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Biology subjects

Palmieri, A. I.

Publications and source records attributed to Palmieri, A. I..

2 recordsLinked to original sources

Exapted CRISPR-Cas12f homologs drive RNA-guided transcription

Bacterial transcription initiation is a tightly regulated process that canonically relies on sequence-specific promoter recognition by dedicated sigma ({sigma}) factors, leading to functional DNA engagement by RNA polymerase (RNAP)1. Although the seven {sigma} factors in E. coli have been extensively characterized2, Bacteroidetes species encode dozens of specialized, extracytoplasmic function {sigma} factors ({sigma}E) whose precise roles are unknown, pointing to additional layers of regulatory potential3. Here we uncover an unprecedented mechanism of RNA-guided gene activation involving the coordinated action of {sigma}E factor in complex with nuclease-dead Cas12f (dCas12f). We screened a large set of genetically-linked dCas12f and {sigma}E homologs in E. coli using RIP-seq and ChIP-seq experiments, revealing systems that exhibited robust guide RNA enrichment and DNA target binding with a minimal 5'-G target-adjacent motif (TAM). Recruitment of {sigma}E was dependent on dCas12f and guide RNA (gRNA), suggesting direct protein-protein interactions, and co-expression experiments demonstrated that the dCas12f-gRNA-{sigma}E ternary complex was competent for programmable recruitment of the RNAP holoenzyme. Remarkably, dCas12f-RNA-{sigma}E complexes drove potent gene expression in the absence of any requisite promoter motifs, with de novo transcription start sites defined exclusively by the relative distance from the dCas12f-mediated R-loop. Our findings highlight a new paradigm of RNA-guided transcription (RGT) that embodies natural features reminiscent of CRISPRa technology developed by humans4,5.

molecular biology↗

Structural basis of RNA-guided transcription by a dCas12f-σE-RNAP complex

RNA-guided proteins have emerged as critical transcriptional regulators in both natural and engineered biological systems by modulating RNA polymerase (RNAP) and its associated factors1-3. In bacteria, di-verse clades of repurposed TnpB and CRISPR-associated proteins repress gene expression by blocking transcription initiation or elongation, enabling non-canonical modes of regulatory control and adaptive immunity1,4,5. Intriguingly, a distinct class of nuclease-dead Cas12f homologs (dCas12f) instead activates gene expression through its association with unique extracytoplasmic function sigma factors ({sigma}E)6, though the molecular basis has remained elusive. Here we reveal a novel mode of RNA-guided transcription initiation by determining cryo-electron microscopy structures of the dCas12f-{sigma}E system from Flagellimonas taeanensis. We captured multiple conformational and compositional states, including the DNA-bound dCas12f-{sigma}E-RNAP holoenzyme complex, revealing how RNA-guided DNA binding leads to {sigma}E-RNAP recruitment and nascent mRNA synthesis at a precisely defined distance downstream of the R-loop. Rather than following the classical paradigm of {sigma}E-dependent promoter recognition, these studies show that recognition of the -35 element is largely supplanted by CRISPR-Cas targeting, while the melted -10 element is stabilized through unusual stacking interactions rather than insertion into the typical recognition pocket. Collectively, this work provides high-resolution insights into an unexpected mechanism of RNA-guided transcription, expanding our understanding of bacterial gene regulation and opening new avenues for pro-grammable transcriptional control.

biochemistry↗