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The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins

Insects have developed various adaptations to survive harsh winter conditions. Among freeze-intolerant species, some produce “antifreeze proteins” (AFPs) that bind to nascent ice crystals and inhibit further ice growth. Such is the case of the spruce budworm, Choristoneura fumiferana (Lepidoptera: T...

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Autores principales: Béliveau, Catherine, Gagné, Patrick, Picq, Sandrine, Vernygora, Oksana, Keeling, Christopher I, Pinkney, Kristine, Doucet, Daniel, Wen, Fayuan, Spencer Johnston, J, Maaroufi, Halim, Boyle, Brian, Laroche, Jérôme, Dewar, Ken, Juretic, Nikoleta, Blackburn, Gwylim, Nisole, Audrey, Brunet, Bryan, Brandão, Marcelo, Lumley, Lisa, Duan, Jun, Quan, Guoxing, Lucarotti, Christopher J, Roe, Amanda D, Sperling, Felix A H, Levesque, Roger C, Cusson, Michel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9210311/
https://www.ncbi.nlm.nih.gov/pubmed/35668612
http://dx.doi.org/10.1093/gbe/evac087
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author Béliveau, Catherine
Gagné, Patrick
Picq, Sandrine
Vernygora, Oksana
Keeling, Christopher I
Pinkney, Kristine
Doucet, Daniel
Wen, Fayuan
Spencer Johnston, J
Maaroufi, Halim
Boyle, Brian
Laroche, Jérôme
Dewar, Ken
Juretic, Nikoleta
Blackburn, Gwylim
Nisole, Audrey
Brunet, Bryan
Brandão, Marcelo
Lumley, Lisa
Duan, Jun
Quan, Guoxing
Lucarotti, Christopher J
Roe, Amanda D
Sperling, Felix A H
Levesque, Roger C
Cusson, Michel
author_facet Béliveau, Catherine
Gagné, Patrick
Picq, Sandrine
Vernygora, Oksana
Keeling, Christopher I
Pinkney, Kristine
Doucet, Daniel
Wen, Fayuan
Spencer Johnston, J
Maaroufi, Halim
Boyle, Brian
Laroche, Jérôme
Dewar, Ken
Juretic, Nikoleta
Blackburn, Gwylim
Nisole, Audrey
Brunet, Bryan
Brandão, Marcelo
Lumley, Lisa
Duan, Jun
Quan, Guoxing
Lucarotti, Christopher J
Roe, Amanda D
Sperling, Felix A H
Levesque, Roger C
Cusson, Michel
author_sort Béliveau, Catherine
collection PubMed
description Insects have developed various adaptations to survive harsh winter conditions. Among freeze-intolerant species, some produce “antifreeze proteins” (AFPs) that bind to nascent ice crystals and inhibit further ice growth. Such is the case of the spruce budworm, Choristoneura fumiferana (Lepidoptera: Tortricidae), a destructive North American conifer pest that can withstand temperatures below −30°C. Despite the potential importance of AFPs in the adaptive diversification of Choristoneura, genomic tools to explore their origins have until now been limited. Here, we present a chromosome-scale genome assembly for C. fumiferana, which we used to conduct comparative genomic analyses aimed at reconstructing the evolutionary history of tortricid AFPs. The budworm genome features 16 genes homologous to previously reported C. fumiferana AFPs (CfAFPs), 15 of which map to a single region on chromosome 18. Fourteen of these were also detected in five congeneric species, indicating Choristoneura AFP diversification occurred before the speciation event that led to C. fumiferana. Although budworm AFPs were previously considered unique to the genus Choristoneura, a search for homologs targeting recently sequenced tortricid genomes identified seven CfAFP-like genes in the distantly related Notocelia uddmanniana. High structural similarity between Notocelia and Choristoneura AFPs suggests a common origin, despite the absence of homologs in three related tortricids. Interestingly, one Notocelia AFP formed the C-terminus of a “zonadhesin-like” protein, possibly representing the ancestral condition from which tortricid AFPs evolved. Future work should clarify the evolutionary path of AFPs between Notocelia and Choristoneura and assess the role of the “zonadhesin-like” protein as precursor of tortricid AFPs.
