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Hunter, E. S.

Publications and source records attributed to Hunter, E. S..

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Metabolic contributions of an alphaproteobacterial endosymbiont in the apicomplexanCardiosporidium cionae

Apicomplexa is a diverse protistan phylum composed almost exclusively of metazoan-infecting parasites, including the causative agents of malaria, cryptosporidiosis, and toxoplasmosis. A single apicomplexan genus, Nephromyces, was described in 2010 as a mutualist partner to its tunicate host. Here we present genomic and transcriptomic data from the parasitic sister species to this mutualist, Cardiosporidium cionae, and its associated bacterial endosymbiont. Cardiosporidium cionae and Nephromyces both infect tunicate hosts, localize to similar organs within these hosts, and maintain bacterial endosymbionts. Though many other protists are known to harbor bacterial endosymbionts, these associations are completely unknown in Apicomplexa outside of the Nephromycidae clade. Our data indicate that a vertically transmitted -proteobacteria has been retained in each lineage since Nephromyces and Cardiosporidium diverged. This -proteobacterial endosymbiont has highly reduced metabolic capabilities, but contributes the essential amino acid lysine, and essential cofactor lipoic acid to C. cionae. This partnership likely reduces resource competition with the tunicate host. However, our data indicate that the contribution of the single -proteobacterial endosymbiont in C. cionae is minimal compared to the three taxa of endosymbionts present in the Nephromyces system, and is a potential explanation for the virulence disparity between these lineages.

evolutionary biology

Codependence in the Nephromyces species swarm depends on heterospecific bacterial endosymbionts

The phylum Apicomplexa encompasses 6000 ubiquitous animal parasites, including Plasmodium, the most deadly human parasite on Earth. Anciently parasitic lineages, like apicomplexans, lose core metabolic pathways over time, as they evolve less costly scavenging mechanisms. The recent description of a mutualistic apicomplexan, Nephromyces, from deep within this parasitic group, opened the possibility of an evolutionary innovation that allowed an escape from a parasitic lifestyle. Nuclear genome data from Nephromyces, as well as the three bacterial symbionts that live within this species complex, demonstrate that the bacteria within Nephromyces contribute essential cofactors and amino acids that have enabled Nephromyces to abandon a parasitic lifestyle. Among these, bacterial lipoic acid appears to be a key cofactor for the reduction of virulence in Nephromyces. However, whereas we use FISH microscopy to reveal that each individual Nephromyces harbors no more than one endosymbiont type, no single bacterial endosymbiont can account for all missing metabolites. Based on the unique habitat of Nephromyces, as well as genomic, culturing, and wild population data, we conclude that Nephromyces has evolved as an extraordinary clade of codependent species, unlike any previously described.

evolutionary biology