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Roberts, L. A.

Publications and source records attributed to Roberts, L. A..

3 recordsLinked to original sources

Mycobacterial RNase E cleaves with a distinct sequence preference and controls the degradation rates of most Mycolicibacterium smegmatis mRNAs

The mechanisms and regulation of RNA degradation in mycobacteria have been subject to increased interest following the identification of interplay between RNA metabolism and drug resistance. Mycobacteria encode multiple ribonucleases that are predicted to participate in mRNA degradation and/or processing of stable RNAs. RNase E is an endoribonuclease hypothesized to play a major role in mRNA degradation due to its essentiality in mycobacteria and its role in mRNA degradation in gram- negative bacteria. Here, we defined the impact of RNase E on mRNA degradation rates transcriptome- wide in the non-pathogenic model Mycolicibacterium smegmatis. RNase E played a rate-limiting role in the degradation of at least 89% of protein-coding genes, with leadered transcripts generally being more affected by RNase E repression than leaderless transcripts. There was an apparent global slowing of transcription in response to knockdown of RNase E, suggesting that M. smegmatis regulates transcription in responses to changes in mRNA degradation. This compensation was incomplete, as the abundance of most transcripts increased upon RNase E knockdown. We assessed the sequence preferences for cleavage by RNase E transcriptome-wide in both M. smegmatis and M. tuberculosis, and found a consistent bias for cleavage in C-rich regions. Purified RNase E had a clear preference for cleavage immediately upstream of cytidines, distinct from the sequence preferences of RNase E in gram-negatives. We furthermore report a high-resolution map of mRNA cleavage sites in M. tuberculosis, which occur primarily within the RNase E-preferred sequence context, confirming RNase E as a broad contributor to M. tuberculosis transcriptome structure.

molecular biology↗

Teaching the Skills and Concepts of Gene Expression Analysis during COVID-19

Teaching students how to conduct impactful gene expression studies within an authentic research paradigm typically relies on hands-on experience to develop skills at the bench, coupled with conceptual understanding of the experiments and their analyses within or outside of the lab setting. The unexpected shift of our gene expression laboratory course to a remote model provided the opportunity to assess how student learning of these skills and concepts would be affected in an entirely online environment. Our data suggest the reduced learning gains for skill-based techniques came with increased student learning of concepts and analysis, which may have aided stimulating student interest in gene expression studies.

scientific communication and education↗

The impact of leadered and leaderless gene structures on translation efficiency, transcript stability, and predicted transcription rates in Mycobacterium smegmatis

Regulation of gene expression is critical for the pathogen Mycobacterium tuberculosis to tolerate stressors encountered during infection, and for non-pathogenic mycobacteria such as Mycobacterium smegmatis to survive stressors encountered in the environment. Unlike better studied models, mycobacteria express [~]14% of their genes as leaderless transcripts. However, the impacts of leaderless transcript structures on mRNA half-life and translation efficiency in mycobacteria have not been directly tested. For leadered transcripts, the contributions of 5 UTRs to mRNA half-life and translation efficiency are similarly unknown. In both M. tuberculosis and M. smegmatis, the essential sigma factor, SigA, is encoded by an unstable transcript with a relatively short half-life. We hypothesized that sigAs long 5 UTR caused this instability. To test this, we constructed fluorescence reporters and then measured protein abundance, mRNA abundance, and mRNA half-life. From these data we also calculated relative transcription rates. We found that the sigA 5 UTR confers an increased transcription rate, a shorter mRNA half-life, and a decreased translation rate compared to a synthetic 5 UTR commonly used in mycobacterial expression plasmids. Leaderless transcripts produced less protein compared to any of the leadered transcripts. However, translation rates were similar to those of transcripts with the sigA 5 UTR, and the protein levels were instead explained by lower transcript abundance. A global comparison of M. tuberculosis mRNA and protein abundances failed to reveal systematic differences in protein:mRNA ratios for natural leadered and leaderless transcripts, consistent with the idea that variability in translation efficiency among mycobacterial genes is largely driven by factors other than leader status. The variability in mRNA half-life and predicted transcription rate among our constructs could not be explained by their different translation efficiencies, indicating that other factors are responsible for these properties and highlighting the myriad and complex roles played by 5 UTRs and other sequences downstream of transcription start sites.

microbiology↗