Cargando…
Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V)
Chaperonins promote protein folding and are known to play a role in the maintenance of cellular stability under stress conditions. The group I bacterial chaperonin complex comprises GroEL, that forms a barrel-like oligomer, and GroES that forms the lid. In most eubacteria the GroES/GroEL chaperonin...
Autores principales: | , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Oxford University Press
2017
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5381637/ https://www.ncbi.nlm.nih.gov/pubmed/28082600 http://dx.doi.org/10.1093/gbe/evw287 |
_version_ | 1782519970235678720 |
---|---|
author | Weissenbach, Julia Ilhan, Judith Bogumil, David Hülter, Nils Stucken, Karina Dagan, Tal |
author_facet | Weissenbach, Julia Ilhan, Judith Bogumil, David Hülter, Nils Stucken, Karina Dagan, Tal |
author_sort | Weissenbach, Julia |
collection | PubMed |
description | Chaperonins promote protein folding and are known to play a role in the maintenance of cellular stability under stress conditions. The group I bacterial chaperonin complex comprises GroEL, that forms a barrel-like oligomer, and GroES that forms the lid. In most eubacteria the GroES/GroEL chaperonin is encoded by a single-copy bicistronic operon, whereas in cyanobacteria up to three groES/groEL paralogs have been documented. Here we study the evolution and functional diversification of chaperonin paralogs in the heterocystous, multi-seriate filament forming cyanobacterium Chlorogloeopsis fritschii PCC 6912. The genome of C. fritschii encodes two groES/groEL operons (groESL1, groESL1.2) and a monocistronic groEL gene (groEL2). A phylogenetic reconstruction reveals that the groEL2 duplication is as ancient as cyanobacteria, whereas the groESL1.2 duplication occurred at the ancestor of heterocystous cyanobacteria. A comparison of the groEL paralogs transcription levels under different growth conditions shows that they have adapted distinct transcriptional regulation. Our results reveal that groEL1 and groEL1.2 are upregulated during diazotrophic conditions and the localization of their promoter activity points towards a role in heterocyst differentiation. Furthermore, protein–protein interaction assays suggest that paralogs encoded in the two operons assemble into hybrid complexes. The monocistronic encoded GroEL2 is not forming oligomers nor does it interact with the co-chaperonins. Interaction between GroES1.2 and GroEL1.2 could not be documented, suggesting that the groESL1.2 operon does not encode a functional chaperonin complex. Functional complementation experiments in Escherichia coli show that only GroES1/GroEL1 and GroES1/GroEL1.2 can substitute the native operon. In summary, the evolutionary consequences of chaperonin duplication in cyanobacteria include the retention of groESL1 as a housekeeping gene, subfunctionalization of groESL1.2 and neofunctionalization of the monocistronic groEL2 paralog. |
format | Online Article Text |
id | pubmed-5381637 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2017 |
publisher | Oxford University Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-53816372017-04-10 Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V) Weissenbach, Julia Ilhan, Judith Bogumil, David Hülter, Nils Stucken, Karina Dagan, Tal Genome Biol Evol Research Article Chaperonins promote protein folding and are known to play a role in the maintenance of cellular stability under stress conditions. The group I bacterial chaperonin complex comprises GroEL, that forms a barrel-like oligomer, and GroES that forms the lid. In most eubacteria the GroES/GroEL chaperonin is encoded by a single-copy bicistronic operon, whereas in cyanobacteria up to three groES/groEL paralogs have been documented. Here we study the evolution and functional diversification of chaperonin paralogs in the heterocystous, multi-seriate filament forming cyanobacterium Chlorogloeopsis fritschii PCC 6912. The genome of C. fritschii encodes two groES/groEL operons (groESL1, groESL1.2) and a monocistronic groEL gene (groEL2). A phylogenetic reconstruction reveals that the groEL2 duplication is as ancient as cyanobacteria, whereas the groESL1.2 duplication occurred at the ancestor of heterocystous cyanobacteria. A comparison of the groEL paralogs transcription levels under different growth conditions shows that they have adapted distinct transcriptional regulation. Our results reveal that groEL1 and groEL1.2 are upregulated during diazotrophic conditions and the localization of their promoter activity points towards a role in heterocyst differentiation. Furthermore, protein–protein interaction assays suggest that paralogs encoded in the two operons assemble into hybrid complexes. The monocistronic encoded GroEL2 is not forming oligomers nor does it interact with the co-chaperonins. Interaction between GroES1.2 and GroEL1.2 could not be documented, suggesting that the groESL1.2 operon does not encode a functional chaperonin complex. Functional complementation experiments in Escherichia coli show that only GroES1/GroEL1 and GroES1/GroEL1.2 can substitute the native operon. In summary, the evolutionary consequences of chaperonin duplication in cyanobacteria include the retention of groESL1 as a housekeeping gene, subfunctionalization of groESL1.2 and neofunctionalization of the monocistronic groEL2 paralog. Oxford University Press 2017-01-12 /pmc/articles/PMC5381637/ /pubmed/28082600 http://dx.doi.org/10.1093/gbe/evw287 Text en © The Author(s) 2017. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Research Article Weissenbach, Julia Ilhan, Judith Bogumil, David Hülter, Nils Stucken, Karina Dagan, Tal Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V) |
title | Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V) |
title_full | Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V) |
title_fullStr | Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V) |
title_full_unstemmed | Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V) |
title_short | Evolution of Chaperonin Gene Duplication in Stigonematalean Cyanobacteria (Subsection V) |
title_sort | evolution of chaperonin gene duplication in stigonematalean cyanobacteria (subsection v) |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5381637/ https://www.ncbi.nlm.nih.gov/pubmed/28082600 http://dx.doi.org/10.1093/gbe/evw287 |
work_keys_str_mv | AT weissenbachjulia evolutionofchaperoningeneduplicationinstigonemataleancyanobacteriasubsectionv AT ilhanjudith evolutionofchaperoningeneduplicationinstigonemataleancyanobacteriasubsectionv AT bogumildavid evolutionofchaperoningeneduplicationinstigonemataleancyanobacteriasubsectionv AT hulternils evolutionofchaperoningeneduplicationinstigonemataleancyanobacteriasubsectionv AT stuckenkarina evolutionofchaperoningeneduplicationinstigonemataleancyanobacteriasubsectionv AT dagantal evolutionofchaperoningeneduplicationinstigonemataleancyanobacteriasubsectionv |