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Raney, K. D.

Publications and source records attributed to Raney, K. D..

5 recordsLinked to original sources

Template switching by coronavirus polymerase requires helicase activity and is stimulated by remdesivir and molnupiravir

Polymerase template switching is an essential mechanism in coronaviruses (CoVs) that enables both sub-genomic (sg) RNA synthesis and increases genomic diversity via RNA recombination. Despite its importance, the molecular mechanism of CoV polymerase template switching remains unclear. Using magnetic tweezers, we show that the CoV non-structural protein (nsp) 13-helicase drives polymerase template switching, followed by copy-back RNA synthesis. This activity requires nsp13-helicase ATPase activity and a duplex RNA downstream of the CoV polymerase. This novel function of nsp13-helicase is targeted by the nucleotide analogs remdesivir and molnupiravir, whose incorporation in the nascent strand increases CoV polymerase template switching probability, leading to defective RNA production. We propose a novel mechanism of action where incorporation of these analogs dramatically reduces full length genome copy number by stimulating polymerase template switching. Our study further demonstrates nsp13-helicases central role in CoV replication and how this enzyme function can be indirectly targeted by analogs.

microbiology↗

The coronavirus helicase synergizes with the viral RNA polymerase to enable rapid RNA synthesis through duplex RNA

Positive-sense (+) RNA viruses often encode helicases presumed to support replication. Their precise role remains unresolved though, especially in coronaviruses (CoV) where the helicase translocates in the opposite direction to the polymerase. Using high-throughput single-molecule magnetic tweezers, we show that the coronavirus helicase enhances RNA synthesis through duplex RNA by tenfold, forming a directional complex with the viral polymerase. Despite opposing polarity, the helicase coordinates elongation by engaging the non-template strand. A detailed kinetic model derived from large datasets reveals distinct dynamic states, including fast bursting and slow, backtracking-prone modes, which are governed by helicase engagement. These results uncover an active coupling mechanism that modulates replication dynamics and provide a mechanistic basis for continuous versus discontinuous RNA synthesis in coronaviruses. Our findings establish the viral helicase as a central regulator of RNA replication rather than a passive accessory enzyme.

biophysics↗

A post-assembly conformational change makes the SARS-CoV-2 polymerase elongation-competent

Coronaviruses (CoV) encode sixteen non-structural proteins (nsps), most of which form the replication-transcription complex (RTC). The RTC contains a core composed of one nsp12 RNA-dependent RNA polymerase (RdRp), two nsp8s and one nsp7. The core RTC recruits other nsps to synthesize all viral RNAs within the infected cell. While essential for viral replication, the mechanism by which the core RTC assembles into a processive polymerase remains poorly understood. We show that the core RTC preferentially assembles by first having nsp12-polymerase bind to the RNA template, followed by the subsequent association of nsp7 and nsp8. Once assembled on the RNA template, the core RTC requires hundreds of seconds to undergo a conformational change that enables processive elongation. In the absence of RNA, the (apo-)RTC requires several hours to adopt its elongation-competent conformation. We propose that this obligatory activation step facilitates the recruitment of additional nsps essential for efficient viral RNA synthesis and may represent a promising target for therapeutic interventions.

biophysics↗

Biomolecular condensates control and are defined by RNA-RNA interactions that arise in viral replication

Cells must limit RNA-RNA interactions to avoid irreversible RNA entanglement. Cells may prevent deleterious RNA-RNA interactions by genome organization to avoid complementarity however, RNA viruses generate long, perfectly complementary antisense RNA during replication. How do viral RNAs avoid irreversible entanglement? One possibility is RNA sequestration into biomolecular condensates. To test this, we reconstituted critical SARS-CoV-2 RNA-RNA interactions in Nucleocapsid condensates. We observed that RNAs with low propensity RNA-RNA interactions resulted in more round, liquid-like condensates while those with high sequence complementarity resulted in more heterogeneous networked morphology independent of RNA structure stability. Residue-resolution molecular simulations and direct sequencing-based detection of RNA-RNA interactions support that these properties arise from degree of trans RNA contacts. We propose that extensive RNA-RNA interactions in cell and viral replication are controlled via a combination of genome organization, timing, RNA sequence content, RNA production ratios, and emergent biomolecular condensate material properties. Graphical Abstract: SARS-CoV-2 replication cycle employs weak and strong RNA-RNA interactions O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=102 SRC="FIGDIR/small/630161v2_ufig1.gif" ALT="Figure 1000"> View larger version (32K): org.highwire.dtl.DTLVardef@1e75ad7org.highwire.dtl.DTLVardef@1fcda3aorg.highwire.dtl.DTLVardef@15b556eorg.highwire.dtl.DTLVardef@145b3b6_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

Autophosphorylation of the Tousled-like kinases TLK1 and TLK2 regulates recruitment to damaged chromatin via PCNA interaction

Tousled-like kinases 1 and 2 (TLK1 and 2) are cell cycle-regulated serine/threonine kinases that are involved in multiple biological processes. Mutation of TLK1 and 2 confer neurodegenerative diseases. Recent studies demonstrate that TLK1 and 2 are involved in DNA repair. However, there is no direct evidence that TLK1 and 2 function at DNA damage sites. Here, we show that both TLK1 and TLK2 are hyper-autophosphorylated at their N-termini, at least in part, mediated by their homo-or hetero-dimerization. We found that TLK1 and 2 hyper-autophosphorylation suppresses their recruitment to damaged chromatin. Furthermore, both TLK1 and 2 associate with PCNA specifically through their evolutionarily conserved non-canonical PCNA-interacting protein (PIP) box at the N-terminus, and mutation of the PIP-box abolishes their recruitment to DNA damage sites. Mechanistically, the TLK1 and 2 hyper-autophosphorylation masks the PIP-box and negatively regulates their recruitment to the DNA damage site. Overall, our study dissects the detailed genetic regulation of TLK1 and 2 at damaged chromatin, which provides important insights into their emerging roles in DNA repair.

genetics↗