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Updated: Aug 21, 2026

Probing mRNA Kinetics in Space and Time in Escherichia coli using Two-Color Single-Molecule Fluorescence In Situ Hybridization
Published on: July 30, 2020
The Sm-like protein Hfq regulates polyadenylation dependent mRNA decay in Escherichia coli
Bijoy K Mohanty1, Valerie F Maples, Sidney R Kushner
1Department of Genetics, University of Georgia, Athens, GA 30602, USA.
Abstract:
In Escherichia coli, the post-transcriptional addition of poly(A) tails by poly(A) polymerase I (PAP I, pcnB) plays a significant role in cellular RNA metabolism. However, many important features of this system, including its regulation and the selection of polyadenylation sites, are still poorly understood. Here we show that the inactivation of Hfq (hfq), an abundant RNA-binding protein, leads to the reduction in the ability of PAP I to add poly(A) tails at the 3' termini of mRNAs containing Rho-independent transcription terminators even though PAP I protein levels remain unchanged. Those poly(A) tails that are synthesized in the absence of Hfq are shorter in length, even in the absence of polynucleotide phosphorylase (PNPase), RNase II and RNase E. In fact, the biosynthetic activity of PNPase in the hfq single mutant is enhanced and it becomes the primary polynucleotide polymerase, adding heteropolymeric tails almost exclusively to 3' truncated mRNAs. Surprisingly, both PNPase and Hfq co-purified with His-tagged PAP I under native conditions indicating a potential complex among these proteins. Immunoprecipitation experiments using PNPase- and Hfq-specific antibodies confirmed the protein-protein interactions among PAP I, PNPase and Hfq. Analysis of mRNA half-lives in hfq, deltapcnB and hfq deltapcnB mutants suggests that Hfq and PAP I function in the same mRNA decay pathway.
Insights
The RNA-binding protein Hfq impacts poly(A) tail synthesis by poly(A) polymerase I (PAP I) in Escherichia coli. Hfq and PAP I likely work together in mRNA decay pathways.
Area of Science:
- Microbiology
- Molecular Biology
- RNA Metabolism
Background:
- Polyadenylation by poly(A) polymerase I (PAP I) is crucial for RNA metabolism in Escherichia coli.
- Regulation and polyadenylation site selection by PAP I are not fully understood.
Purpose of the Study:
- Investigate the role of the RNA-binding protein Hfq in PAP I-mediated polyadenylation.
- Elucidate the relationship between Hfq, PAP I, and other RNA processing enzymes.
Main Methods:
- Gene inactivation (hfq, pcnB) and analysis of poly(A) tail synthesis.
- Protein purification and co-immunoprecipitation to assess protein interactions.
- mRNA half-life analysis in various mutant strains.
Main Results:
- Hfq inactivation reduces PAP I's ability to add poly(A) tails to specific mRNAs, without altering PAP I levels.
- Poly(A) tails are shorter in hfq mutants, even without other nucleases.
- PNPase activity is enhanced in hfq mutants, becoming the primary polymerase.
- Hfq, PAP I, and PNPase interact physically, suggesting a complex.
Conclusions:
- Hfq is essential for efficient PAP I polyadenylation of certain mRNAs.
- Hfq and PAP I likely collaborate within the same mRNA decay pathway.
- PNPase plays a significant role in polyadenylation in the absence of Hfq.
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