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Loria-Vinueza, B.

Publications and source records attributed to Loria-Vinueza, B..

2 recordsLinked to original sources

Pervasive co-option of prokaryotic adenine methyltransferases by eukaryotic retrotransposons

Cytosine DNA methylation is broadly associated with transposable element silencing across eukaryotes, whereas 6-methyladenine (6mA) in unicellular eukaryotes is linked to actively transcribed chromatin. How transposable elements adapt to these contrasting epigenetic environments remains largely unexplored. Here we identify widely distributed eukaryotic retrotransposons encoding prokaryotic-like DNA adenine methyltransferases (DAMs). Phylogenetic analyses indicate a single ancestral acquisition from prokaryotes followed by recurrent transfers between retrotransposon classes across diverse eukaryotes. DAM-carrying LTR elements are preferentially found in species encoding AMT1, the main eukaryotic 6mA methyltransferase, and show elevated 6mA levels relative to other LTR retrotransposons in multiple lineages, accompanied by increased transcription. We further identify retrotransposons combining adenine and cytosine methyltransferases with chromodomains, indicating the assembly of unexpectedly complex epigenetic toolkits within single retrotransposon units. These findings suggest that retrotransposons have repeatedly co-opted prokaryotic-like methyltransferases to exploit host 6mA-associated chromatin, highlighting adaptation to host epigenetic landscapes as a major driver of transposable element evolution.

genomics↗

Exploring symbiotic legume-rhizobia relationships across tropical species

O_LIThe nitrogen-fixing symbiosis with rhizobia significantly contributes to the successful establishment of legumes in tropical environments. Here, we explored the symbiotic interactions between legumes and rhizobia across 109 tropical species. C_LIO_LIWe evaluated the presence of root nodules in 72 genera spanning four Fabaceae subfamilies, encompassing 53% of the genera in Costa Rica and approximately 9.4% globally. Our analysis revealed root nodules in 78% of the species belonging to Caesalpinioideae (67%) and Papilionoideae (84%). Also, we formulated a predictive model for nodulation in legumes, with fine-root color and flower symmetry as the main predictor criteria. C_LIO_LINodulating taxa consistently presented higher N levels in tissues, thinner roots, and a pronounced phylogenetic influence on nodulation. We also identified the bacterial genera associated with all nodulating legumes. Caesalpinioideae formed symbiotic relationships with ten rhizobial genera, whereas Papilionoideae were associated with only four. Bradyrhizobium emerged as the predominant symbiont in nodules, while Rhizobium, Mesorhizobium, Agrobacterium, Paraburkholderia, and Cupriavidus exhibited a more restricted host range. Furthermore, genomic analysis suggests that 15 out of the 22 sequenced rhizobial strains may represent novel species. C_LIO_LIOur study enhances the understanding of the different dimensions that comprise legume-rhizobia interactions, incorporating a diverse array of previously unexamined tropical forest legume taxa. C_LI

plant biology↗