turnover across sites is higher in parasitoids than in their caterpillar hosts. Furthermore, turnover of interactions is also higher in parasitoid-caterpillar than caterpillar-plant networks. Spatial turnover thus amplifies upwards across trophic levels, forcing parasitoids to live closer to spatial persistence limits. Consequently, progressing rainforest fragmentation can especially endanger parasitoids.

ecology↗