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Finazzo, M.

Publications and source records attributed to Finazzo, M..

2 recordsLinked to original sources

Sm-like protein Rof inhibits transcription termination factor Rho by binding site obstruction and conformational insulation

Transcription termination factor {rho} is a hexameric, RNA-dependent NTPase that can adopt active closed-ring and inactive open-ring conformations. The Sm-like protein Rof, a homolog of the RNA chaperone Hfq, inhibits {rho}-dependent termination in vivo but recapitulation of this activity in vitro has proven difficult and the precise mode of Rof action is presently unknown. Our electron microscopic structures of {rho}-Rof and {rho}-RNA complexes show that Rof undergoes pronounced conformational changes to bind {rho} at the protomer interfaces, undercutting {rho} conformational dynamics associated with ring closure and occluding extended primary RNA-binding sites that are also part of interfaces between {rho} and RNA polymerase. Consistently, Rof impedes {rho} ring closure, {rho}-RNA interactions, and {rho} association with transcription elongation complexes. Structure-guided mutagenesis coupled with functional assays confirmed that the observed {rho}-Rof interface is required for Rof-mediated inhibition of cell growth and {rho}-termination in vitro. Bioinformatic analyses revealed that Rof is restricted to Pseudomonadota and that the {rho}-Rof interface is conserved. Genomic contexts of rof differ between Enterobacteriaceae and Vibrionaceae, suggesting distinct modes of Rof regulation. We hypothesize that Rof and other cellular anti-terminators silence {rho} under diverse, but yet to be identified, stress conditions when unrestrained transcription termination by {rho} would be lethal.

biochemistry↗

Transcription termination factor {rho} polymerizes under stress

Bacterial RNA helicase {rho} is a genome sentinel that terminates synthesis of damaged and junk RNAs that are not translated by the ribosome. Co-transcriptional RNA surveillance by {rho} is essential for quality control of the transcriptome during optimal growth. However, it is unclear how bacteria protect their RNAs from overzealous {rho} during dormancy or stress, conditions common in natural habitats. Here we used cryogenic electron microscopy, biochemical, and genetic approaches to show that residue substitutions, ADP, or ppGpp promote hyper-oligomerization of Escherichia coli {rho}. Our results demonstrate that nucleotides bound at subunit interfaces control {rho} switching from active hexamers to inactive higher-order oligomers and extended filaments. Polymers formed upon exposure to antibiotics or ppGpp disassemble when stress is relieved, thereby directly linking termination activity to cellular physiology. Inactivation of {rho} through hyper-oligomerization is a regulatory strategy shared by RNA polymerases, ribosomes, and metabolic enzymes across all life.

microbiology↗