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Cooper, E. D.

Publications and source records attributed to Cooper, E. D..

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Global non-animal peroxidases analysis provides insights into the evolutionary study of this gene family in green lineage

The non-animal peroxidases belong to a superfamily of oxidoreductases that reduce the hydrogen peroxide and oxidize numerous substrates. Since their initial characterization in 1992, several advances have provided an understanding into the origin and evolutionary history of this family of proteins. Here, we report for the first time an exhaustive evolutionary analysis of non-animal peroxidases using integrated in silico and biochemical strategies. Thanks to the availability of numerous genomic sequences from many species belonging to different kingdoms together with expert and exhaustive annotation of peroxidase sequences centralized in a dedicated database, we have deepened our understanding of the evolutionary process underlying non-animal peroxidases through phylogenetic reconstructions. We analysed the distribution of all non-animal peroxidases in more than 200 eukaryotic organisms in silico. First, we show that the presence or absence of non-animal peroxidases can be correlated with the presence or absence of certain organelles or with specific biological processes. Examining a wide range of organisms, we confirmed that ascorbate peroxidases (APx) and cytochromes c peroxidases (CcP) were detected respectively in chloroplast and mitochondria containing organisms. Plants, which contain both organelles, are an exception and contain only APxs without CcP. Class III peroxidases (CIII Prx) were only detected in plants and Class II peroxidases (CII Prx) in fungi related to wood decay and plant degradation. Moreover, we demonstrate that biochemical activities (APx, CcP and CIII Prx) assayed in protein extracts obtained from 30 different eukaryotic organisms strongly support the distribution of the sequences resulting from our in silico analysis. The biochemical results confirmed both the presence and classification of non-animal peroxidase encoding sequences.

evolutionary biology

Genes for ash tree resistance to an insect pest identified via comparative genomics

Genome-wide discovery of candidate genes for functional traits within a species typically involves the sequencing of large samples of phenotyped individuals1, or linkage analysis through multiple generations2. When a trait occurs repeatedly among phylogenetically independent lineages within a genus, a more efficient approach may be to identify genes via detection of amino acid residues shared by species possessing that trait3,4. Here, by taking this approach, we identify candidate loci in the genus Fraxinus (ash trees) for resistance to the emerald ash borer beetle (EAB; Agrilus planipennis), a pest species that appears innocuous to otherwise healthy ash in its native East Asian range5 but is highly destructive in North America6 and poses a threat to ash trees in Europe7. Assembling whole genome sequences for 24 diploid species and subspecies of ash, and estimating resistance to EAB for 26 taxa from egg bioassays, we find 53 genes containing amino acid variants shared between two or more independent Fraxinus lineages with EAB-resistant species, that are unlikely to be due to chance or undetected paralogy. Of these, seven genes have putative roles relating to the phenylpropanoid biosynthesis pathway and 17 are potentially connected to herbivore recognition, defence signalling or programmed cell death. We also find that possible loss-of-function mutations among our 53 candidate genes are more frequent in susceptible species, than in resistant ones. Patterns of polymorphism for the EAB-associated amino acid variants in ash trees representing different European populations suggest that selection may be able to enhance their resistance to EAB.

evolutionary biology