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Biomedical subjects

Peter C Fineran

Publications and source records attributed to Peter C Fineran.

2 recordsLinked to original sources

An expanded realm of anti-CRISPR-associated proteins and regulatory mechanisms.

Many bacteriophages encode anti-CRISPR (Acr) proteins that inhibit bacterial CRISPR-Cas immune systems. Rapid acr gene expression upon phage entry enables CRISPR-Cas neutralization but can impact phage fitness if unregulated. Therefore, Acr production is often controlled by distinct families of co-encoded anti-CRISPR-associated (Aca) proteins, which are usually helix-turn-helix (HTH) regulators that bind DNA within acr-aca operon promoters. Previously, we demonstrated that the Aca2 family additionally represses Acr production translationally by binding structured RNA motifs within the 5' untranslated region (UTR) of the acr-aca mRNA. Here, through systematic bioinformatic analyses, we provide evidence of structured RNA motifs in the 5' UTRs of operons encoding members of other Aca families and show that Aca1 also specifically binds its cognate RNA motif. Additionally, many Aca proteins are predicted to regulate not only their own but also adjacent operons with potential anti-defence genes. Indeed, we show that Aca14, newly identified in this study, represses two predicted anti-defence operons. Aca14 is a ribbon-helix-helix domain protein, revealing regulatory diversity beyond the canonical HTH Aca family members. Collectively, our findings expand our understanding of acr regulation in mobile genetic elements and reveal novel mechanisms by which phages fine-tune anti-defence gene expression.

5' Untranslated Regions

The early injected genomic region determines sensitivity to Type I restriction-modification defence against Autographiviridae phages.

Bacteriophages must evade bacterial defences to establish successful infections. Type I restriction-modification (RM) systems recognize specific DNA motifs and degrade unmethylated foreign DNA, restricting phage replication. In this study, we detected that Marinomonas mediterranea MMB-2 uses a Type I RM system (Mme2I) to protect against several new phages in the Murciavirus genus within the Autographiviridae family. Whole-genome sequencing and methylation analysis revealed a DNA sequence motif methylated in M. mediterranea MMB-2, which is also present in the phages. Phages lacking the motif within the leading, first injected, region of their genomes, either natural isolates or escape mutants of sensitive phages, successfully infect M. mediterranea MMB-2, despite the presence of the recognition motif elsewhere in their genomes. These results highlight the importance of considering RM motif locations when predicting avoidance of restriction sites as escape mechanisms from RM systems. Additionally, our findings indicate an important role for RM systems in specifically influencing the organization of the leading injected regions of phage genomes, which are highly variable and often encode diverse anti-defence systems.

Genome, Viral