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Molina-Sanchez, M. D.

Publications and source records attributed to Molina-Sanchez, M. D..

2 recordsLinked to original sources

A UG5 reverse transcriptase-nitrilase antiviral module confers phage immunity in the plant symbiont Sinorhizobium meliloti

Bacteriophages exert strong selective pressure on soil- and rhizosphere-associated bacteria, including plant-associated symbionts. Reverse transcriptase-associated defense systems of the UG family are widespread across bacterial lineages, yet their ecological roles remain largely undefined. Within this family, UG5 systems are distinguished by reverse transcriptases fused to or associated with a nitrilase domain. Here, we combine phylogenetic, metagenomic, and functional analyses to investigate the evolutionary context and antiviral activity of UG5-associated systems. Phylogenetic analysis of 728 nitrilase domains places UG5-associated nitrilases within a well-supported UG-related radiation encompassing the UG1, UG5, and UG6 families, with UG1 nested within a broader UG5 lineage. Metagenomic analysis further revealed UG5-associated reverse transcriptases in soil- and rhizosphere-derived metagenomes. Based on this observation, we characterized a UG5-large RT-associated system, here designated DRT11, encoded on the pSymA megaplasmid of Sinorhizobium meliloti RMO17, a nitrogen-fixing symbiont of Medicago sativa. Despite lacking the transmembrane protein typical of canonical UG5-large architectures, DRT11 confers protection against naturally occurring M. sativa rhizosphere phages with Podoviridae-like morphology. Phage infection assays reveal protection at low multiplicities of infection, consistent with an abortive-infection-like mechanism. Moreover, mutational analyses demonstrate that antiviral activity requires only the RT and its fused C-terminal nitrilase domain, establishing DRT11 as a minimal UG5-associated antiviral system.

microbiology↗

Spacer acquisition in type VI CRISPR-Cas systems associated with reverse transcriptase-Cas1 fusion proteins

In prokaryotes, CRISPR-Cas systems store memories of past infections in the form of spacers integrated into CRISPR arrays. When associated with type III CRISPR-Cas systems, Reverse transcriptase-Cas1 fusion proteins (RT-Cas1) enable these defense systems to acquire spacers from RNA sources. However, despite the specific targeting of RNA by the Cas13-containing type VI CRISPR-Cas systems, there is no evidence of RNA-origin spacer acquisition. Using computational analyses, we recently reported the association of RT-Cas1 fusion proteins with type VI-A systems. In this study, we found that RT-Cas1 fusion proteins were also associated with complete type VI-B systems in bacteria from gut metagenomes, constituting a variant system that harbors a linked CorA-encoding locus in addition to the CRISPR array and adaptation RT-Cas1/Cas2 module. By combining in vitro and in vivo experiments, we demonstrated that type VI RT-CRISPR systems are functional for spacer acquisition and CRISPR array processing, and that the associated RT enables spacer acquisition from RNA molecules, thus demonstrating that the system is capable of functioning independently of other in-trans systems. These findings highlight the importance of RTs in RNA-targeting CRISPR-Cas systems, suggesting a potential defense mechanism against RNA-based invaders in specific environments.

microbiology↗