Exploring sRNA-mediated gene silencing mechanisms using artificial small RNAs derived from a natural RNA scaffold in Escherichia coli.

["Park H", "Bak G", "Kim S", "Lee Y"]
Nucleic acids research 2013
Open on PubMed

An artificial small RNA (afsRNA) scaffold was designed from an Escherichia coli sRNA, SibC. Using the lacZ reporter system, the gene silencing effects of afsRNAs were examined to explore the sRNA-mediated gene-silencing mechanisms in E. coli. Substitution of the original target recognition sequence with a new sequence recognizing lacZ mRNA led to effective reduction of lacZ gene expression. Single-strandedness of the target recognition sequences in the scaffold was essential for effective gene silencing. The target recognition sequence was shortened to 10 nt without significant loss of gene silencing, although this minimal length was limited to a specific target mRNA sequence. In cases where afsRNAs had mismatched (forming internal loops) or unmatched (forming bulges) regions in the middle of the target recognition sequence, internal loop-forming afsRNAs were more effective in gene silencing than those that formed bulges. Unexpectedly, gene silencing by afsRNA was not decreased but increased on hfq disruption in E. coli, particularly when interactions between afsRNA and mRNA were weak, suggesting that Hfq is possibly involved in destabilization of the RNA-RNA duplex, rather than enhancement of base pairing.

9 Figures Extracted
Figure 1.
Figure 1. PMC
Secondary structure models of SibC(1–8::77–141) and afsRNA ARlacZ1. The sequences indicated with the light grey line in SibC(1–8::77–141) and ARlacZ1 ...
Figure 2.
Figure 2. PMC
Expression of ARlacZ1 and gene silencing effects. ( A ) Cells containing the ARlacZ1-expressing plasmid were treated with IPTG at increasing concentra...
Figure 3.
Figure 3. PMC
Effects of the location of target-recognition sequences on gene silencing. ( A ) The target-recognition sequences are presented below the lacZ mRNA ...
Figure 4.
Figure 4. PMC
Structural mapping of SibC(1–8::77–141) and ARlacZ1. ( A ) 32 P-labelled RNA (20 nM) was partially digested with S1 nuclease (0.4, 2 and 10 U), RNase...
Figure 5.
Figure 5. PMC
Minimal length of target-recognition sequences for gene silencing. ( A ) The target-recognition sequences. Gene silencing effects ( B ) and cellular l...
Figure 6.
Figure 6. PMC
Optimal location of the minimal sequence for gene silencing. ( A ) The target recognition sequences. Gene silencing effects ( B ) and cellular levels ...
Figure 7.
Figure 7. PMC
Scanning of TIR of mRNA with a 10 nt window of target-recognition sequence. ( A ) The target-recognition sequences. Gene silencing effects ( B ) and c...
Figure 8.
Figure 8. PMC
Effects of mismatched target-recognition sequences on gene silencing. ( A ) The target-recognition sequences are presented below the lacZ mRNA seque...
Figure 9.
Figure 9. PMC
Effects of Hfq on gene silencing by afsRNAs. ( A ) The target-recognition sequences. ( B ) The gene silencing effects of various afsRNAs were examined...