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Moreno-Rodriguez, A.

Publications and source records attributed to Moreno-Rodriguez, A..

2 recordsLinked to original sources

Discovery of a stress-response integrative and conjugative element from Sphingopyxis granuli TFA broadly conserved across Sphingomonadales and Rhizobiales

Horizontal gene transfer is a pivotal element in the evolution of microbes, enabling them to acquire novel genes and phenotypes. Integrative and conjugative elements (ICEs) are a type of mobile genetic element that can integrate into the host genome and propagate during chromosome replication and cell division. The induction of ICE gene expression results in the excision of the ICE gene, the production of conserved conjugation machinery, a Type IV Secretion System, and the potential for DNA transfer to appropriate receptors. It has been observed that ICEs frequently contain cargo genes that do not typically align with the ICE life cycle. These genes often result in the manifestation of phenotypes that are of particular interest. The bacterium Sphingopyxis granuli strain TFA is being studied for its ability to degrade the contaminant tetralin present in crude oils. Genomic analysis identified eight possible integrative mobile elements in S. granuli TFA. Most of these regions exhibited a distribution pattern that was restricted to the species, and they lacked some functional modules that are characteristic of a complete ICE. This finding suggests the presence of degenerate structures or limited mobilization capacity. However, only two of the detected elements exhibited the capacity to retain all the modules necessary for transfer, integration, and maintenance. These elements also contained a cargo module that included genes associated with lipid metabolic pathways and resistance mechanisms. Among them, ICE3 was distinguished as the sole complete functional ICE that was also present in other species. Transcriptomic analysis under multiple stress conditions revealed differential and consistent activation of ICE3 genes, demonstrating their direct contribution to bacterial resilience and suggesting a key adaptive role in response to adverse environmental changes.

bioinformatics↗

The defensome of Acinetobacter baumannii reveals two genome groups according to their innate defense systems and phage profile

Phages are guilty of killing daily almost half of bacterial cells, while bacteria have developed defense mechanisms that number in the dozens. Individual defense systems are gained and lost by genomes of the same species, depending on their fitness advantage. Thus, some genomes have a certain combination of defense systems, while other genomes act as a reservoir for the rest of the systems, thus constituting the so-called pan-immune system of the species. Here we have analyzed thousands of genomes of the bacterium Acinetobacter baumannii, an opportunistic pathogen of humans of great clinical concern, and we have found 81 different defense systems heterogeneously distributed. By analyzing how these systems combine, we have found that more than half of the genomes lack the universal DNA-methylating restriction-modification systems (R-M) and harbor an alternative innate SspBCDE system that performs a DNA phosphorothioate modification. In addition, the adaptive CRISPR-Cas systems could act synergistically to the R-M systems, based on their frequency of co-appearance. The presence of one or the other innate system could modulate the evolution of the genomes of this species, causing them to present a different profile of phages integrated into the bacterial genome. We have also observed that the presence of many defense systems is associated with the presence of a higher number of prophages, which could be due to the fact that the prophage carries the system, or that the bacterium would not need these systems in environments where the phage is absent.

microbiology↗