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Carpousis, A. J.

Publications and source records attributed to Carpousis, A. J..

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Attachment of the RNA degradosome to the inner cytoplasmic membrane of Escherichia coli prevents wasteful degradation of rRNA intermediates in ribosome assembly.

BackgroundRNase E has crucial roles in the initiation of mRNA degradation, the processing of stable transcripts such as rRNA and tRNA, and the quality control of ribosomes. With over 20000 potential cleavage sites, RNase E is a low specificity endoribonuclease with the capacity to cleave multiple times nearly every transcript in the cell. A large noncatalytic region in the C-terminal half of RNase E is the scaffold for assembly of the multienzyme RNA degradosome. The components of the RNA degradosome cooperate in the degradation of mRNA to oligoribonucleotides, which are then degraded to nucleotides by oligoribonuclease. Over the past decade, compelling evidence has emerged that the RNA degradosome is attached to the phospholipid bilayer of the inner cytoplasmic membrane by the Membrane Targeting Sequence (MTS), which is a 15-residue amphipathic alpha-helix located in the noncatalytic region of RNase E. Systematic proteomic analyses have identified RNase E as an inner membrane protein that can only be solubilized by disrupting the phospholipid bilayer with detergent. Important components of the mRNA degradation machinery are therefore membrane-attached. The reason for this cellular localization has until now been a mystery. ResultsWe have constructed and characterized the rne{Delta}MTS strain expressing ncRNase E (nucleo-cytoplasmic-RNase E), which is a soluble variant that is uniformly distributed in the interior of the cell. In the mutant strain, there is a slowdown in the rates of growth and mRNA degradation. Surprisingly, we have identified aberrant 20S and 40S ribosomal particles in the rne{Delta}MTS strain that contain, respectively, precursors of 16S and 23S rRNA that have been nicked by ncRNase E. Although intact ribosomes are resistant to RNase E cleavage in vitro, protein-free rRNA is readily degraded by RNase E. Partially unfolded ribosomes are susceptible to nicking by RNase E in vitro. We have mapped rRNA cleavage sites cRACE. In vivo and in vitro rRNA cleavages map to the same sites. The sequence of the cleavage sites matches the RNase E consensus sequence previously determined in a transcriptomic analysis that did not include rRNA. Construction of additional mutant strains demonstrated in vivo that fragments of 16S and 23S rRNA as well as a precursor of 5S rRNA are degraded in a pathway involving 3 oligoadenylation and exonucleolytic digestion. A proteomic analysis showed that 17 small subunit proteins and 21 large subunit proteins are underrepresented in the 20S and 40S particles, respectively. ConclusionsRibosome biogenesis is a complex process involving co-transcriptional rRNA folding and r-protein binding in the nucleoid. Ribonucleoprotein intermediates are released from chromatin by RNase III cleavage. Maturation continues with the addition of late proteins resulting in the compact rRNA structures found in mature 30S and 50S ribosomal subunits. Considering our experimental results, we propose that the physical separation of rRNA transcription in the nucleoid from the RNA degradosome on the inner cytoplasmic membrane protects intermediates in ribosome assembly from degradation. A corollary is that ribosome quality control normally occurs when defective ribosomal particles interact with the membrane-attached RNA degradosome. The rRNA degradation pathway described here is the same as described previously for RNase E-dependent degradation of mRNA. Since the pathway for rRNA degradation is the same as the pathway for mRNA degradation, the slowdown of mRNA degradation in the rne{Delta}MTS strain could be due to competition by rRNA degradation. Since growth rate is limited by ribosome synthesis rate, the slow growth of the rne{Delta}MTS strain is likely due to wasteful degradation of a proportion of newly synthesized rRNA. If r-proteins released by rRNA degradation are not recycled, then this would be an additional burden on cell growth. Avoiding a futile cycle in which rRNA intermediates in ribosome assembly are degraded likely explains why localization of RNase E homologues to the inner cytoplasmic membrane is conserved throughout the {beta}- and {gamma}-Proteobacteria. ImportanceIn E. coli, transcription in the nucleoid, translation in the cytoplasm and initiation of mRNA degradation on the inner cytoplasmic membrane are physically separated. Despite the lack of internal membranes, this separation can be viewed as a compartmentalization of the bacterial cell. Our work shows that the inner membrane localization of the RNA degradosome restricts access of RNase E to intermediates in ribosome assembly. Thus, as in the eukaryotic cell, the architecture of the bacterial cell has an important role in the organization of cellular processes such as ribosome biogenesis, ribosome quality control, and mRNA degradation.

molecular biology↗

Ribosomal RNA degradation induced by the bacterial RNA polymerase inhibitor rifampicin.

Rifampicin, a broad-spectrum antibiotic, inhibits bacterial RNA polymerase. Here we show that rifampicin treatment of Escherichia coli results in a 50% decrease in cell size due to a terminal cell division. This decrease is a consequence of inhibition of transcription as evidenced by an isogenic rifampicin-resistant strain. There is also a 50% decrease in total RNA due mostly to a 90% decrease in 23S and 16S rRNA levels. Control experiments showed this decrease is not an artifact of our RNA purification protocol and therefore due to degradation in vivo. Since chromosome replication continues after rifampicin treatment, ribonucleotides from rRNA degradation could be recycled for DNA synthesis. Rifampicin-induced rRNA degradation occurs under different growth conditions and in different strain backgrounds. However, rRNA degradation is never complete thus permitting the re-initiation of growth after removal of rifampicin. The orderly shutdown of growth under conditions where the induction of stress genes is blocked by rifampicin is noteworthy. Inhibition of protein synthesis by chloramphenicol resulted in a partial decrease in 23S and 16S rRNA levels whereas kasugamycin treatment had no effect. Analysis of temperature-sensitive mutant strains implicate RNase E, PNPase and RNase R in rifampicin-induced rRNA degradation. We cannot distinguish between a direct role for RNase E in rRNA degradation versus an indirect role involving a slowdown of mRNA degradation. Since mRNA and rRNA appear to be degraded by the same ribonucleases, competition by rRNA is likely to result in slower mRNA degradation rates in the presence of rifampicin than under normal growth conditions.

molecular biology↗

The association between Hfq and RNase E in long-term nitrogen starved Escherichia coli

Under conditions of nutrient adversity, bacteria adjust metabolism to minimise cellular energy usage. This is often achieved by controlling the synthesis and degradation of RNA. In Escherichia coli, RNase E is the central enzyme involved in RNA degradation and serves as a scaffold for the assembly of the multiprotein complex known as the RNA degradosome. The activity of RNase E against specific mRNAs can also be regulated by the action of small RNAs (sRNA). In this case, the ubiquitous bacterial chaperone Hfq bound to sRNAs can interact with the RNA degradosome for the sRNA guided degradation of target RNAs. The RNA degradosome and Hfq have never been visualised together in live bacteria. We now show that in long-term nitrogen starved E. coli, both RNase E and Hfq co-localise in a single, large focus. This subcellular assembly, which we refer to as the H-body, forms by a liquid-liquid phase separation type mechanism and includes components of the RNA degradosome, namely, the helicase RhlB and the exoribonuclease polynucleotide phosphorylase. The results support the existence of an hitherto unreported subcellular compartmentalisation of a process(s) associated with RNA management in stressed bacteria.

microbiology↗