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Functional desaturase fads1 (¿5) and fads2 (¿6) orthologues evolved before the origin of jawed vertebrates

Title
Functional desaturase fads1 (¿5) and fads2 (¿6) orthologues evolved before the origin of jawed vertebrates
Type
Article in International Scientific Journal
Year
2012
Authors
Filipe F C Castro
(Author)
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Monroig, O
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Leaver, MJ
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Wilson, J
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Cunha, I
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Tocher, DR
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Journal
Title: PLoS ONEImported from Authenticus Search for Journal Publications
Vol. 7 No. 4
ISSN: 1932-6203
Other information
Authenticus ID: P-008-4KG
Abstract (EN): Long-chain polyunsaturated fatty acids (LC-PUFAs) such as arachidonic (ARA), eicosapentaenoic (EPA) and docosahexaenoic (DHA) acids are essential components of biomembranes, particularly in neural tissues. Endogenous synthesis of ARA, EPA and DHA occurs from precursor dietary essential fatty acids such as linoleic and ¿-linolenic acid through elongation and ¿5 and ¿6 desaturations. With respect to desaturation activities some noteworthy differences have been noted in vertebrate classes. In mammals, the ¿5 activity is allocated to the Fads1 gene, while Fads2 is a ¿6 desaturase. In contrast, teleosts show distinct combinations of desaturase activities (e.g. bifunctional or separate ¿5 and ¿6 desaturases) apparently allocated to Fads2-type genes. To determine the timing of Fads1-¿5 and Fads2-¿6 evolution in vertebrates we used a combination of comparative and functional genomics with the analysis of key phylogenetic species. Our data show that Fads1 and Fads2 genes with ¿5 and ¿6 activities respectively, evolved before gnathostome radiation, since the catshark Scyliorhinus canicula has functional orthologues of both gene families. Consequently, the loss of Fads1 in teleosts is a secondary episode, while the existence of ¿5 activities in the same group most likely occurred through independent mutations into Fads2 type genes. Unexpectedly, we also establish that events of Fads1 gene expansion have taken place in birds and reptiles. Finally, a fourth Fads gene (Fads4) was found with an exclusive occurrence in mammalian genomes. Our findings enlighten the history of a crucially important gene family in vertebrate fatty acid metabolism and physiology and provide an explanation of how observed lineage-specific gene duplications, losses and diversifications might be linked to habitat-specific food web structures in different environments and over geological timescales. © 2012 Castro et al.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 9
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