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Casas-Ciniglio, A. A.

Publications and source records attributed to Casas-Ciniglio, A. A..

2 recordsLinked to original sources

Structural and genetic dissection of RNA-guided gene repression by TnpB-derived transcription factors

TnpB nucleases, the evolutionary progenitors of CRISPR-associated Cas12 enzymes, are transposon-encoded, RNA-guided endonucleases found throughout bacteria. Independent of the trajectory towards adaptive immunity, TnpB nucleases have also recurrently given rise to TnpB-like nuclease-dead repressors (TldRs), a family of programmable RNA-guided transcription factors, though the physiological roles of most TldR clades remain unclear. Recently, we identified a TldR clade associated with bacterial ABC transporter operons, but this clade has not been characterized in any native host, leaving the biological significance of its predicted regulatory function unknown. Here, we demonstrate direct in vivo repression of the oligopeptide permease (opp) binding protein OppA in Enterococcus faecalis, implicating TldR in shaping the substrate repertoire of bacterial peptide import machinery. Phylogenetic and comparative genomic analyses reveal that bacterial genomes typically encode multiple, structurally conserved but functionally diversified OppA paralogs, suggesting that TldR-mediated repression could enable selective tuning of transporter composition. To define the structural basis of this regulatory specificity, we used cryo-electron microscopy to capture an oppF-associated TldR in multiple functional states, revealing a conserved bilobed architecture and a TAM recognition mechanism inherited from TnpB ancestors. Together, these findings define the structural, genetic, and evolutionary basis of a widespread RNA-guided regulatory system domesticated from mobile genetic elements to tune peptide transport in bacteria.

microbiology↗

Temperate phages enhance host fitness via RNA-guided flagellar remodeling

Bacterial flagella drive motility and chemotaxis while also playing critical roles in host-pathogen interactions, as their oligomeric subunit, flagellin, is specifically recognized by the mammalian immune system and flagellotropic bacteriophages. We recently discovered a family of phage-encoded, RNA-guided transcription factors known as TldR that regulate flagellin expression. However, the biological significance for this regulation, particularly in the context of host fitness, remained unknown. By focusing on a human clinical Enterobacter isolate that encodes a Flagellin Remodeling prophage (FR{varphi}), here we show that FR{varphi} exploits the combined action of TldR and its flagellin isoform to dramatically alter the flagellar composition and phenotypic properties of its host. This transformation has striking biological consequences, enhancing bacterial motility and mammalian immune evasion, and structural studies by cryo-EM of host- and prophage-encoded filaments reveal distinct architectures underlying these physiological changes. Moreover, we find that FR{varphi} improves colonization in the murine gut, illustrating the beneficial effect of prophage-mediated flagellar remodeling in a host-associated environment. Remarkably, flagellin-regulating TldR homologs emerged multiple times independently, further highlighting the strong selective pressures that drove evolution of RNA-guided flagellin control. Collectively, our results reveal how RNA-guided transcription factors emerged in a parallel evolutionary path to CRISPR-Cas and were co-opted by phages to remodel the flagellar apparatus and enhance host fitness.

microbiology↗