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Katsuya-Gaviria, K.

Publications and source records attributed to Katsuya-Gaviria, K..

2 recordsLinked to original sources

Substrate induced activation in the conserved ribonuclease YicC

YicC is a conserved protein, recently discovered to have hydrolytic endoribonuclease activity, with a phylogenetic distribution implicating an ancestry deeper than that for most extant ribonucleases central to RNA metabolism. We present evidence that Escherichia coli YicC can cleave the small regulatory RNAs (sRNAs), RyhB and RprA, even when they are sequestered in otherwise protective complexes with the RNA chaperone Hfq. Nonetheless, YicC activity is markedly diminished when RyhB and other sRNAs are paired with cognate mRNA. Our cryoEM structures of catalytically inactive YicC in complex with RyhB and in the apo state reveal quaternary and tertiary structural switches, triggered by substrate engagement, that engulf and ratchet a stem loop element of the sRNA into an internal channel, where metal-assisted hydrolytic action occurs. Based on these findings, we propose that the enzyme favours specific stem-loop structures and may discriminate between pools of active, target-engaged sRNAs and those that are inactive. The mechanism for substrate-triggered conformational switching could represent an ancient strategy for selective RNA degradation.

molecular biology↗

Transcriptome-scale analysis uncovers conserved residues in the hydrophobic core of the bacterial RNA chaperone Hfq required for small regulatory RNA stability

The RNA-chaperone Hfq plays crucial roles in bacterial gene expression and is a major facilitator of small regulatory RNA (sRNA) action. The toroidal molecular architecture of the Hfq hexamer contains three well characterised surfaces which allow it to bind sRNAs to stabilise them and engage target transcripts. Hfq-interacting sRNAs are categorised into two classes based on the surfaces they use to bind Hfq. By characterising a systematic alanine mutant library of Hfq to identify amino acid residues that impact survival of Escherichia coli experiencing nitrogen starvation, we corroborated the important role of the three RNA binding surfaces for Hfq function. Surprisingly, we uncovered two conserved residues, V22 and G34, in the hydrophobic core of Hfq, to have a profound impact on Hfqs RNA binding activity in vivo. Transcriptome-scale analysis revealed that V22A and G34A Hfq mutants cause widespread destabilisation of both sRNA classes. However, the alanine substitutions at these residues had no measurable impact on protein stability, structure or equilibrium binding to target sRNAs in vitro. We propose that V22 and G34 are key to the cooperative function among the RNA-binding surfaces of Hfq, a mechanism especially critical under cellular conditions when there is an increased demand for Hfq.

microbiology↗