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The torpedo effect in Bacillus subtilis: RNase J1 resolves stalled transcription complexes.


ABSTRACT: RNase J1 is the major 5'-to-3' bacterial exoribonuclease. We demonstrate that in its absence, RNA polymerases (RNAPs) are redistributed on DNA, with increased RNAP occupancy on some genes without a parallel increase in transcriptional output. This suggests that some of these RNAPs represent stalled, non-transcribing complexes. We show that RNase J1 is able to resolve these stalled RNAP complexes by a "torpedo" mechanism, whereby RNase J1 degrades the nascent RNA and causes the transcription complex to disassemble upon collision with RNAP. A heterologous enzyme, yeast Xrn1 (5'-to-3' exonuclease), is less efficient than RNase J1 in resolving stalled Bacillus subtilis RNAP, suggesting that the effect is RNase-specific. Our results thus reveal a novel general principle, whereby an RNase can participate in genome-wide surveillance of stalled RNAP complexes, preventing potentially deleterious transcription-replication collisions.

SUBMITTER: Sikova M 

PROVIDER: S-EPMC6996504 | biostudies-literature | 2020 Feb

REPOSITORIES: biostudies-literature

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The torpedo effect in Bacillus subtilis: RNase J1 resolves stalled transcription complexes.

Šiková Michaela M   Wiedermannová Jana J   Převorovský Martin M   Barvík Ivan I   Sudzinová Petra P   Kofroňová Olga O   Benada Oldřich O   Šanderová Hana H   Condon Ciarán C   Krásný Libor L  

The EMBO journal 20191216 3


RNase J1 is the major 5'-to-3' bacterial exoribonuclease. We demonstrate that in its absence, RNA polymerases (RNAPs) are redistributed on DNA, with increased RNAP occupancy on some genes without a parallel increase in transcriptional output. This suggests that some of these RNAPs represent stalled, non-transcribing complexes. We show that RNase J1 is able to resolve these stalled RNAP complexes by a "torpedo" mechanism, whereby RNase J1 degrades the nascent RNA and causes the transcription comp  ...[more]

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