Reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway

Genes and genomes can evolve through interchanging genetic material, this leading to reticular evolutionary patterns. However, the importance of reticulate evolution in eukary otes, and in particular of horizontal gene transfer (HGT), remains controversial. Given that metabolic pathways with taxon...

Descripción completa

Detalles Bibliográficos
Autores principales: Ocaña-Pallarès, Eduard, Najle, Sebastián R., Scazzocchio, Claudio, Ruiz-Trillo, Iñaki
Formato: publishedVersion
Lenguaje:Inglés
Publicado: Public Library of Science (PLOS) 2021
Materias:
Acceso en línea:http://hdl.handle.net/2133/20175
http://hdl.handle.net/2133/20175
Aporte de:
id I15-R121-2133-20175
record_format dspace
institution Universidad Nacional de Rosario
institution_str I-15
repository_str R-121
collection Repositorio Hipermedial de la Universidad Nacional de Rosario (UNR)
language Inglés
orig_language_str_mv eng
topic Eukaryota
Gene Transfer, Horizontal
Nitrate Assimilation
Computational Biology
Opisthokonta
Stramenopiles
spellingShingle Eukaryota
Gene Transfer, Horizontal
Nitrate Assimilation
Computational Biology
Opisthokonta
Stramenopiles
Ocaña-Pallarès, Eduard
Najle, Sebastián R.
Scazzocchio, Claudio
Ruiz-Trillo, Iñaki
Reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway
topic_facet Eukaryota
Gene Transfer, Horizontal
Nitrate Assimilation
Computational Biology
Opisthokonta
Stramenopiles
description Genes and genomes can evolve through interchanging genetic material, this leading to reticular evolutionary patterns. However, the importance of reticulate evolution in eukary otes, and in particular of horizontal gene transfer (HGT), remains controversial. Given that metabolic pathways with taxonomically-patchy distributions can be indicative of HGT events, the eukaryotic nitrate assimilation pathway is an ideal object of investigation, as pre vious results revealed a patchy distribution and suggested that the nitrate assimilation clus ter of dikaryotic fungi (Opisthokonta) could have been originated and transferred from a lineage leading to Oomycota (Stramenopiles). We studied the origin and evolution of this pathway through both multi-scale bioinformatic and experimental approaches. Our taxon rich genomic screening shows that nitrate assimilation is present in more lineages than pre viously reported, although being restricted to autotrophs and osmotrophs. The phylogenies indicate a pervasive role of HGT, with three bacterial transfers contributing to the pathway origin, and at least seven well-supported transfers between eukaryotes. In particular, we propose a distinct and more complex HGT path between Opisthokonta and Stramenopiles than the one previously suggested, involving at least two transfers of a nitrate assimilation gene cluster. We also found that gene fusion played an essential role in this evolutionary his tory, underlying the origin of the canonical eukaryotic nitrate reductase, and of a chimeric nitrate reductase in Ichthyosporea (Opisthokonta). We show that the ichthyosporean path way, including this novel nitrate reductase, is physiologically active and transcriptionally co regulated, responding to different nitrogen sources; similarly to distant eukaryotes with inde pendent HGT-acquisitions of the pathway. This indicates that this pattern of transcriptional control evolved convergently in eukaryotes, favoring the proper integration of the pathway in the metabolic landscape. Our results highlight the importance of reticulate evolution in eukaryotes, by showing the crucial contribution of HGT and gene fusion in the evolutionary history of the nitrate assimilation pathway.
format publishedVersion
author Ocaña-Pallarès, Eduard
Najle, Sebastián R.
Scazzocchio, Claudio
Ruiz-Trillo, Iñaki
author_facet Ocaña-Pallarès, Eduard
Najle, Sebastián R.
Scazzocchio, Claudio
Ruiz-Trillo, Iñaki
author_sort Ocaña-Pallarès, Eduard
title Reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway
title_short Reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway
title_full Reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway
title_fullStr Reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway
title_full_unstemmed Reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway
title_sort reticulate evolution in eukaryotes: origin and evolution of the nitrate assimilation pathway
publisher Public Library of Science (PLOS)
publishDate 2021
url http://hdl.handle.net/2133/20175
http://hdl.handle.net/2133/20175
work_keys_str_mv AT ocanapallareseduard reticulateevolutionineukaryotesoriginandevolutionofthenitrateassimilationpathway
AT najlesebastianr reticulateevolutionineukaryotesoriginandevolutionofthenitrateassimilationpathway
AT scazzocchioclaudio reticulateevolutionineukaryotesoriginandevolutionofthenitrateassimilationpathway
AT ruiztrilloinaki reticulateevolutionineukaryotesoriginandevolutionofthenitrateassimilationpathway
bdutipo_str Repositorios
_version_ 1764820411352088579