TY - JOUR
T1 - An RNA Pyrophosphohydrolase Triggers 5'-Exonucleolytic Degradation of mRNA in Bacillus subtilis
AU - Richards, Jamie
AU - Liu, Quansheng
AU - Pellegrini, Olivier
AU - Celesnik, Helena
AU - Yao, Shiyi
AU - Bechhofer, David H.
AU - Condon, Ciarán
AU - Belasco, Joel G.
N1 - Funding Information:
We are grateful to Patrick Eichenberger for helpful advice. This research was supported by grants from the National Institutes of Health to J.G.B. (GM35769) and D.H.B. (GM48804) and from the CNRS (UPR 9073), Université Paris VII-Denis Diderot, and the Agence Nationale de la Recherche (subtilRNA2) to C.C.
PY - 2011/9/16
Y1 - 2011/9/16
N2 - In Escherichia coli, RNA degradation often begins with conversion of the 5'-terminal triphosphate to a monophosphate, creating a better substrate for internal cleavage by RNase E. Remarkably, no homolog of this key endonuclease is present in many bacterial species, such as Bacillus subtilis and various pathogens. Here, we report that the degradation of primary transcripts in B. subtilis can nevertheless be triggered by an analogous process to generate a short-lived, monophosphorylated intermediate. Like its E. coli counterpart, the B. subtilis RNA pyrophosphohydrolase that catalyzes this event is a Nudix protein that prefers unpaired 5' ends. However, in B. subtilis, this modification exposes transcripts to rapid 5' exonucleolytic degradation by RNase J, which is absent in E. coli but present in most bacteria lacking RNase E. This pathway, which closely resembles the mechanism by which deadenylated mRNA is degraded in eukaryotic cells, explains the stabilizing influence of 5'-terminal stem-loops in such bacteria.
AB - In Escherichia coli, RNA degradation often begins with conversion of the 5'-terminal triphosphate to a monophosphate, creating a better substrate for internal cleavage by RNase E. Remarkably, no homolog of this key endonuclease is present in many bacterial species, such as Bacillus subtilis and various pathogens. Here, we report that the degradation of primary transcripts in B. subtilis can nevertheless be triggered by an analogous process to generate a short-lived, monophosphorylated intermediate. Like its E. coli counterpart, the B. subtilis RNA pyrophosphohydrolase that catalyzes this event is a Nudix protein that prefers unpaired 5' ends. However, in B. subtilis, this modification exposes transcripts to rapid 5' exonucleolytic degradation by RNase J, which is absent in E. coli but present in most bacteria lacking RNase E. This pathway, which closely resembles the mechanism by which deadenylated mRNA is degraded in eukaryotic cells, explains the stabilizing influence of 5'-terminal stem-loops in such bacteria.
UR - https://www.scopus.com/pages/publications/80052988291
U2 - 10.1016/j.molcel.2011.07.023
DO - 10.1016/j.molcel.2011.07.023
M3 - Article
C2 - 21925382
AN - SCOPUS:80052988291
SN - 1097-2765
VL - 43
SP - 940
EP - 949
JO - Molecular Cell
JF - Molecular Cell
IS - 6
ER -