bioRxiv Science⌕ Search

Biology subjects

Trinquier, A.

Publications and source records attributed to Trinquier, A..

2 recordsLinked to original sources

Identification of a new substrate for the ribosome associated endoribonuclease Rae1 reveals a link to the B. subtilis response and sensitivity to chloramphenicol

Rae1 is a well-conserved endoribonuclease among Gram-positive bacteria, cyanobacteria and the chloroplasts of higher plants. We have previously shown that Rae1 cleaves the Bacillus subtilis yrzI operon mRNA in a translation-dependent manner, within a short open reading frame (ORF) called S1025, encoding a 17-amino acid (aa) peptide of unknown function. Here, we map a new Rae1 cleavage site in the bmrBCD operon mRNA encoding a multidrug transporter, within a previously unannotated 26-aa short ORF that we have named bmrX. Similar to S1025, Rae1 cleavage within bmrX is both translation- and reading frame-dependent. Both mRNAs were previously shown to be induced by the presence of the protein synthesis inhibitor chloramphenicol (Cm). Strikingly, a rae1 deletion strain shows greater resistance to Cm than the wild-type strain, while its over-expression leads to increased Cm sensitivity, suggesting a link to translation quality control. Consistent with this, we show that cleavage by Rae1 promotes ribosome rescue by the tmRNA. Globally, our data point to a role of Rae1 in mRNA surveillance by eliminating mRNAs that encounter problems with translation.

microbiology↗

Effect of tRNA maturase depletion on the levels and stabilities of ribosome assembly cofactor mRNAs in Bacillus subtilis

The impact of translation on mRNA stability can be varied, ranging from a protective effect of ribosomes that shield mRNA from ribonucleases (RNases), to preferentially exposing sites of RNase cleavage. These effects can change depending on whether ribosomes are actively moving along the mRNA or whether they are stalled at particular sequences, structures or awaiting charged tRNAs. We recently observed that depleting B. subtilis cells of its tRNA maturation enzymes RNase P or RNase Z, led to altered mRNA levels of a number of assembly factors involved in the biogenesis of the 30S ribosomal subunit. Here, we extend this study to other assembly factor mRNAs and identify multiple transcriptional and translational layers of regulation of the rimM operon mRNA that occur in response to the depletion of functional tRNAs. ImportanceThe passage of ribosomes across individual mRNAs during translation can have different effects on their degradation, ranging from a protective effect by shielding from ribonucleases, to in some cases, making the mRNA more vulnerable to RNase action. We recently showed that some mRNAs coding for proteins involved in ribosome assembly were highly sensitive to the availability of functional tRNA. Using strains depleted for the major tRNA processing enzymes RNase P and RNase Z, we expanded this observation to a wider set of mRNAs, including some unrelated to ribosome biogenesis. We characterize the impact of tRNA maturase depletion on the rimM operon mRNA and show it is highly complex, with multiple levels of transcriptional and post-transcriptional effects coming into play.

microbiology↗