Evolution of a putative, host-derived endosymbiont division ring and symbiosis-induced proteome rearrangements in the trypanosomatid Angomonas deanei
Morales, J.; Ehret, G.; Poschmann, G.; Reinicke, T.; Kroeninger, L.; Zanini, D.; Wolters, R.; Kalyanaraman, D.; Krakovka, M.; Stuehler, K.; Nowack, E. C. M.
Show abstract
The transformation of endosymbiotic bacteria into genetically integrated organelles was central to eukaryote evolution. During organellogenesis, control over endosymbiont division, proteome composition, and physiology largely shifted from the endosymbiont to the host cell nucleus. However, to understand the order and timing of events underpinning organellogenesis novel model systems are required. The trypanosomatid Angomonas deanei contains a {beta}-proteobacterial endosymbiont that divides synchronously with the host1, contributes essential metabolites to host cell metabolism2-5, and transferred one bacterial gene [encoding an ornithine cyclodeaminase (OCD)] to the nucleus2. However, the molecular mechanisms mediating the intricate host/symbiont interactions are largely unexplored. Here we identified seven nucleus-encoded proteins by protein mass spectrometry that are targeted to the endosymbiont. Expression of fluorescent fusion proteins revealed recruitment of these proteins to specific sites within the endosymbiont including its cytoplasm and a ring-shaped structure surrounding its division site. This structure remarkably resembles in shape and predicted functions mitochondrial and plastid division machineries. The endosymbiotic gene transfer-derived OCD localizes to glycosomes instead of being retargeted to the endosymbiont. Hence, scrutiny of protein re-localization patterns that are induced by endosymbiosis, yielded profound insights into how an endosymbiotic relationship can stabilize and deepen over time far beyond the level of metabolite exchange.
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