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spelling pubmed-92103112022-06-21 The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins Béliveau, Catherine Gagné, Patrick Picq, Sandrine Vernygora, Oksana Keeling, Christopher I Pinkney, Kristine Doucet, Daniel Wen, Fayuan Spencer Johnston, J Maaroufi, Halim Boyle, Brian Laroche, Jérôme Dewar, Ken Juretic, Nikoleta Blackburn, Gwylim Nisole, Audrey Brunet, Bryan Brandão, Marcelo Lumley, Lisa Duan, Jun Quan, Guoxing Lucarotti, Christopher J Roe, Amanda D Sperling, Felix A H Levesque, Roger C Cusson, Michel Genome Biol Evol Research Article Insects have developed various adaptations to survive harsh winter conditions. Among freeze-intolerant species, some produce “antifreeze proteins” (AFPs) that bind to nascent ice crystals and inhibit further ice growth. Such is the case of the spruce budworm, Choristoneura fumiferana (Lepidoptera: Tortricidae), a destructive North American conifer pest that can withstand temperatures below −30°C. Despite the potential importance of AFPs in the adaptive diversification of Choristoneura, genomic tools to explore their origins have until now been limited. Here, we present a chromosome-scale genome assembly for C. fumiferana, which we used to conduct comparative genomic analyses aimed at reconstructing the evolutionary history of tortricid AFPs. The budworm genome features 16 genes homologous to previously reported C. fumiferana AFPs (CfAFPs), 15 of which map to a single region on chromosome 18. Fourteen of these were also detected in five congeneric species, indicating Choristoneura AFP diversification occurred before the speciation event that led to C. fumiferana. Although budworm AFPs were previously considered unique to the genus Choristoneura, a search for homologs targeting recently sequenced tortricid genomes identified seven CfAFP-like genes in the distantly related Notocelia uddmanniana. High structural similarity between Notocelia and Choristoneura AFPs suggests a common origin, despite the absence of homologs in three related tortricids. Interestingly, one Notocelia AFP formed the C-terminus of a “zonadhesin-like” protein, possibly representing the ancestral condition from which tortricid AFPs evolved. Future work should clarify the evolutionary path of AFPs between Notocelia and Choristoneura and assess the role of the “zonadhesin-like” protein as precursor of tortricid AFPs. Oxford University Press 2022-06-07 /pmc/articles/PMC9210311/ /pubmed/35668612 http://dx.doi.org/10.1093/gbe/evac087 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of Society for Molecular Biology and Evolution. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://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
Béliveau, Catherine
Gagné, Patrick
Picq, Sandrine
Vernygora, Oksana
Keeling, Christopher I
Pinkney, Kristine
Doucet, Daniel
Wen, Fayuan
Spencer Johnston, J
Maaroufi, Halim
Boyle, Brian
Laroche, Jérôme
Dewar, Ken
Juretic, Nikoleta
Blackburn, Gwylim
Nisole, Audrey
Brunet, Bryan
Brandão, Marcelo
Lumley, Lisa
Duan, Jun
Quan, Guoxing
Lucarotti, Christopher J
Roe, Amanda D
Sperling, Felix A H
Levesque, Roger C
Cusson, Michel
The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins
title The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins
title_full The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins
title_fullStr The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins
title_full_unstemmed The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins
title_short The Spruce Budworm Genome: Reconstructing the Evolutionary History of Antifreeze Proteins
title_sort spruce budworm genome: reconstructing the evolutionary history of antifreeze proteins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9210311/
https://www.ncbi.nlm.nih.gov/pubmed/35668612
http://dx.doi.org/10.1093/gbe/evac087
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