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Debacker, L.

Publications and source records attributed to Debacker, L..

2 recordsLinked to original sources

Pervasive translation of short open reading frames and de novo gene emergence in Arabidopsis

Ancestrally non-genic sequences are now widely recognized as potential reservoirs for the de novo emergence of new genes. Across clades, some de novo genes were proven to have substantial phenotypic effects, and to contribute to the emergence of novel biological functions. Yet, little is still known about the starting material from which de novo genes emerge, especially in plants. To fill this gap, we generated Ribosome Profiling data from Arabidopsis lyrata and characterized the evolution of translated regions genome-wide across the Arabidopsis genus. Synteny analysis revealed 163 actively translated regions in A. lyrata whose coding potential (Open Reading Frames, ORFs or Coding DNA sequences, CDSs) has emerged de novo within the Arabidopsis genus. Most of these de novo translated regions were species- and even accession-specific, indicating their transient nature, with patterns of polymorphism consistent with neutral evolution in natural populations. They were also significantly shorter and less expressed than conserved protein-coding genes, and their GC content increased with phylogenetic conservation. Twenty-one of them belonged to previously annotated CDSs, and are therefore promising putative de novo genes, while most were located in intergenic regions and are thus newly discovered. Our results demonstrate the abundance of translation events outside of conserved CDSs, and their role as starting material for the emergence of novel genes in plants. Significance statementA central open question in genome evolution is how novel protein-coding genes arise from noncoding nucleotide DNA sequences and eventually contribute to the stable repertoires of "canonical" genes. Here, we focused specifically on the early stages of this important evolutionary process, whereby previously non-coding intergenic nucleotide sequences eventually acquire open reading frames carrying signatures of active translation. This phenomenon has been crucially under-studied so far, especially in plants. By combining ribosome profiling data and a careful genome comparison strategy among closely related Arabidopsis species, our results demonstrate the pervasive translation and de novo origin of a large number of small intergenic ORFs and illustrate their role as starting material for the emergence of novel genes in plants. Key-words: de novo genes, Arabidopsis, pervasive translation, intergenic ORFs, ribosome profiling

genomics↗

The evolutionary history and functional specialization of microRNA genes in Arabidopsis halleri and A. lyrata

MicroRNAs (miRNAs) are a class of small non-coding RNAs that play important regulatory roles in plant genomes. While some miRNA genes are deeply conserved, the majority appear to be species-specific, raising the question of how they emerge and integrate into cellular regulatory networks. To better understand this, we first performed a detailed annotation of miRNA genes in the closely related plants Arabidopsis halleri and A. lyrata and evaluated their phylogenetic conservation across 87 plant species. We then characterized the process by which newly emerged miRNA genes progressively acquire the properties of "canonical" miRNA genes, in terms of size and stability of the hairpin precursor, loading of their cleavage products into Argonaute proteins, and potential to regulate downstream target genes. Nucleotide polymorphism was lower in the mature miRNA sequence than in the other parts of the hairpin (stem, terminal loop), and the regions of coding sequences targeted by miRNAs also had reduced diversity as compared to their neighboring regions along the genes. These patterns were less pronounced for recently emerged than for evolutionarily conserved miRNA genes, suggesting a weaker selective constraint on the most recent miRNA genes. Our results illustrate the rapid birth-and-death of miRNA genes in plant genomes, and provide a detailed picture of the evolutionary processes by which a small fraction of them eventually integrate into "core" biological processes.

evolutionary biology↗