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Biology subjects

Vernon, E. G.

Publications and source records attributed to Vernon, E. G..

3 recordsLinked to original sources

A nuclease-driven mechanism of post-replicative ssDNA gap suppression.

During replication stress, failure to resolve post-replicative ssDNA gaps generated by PRIMPOL-mediated replication repriming is linked with chemosensitivity, and in all models reported to date the nuclease MRE11 has been implicated as a gap-promoting factor. We have dissected ssDNA gap dynamics following nucleoside analogue-mediated nascent strand termination and report a novel mechanism via which loss of the MRE11 negative regulator MRN-Interacting Protein (MRNIP) leads to MRE11 exonuclease-dependent suppression of post-replicative ssDNA gaps. This process is driven by UBC13 and the B-family TLS polymerase REV3L, suggesting that in the absence of MRNIP, dysregulated MRE11 activity at chain termination sites licenses gap filling via template switching. In the absence of PRIMPOL-dependent repriming, MRNIP loss leads to paradoxical SMARCAL1, MRE11 and primosome-dependent ssDNA gaps, suggesting that nucleolytic digestion of reversed forks generates DNA intermediates that platform primase redundancy in the context of chain termination. We also highlight novel site-specific roles for the anti-resection factor 53BP1 in enabling primase redundancy via suppression of the nuclease EXO1, and in limiting the EXO1-dependent processing of post-replicative ssDNA gaps. Finally, we demonstrate that CDK-dependent MRNIP phosphorylation is required for MRNIP functionality in the regulation of ssDNA gaps and sensitivity to chain terminators. This work represents the first report of nuclease-driven post-replicative gap filling, illuminates an additional level of versatility in the replication stress response, and expands our understanding of the context-dependent links between nuclease regulation and chemoresistance.

cancer biology↗

Typhoid toxin of Salmonella enterica induces ISG15 response mediating host cell survival and bacterial dissemination

The typhoid toxin is a secreted virulence factor of typhoidal serovars of the bacterial pathogen Salmonella enterica implicated in typhoid fever and chronic infections. The toxin causes a DNA damage response in human cells, characterised by cell-cycle arrest and cellular distension, resulting in cellular senescence and increased bacterial burden. To better understand host responses to typhoid toxin, we performed a transcriptomic analysis of intoxicated host cells and found that the toxin induced expression of genes relating to the type-I interferon response, including the ubiquitin-like protein ISG15. ISG15 was upregulated in a STING-dependent manner, reduced bacterial burden, and was found to be critical to host cell survival in response to the typhoid toxin and purified interferon. This highlights ISG15 as an important component of the host cell defence to the typhoid toxin.

microbiology↗

IFI16 senses and protects stalled replication forks

Replication stress is a key driver of DNA damage and genome instability. Replication stress-induced fork remodelling generates a new DNA end that is vulnerable to the action of nucleases, and which is protected by a range of factors including the canonical tumour suppressors BRCA1 and BRCA2. Here we report that replication stress drives elevated production of cytokines and chemokines in the absence of DNA damage. The DNA sensor IFI16 binds nascent DNA at stalled replication forks and signals via the DNA sensing adaptor STING, to induce the activation of NF-{kappa}B and the production of pro-inflammatory cytokines in response to replication stress. IFI16 also acts directly at stalled replication forks to protect nascent DNA from degradation by the nucleases MRE11 and DNA2. Furthermore, IFI16 is required for the interferon-mediated rescue of fork protection in BRCA-deficient cells, highlighting the critical role of IFI16 in the cross-talk between innate immunity and fork protection during replication stress. HighlightsO_LIReplication stress induces an early innate immune response, which is dependent on the DNA sensing factors IFI16 and STING, but not cGAS C_LIO_LIIFI16 binds directly to nascent DNA at stalled replication forks C_LIO_LIIFI16 prevents nucleolytic degradation of reversed forks C_LIO_LIIFI16 is required for interferon-mediated fork protection in BRCA-deficient cells C_LI

cancer biology↗