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Murakami, K. S.

Publications and source records attributed to Murakami, K. S..

4 recordsLinked to original sources

Allosteric mechanism of transcription inhibition by NusG-dependent pausing of RNA polymerase

NusG is a transcription elongation factor that stimulates transcription pausing in Gram+ bacteriaincluding Bacillus subtilis by sequence-specific interaction with a conserved pause-inducing -11TTNTTT-6 motif found in the non-template DNA (ntDNA) strand within the transcription bubble. To reveal the structural basis of NusG-dependent pausing, we determined a cryo-EM structure of a paused transcription complex containing RNAP, NusG, and the TTNTTT motif in the ntDNA strand. Interaction of NusG with the ntDNA strand rearranges the transcription bubble by positioning three consecutive T residues in a cleft between NusG and the {beta}-lobe domain of RNAP. We revealed that the RNAP swivel module rotation (swiveling), which widens (swiveled state) and narrows (non-swiveled state) a cleft between NusG and the {beta}-lobe, is an intrinsic motion of RNAP and is directly linked to nucleotide binding at the active site and to trigger loop folding, an essential conformational change of all cellular RNAPs for the RNA synthesis reaction. We also determined cryo-EM structures of RNAP escaping from a paused transcription complex. These structures revealed the NusG-dependent pausing mechanism by which NusG-ntDNA interaction inhibits the transition from swiveled to non-swiveled states, thereby preventing trigger loop folding and RNA synthesis allosterically. This motion is also reduced by formation of an RNA hairpin within the RNA exit channel. Thus, the pause half-life can be modulated by the strength of the NusG-ntDNA interaction and/or the stability of the RNA hairpin. NusG residues that interact with the TTNTTT motif are widely conserved in bacteria, suggesting that NusG-dependent pausing of transcription is widespread. Significance statementTranscription pausing by RNA polymerase (RNAP) regulates gene expression where it controls co-transcriptional RNA folding, synchronizes transcription with translation, and provides time for binding of regulatory factors. Transcription elongation factor NusG stimulates pausing in Gram+ bacteriaincluding Bacillus subtilis and Mycobacterium tuberculosis by sequence-specific interaction with a conserved pause motif found in the non-template DNA (ntDNA) strand within the transcription bubble. Our structural and biochemical results revealed that part of the conserved TTNTTT motif in ntDNA is extruded and sandwiched between NusG and RNAP. Our results further demonstrate that an essential global conformational change in RNAP is directly linked to RNA synthesis, and that the NusG-ntDNA interaction pauses RNA synthesis by interfering with this conformational change.

molecular biology↗

SARS-CoV-2 polyprotein substrate regulates the stepwise Mpro cleavage reaction

Processing of polyproteins pp1a and pp1ab in Coronaviruses by main protease Mpro is a crucial event in virus replication and a promising target for antiviral drug development. Mpro recognizes multiple recognition sites within polyproteins in a defined order, but its mechanism remains enigmatic due to lack of structural information of the polyprotein substrate bound Mpro complex. Here, we present the cryo-EM structures of the SARS-CoV-2 Mpro in an apo-form and in complex with the nsp7-10 region of pp1a polyprotein. The structure shows that the interaction of Mpro with polyproteins is limited to the recognition site connecting nsp9 and nsp10 proteins without any tight association with the rest of polyprotein structure or sequence. Comparison between the apo-form and the polyprotein bound structures of Mpro highlights the flexible nature of active site region allowing the Mpro to accommodate various recognition sites connecting series of nsp proteins. These observations suggest that the role of Mpro for selecting a preferred cleavage site within the polyprotein is limited and underscore the structure, conformation and/or dynamics of polyprotein determining the sequential polyprotein cleavage by Mpro.

biophysics↗

Structural basis of RNA polymerase recycling by the Swi2/Snf2 ATPase RapA in Escherichia coli

After transcription termination, cellular RNA polymerases (RNAPs) are occasionally trapped on DNA, impounded in an undefined Post-Termination Complex (PTC), limiting free RNAP pool and making transcription inefficient. In Escherichia coli, a Swi2/Snf2 ATPase RapA is involved in countering such inefficiency through RNAP recycling. To understand its mechanism of RNAP recycling, we have determined the cryo-electron microscopy (cryo-EM) structures of two sets of E. coli RapA-RNAP complexes along with RNAP core enzyme and elongation complex (EC). The structures revealed the large conformational changes of RNAP and RapA upon their association implicated in the hindrance in PTC formation. Our study reveals that although RapA binds away from the DNA binding channel of RNAP, it can close the RNAP clamp allosterically thereby preventing its non-specific DNA binding. Together with DNA binding assays, we propose that RapA acts as a guardian of RNAP by which prevents non-specific DNA binding of RNAP without affecting the sigma factor binding to RNAP core enzyme, thereby enhancing RNAP recycling.

biochemistry↗

The mechanism of the nucleo-sugar selection by multi-subunit RNA polymerases

RNA polymerases (RNAPs) synthesize RNA from NTPs, whereas DNA polymerases synthesize DNA from 2’dNTPs. DNA polymerases select against NTPs by using steric gates to exclude the 2’ OH, but RNAPs have to employ alternative selection strategies. In single-subunit RNAPs, a conserved Tyr residue discriminates against 2’dNTPs, whereas selectivity mechanisms of multi-subunit RNAPs remain hitherto unknown. Here we show that a conserved Arg residue uses a two-pronged strategy to select against 2’dNTPs in multi-subunit RNAPs. The conserved Arg interacts with the 2’OH group to promote NTP binding, but selectively inhibits incorporation of 2’dNTPs by interacting with their 3’OH group to favor the catalytically-inert 2’-endo conformation of the deoxyribose moiety. This deformative action is an elegant example of an active selection against a substrate that is a substructure of the correct substrate. Our findings provide important insights into the evolutionary origins of biopolymers and the design of selective inhibitors of viral RNAPs.Competing Interest StatementThe authors have declared no competing interest.View Full Text

biochemistry↗