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Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects

Genomic decay is a common feature of intracellular bacteria that have entered into symbiosis with plant sap-feeding insects. This study of the whitefly Bemisia tabaci and two bacteria (Portiera aleyrodidarum and Hamiltonella defensa) cohoused in each host cell investigated whether the decay of Porti...

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Autores principales: Luan, Jun-Bo, Chen, Wenbo, Hasegawa, Daniel K., Simmons, Alvin M., Wintermantel, William M., Ling, Kai-Shu, Fei, Zhangjun, Liu, Shu-Sheng, Douglas, Angela E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4607527/
https://www.ncbi.nlm.nih.gov/pubmed/26377567
http://dx.doi.org/10.1093/gbe/evv170
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author Luan, Jun-Bo
Chen, Wenbo
Hasegawa, Daniel K.
Simmons, Alvin M.
Wintermantel, William M.
Ling, Kai-Shu
Fei, Zhangjun
Liu, Shu-Sheng
Douglas, Angela E.
author_facet Luan, Jun-Bo
Chen, Wenbo
Hasegawa, Daniel K.
Simmons, Alvin M.
Wintermantel, William M.
Ling, Kai-Shu
Fei, Zhangjun
Liu, Shu-Sheng
Douglas, Angela E.
author_sort Luan, Jun-Bo
collection PubMed
description Genomic decay is a common feature of intracellular bacteria that have entered into symbiosis with plant sap-feeding insects. This study of the whitefly Bemisia tabaci and two bacteria (Portiera aleyrodidarum and Hamiltonella defensa) cohoused in each host cell investigated whether the decay of Portiera metabolism genes is complemented by host and Hamiltonella genes, and compared the metabolic traits of the whitefly symbiosis with other sap-feeding insects (aphids, psyllids, and mealybugs). Parallel genomic and transcriptomic analysis revealed that the host genome contributes multiple metabolic reactions that complement or duplicate Portiera function, and that Hamiltonella may contribute multiple cofactors and one essential amino acid, lysine. Homologs of the Bemisia metabolism genes of insect origin have also been implicated in essential amino acid synthesis in other sap-feeding insect hosts, indicative of parallel coevolution of shared metabolic pathways across multiple symbioses. Further metabolism genes coded in the Bemisia genome are of bacterial origin, but phylogenetically distinct from Portiera, Hamiltonella and horizontally transferred genes identified in other sap-feeding insects. Overall, 75% of the metabolism genes of bacterial origin are functionally unique to one symbiosis, indicating that the evolutionary history of metabolic integration in these symbioses is strongly contingent on the pattern of horizontally acquired genes. Our analysis, further, shows that bacteria with genomic decay enable host acquisition of complex metabolic pathways by multiple independent horizontal gene transfers from exogenous bacteria. Specifically, each horizontally acquired gene can function with other genes in the pathway coded by the symbiont, while facilitating the decay of the symbiont gene coding the same reaction.
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spelling pubmed-46075272015-10-19 Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects Luan, Jun-Bo Chen, Wenbo Hasegawa, Daniel K. Simmons, Alvin M. Wintermantel, William M. Ling, Kai-Shu Fei, Zhangjun Liu, Shu-Sheng Douglas, Angela E. Genome Biol Evol Research Article Genomic decay is a common feature of intracellular bacteria that have entered into symbiosis with plant sap-feeding insects. This study of the whitefly Bemisia tabaci and two bacteria (Portiera aleyrodidarum and Hamiltonella defensa) cohoused in each host cell investigated whether the decay of Portiera metabolism genes is complemented by host and Hamiltonella genes, and compared the metabolic traits of the whitefly symbiosis with other sap-feeding insects (aphids, psyllids, and mealybugs). Parallel genomic and transcriptomic analysis revealed that the host genome contributes multiple metabolic reactions that complement or duplicate Portiera function, and that Hamiltonella may contribute multiple cofactors and one essential amino acid, lysine. Homologs of the Bemisia metabolism genes of insect origin have also been implicated in essential amino acid synthesis in other sap-feeding insect hosts, indicative of parallel coevolution of shared metabolic pathways across multiple symbioses. Further metabolism genes coded in the Bemisia genome are of bacterial origin, but phylogenetically distinct from Portiera, Hamiltonella and horizontally transferred genes identified in other sap-feeding insects. Overall, 75% of the metabolism genes of bacterial origin are functionally unique to one symbiosis, indicating that the evolutionary history of metabolic integration in these symbioses is strongly contingent on the pattern of horizontally acquired genes. Our analysis, further, shows that bacteria with genomic decay enable host acquisition of complex metabolic pathways by multiple independent horizontal gene transfers from exogenous bacteria. Specifically, each horizontally acquired gene can function with other genes in the pathway coded by the symbiont, while facilitating the decay of the symbiont gene coding the same reaction. Oxford University Press 2015-09-15 /pmc/articles/PMC4607527/ /pubmed/26377567 http://dx.doi.org/10.1093/gbe/evv170 Text en © The Author(s) 2015. 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
Luan, Jun-Bo
Chen, Wenbo
Hasegawa, Daniel K.
Simmons, Alvin M.
Wintermantel, William M.
Ling, Kai-Shu
Fei, Zhangjun
Liu, Shu-Sheng
Douglas, Angela E.
Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects
title Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects
title_full Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects
title_fullStr Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects
title_full_unstemmed Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects
title_short Metabolic Coevolution in the Bacterial Symbiosis of Whiteflies and Related Plant Sap-Feeding Insects
title_sort metabolic coevolution in the bacterial symbiosis of whiteflies and related plant sap-feeding insects
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4607527/
https://www.ncbi.nlm.nih.gov/pubmed/26377567
http://dx.doi.org/10.1093/gbe/evv170
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