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Skutel, M.

Publications and source records attributed to Skutel, M..

3 recordsLinked to original sources

OLD sentinel: an abortive tRNase surveys phage replication and DNA defects in RecBCD-compromised cells

OLD, an abortive immunity protein from prophage P2, consists of an ABC ATPase sensor and a TOPRIM nuclease effector -- a core architecture shared by a large protein family, including components of antiphage systems Gabija, PARIS, Septu, and Lamassu. OLD was originally identified for its lethality in recB-deficient cells and inhibition of bacteriophage {lambda} infection, but the mechanisms governing its activation have remained elusive. Here, we present the cryo-EM structure of an inactive OLD tetramer and show that destabilization into dimeric form opens the TOPRIM catalytic site, stimulating tRNA cleavage. This activity arrests translation, a phenotype rescued by phage-encoded tRNAs. We demonstrate that OLD activation is not strictly RecBCD-dependent: OLD binds aberrant DNA structures in recB-deficient cells, but activation during infection requires recognition of single-stranded DNA hairpins at the phage replication origin. Collectively, our findings reveal how host and phage DNA processing factors create a complex landscape controlling OLD-mediated immunity.

molecular biology↗

Molecular basis of foreign DNA recognition by BREX anti-phage immunity system

Anti-phage systems of the BREX (BacteRiophage EXclusion) superfamily rely on epigenetic DNA methylation to discriminate between the host and invading DNA, but their mechanism of protection remains enigmatic. We demonstrate that in Type I BREX systems, both defense and methylation are based on site-specific DNA recognition by the BrxX (PglX) methyltransferase and require the S-adenosyl methionine cofactor. We present a 2.2-[A] cryoEM structure of Escherichia coli BrxX bound to target dsDNA, which reveals the molecular details of DNA recognition by BREX and paves the way for rational engineering of BREX specificity. We show that BrxX alone does not support methylation, and BREX activity requires an assembly of a supramolecular BrxBCXZ immune complex. Finally, we present a cryoEM structure of BrxX bound to a phage-encoded inhibitor Ocr that sequesters an inactive dimeric form of BrxX. Together, these results allow us to propose a model of BREX-mediated DNA sensing and anti-phage defense.

molecular biology↗

Viral proteins activate PARIS-mediated tRNA degradation and viral tRNAs rescue infection

Viruses compete with each other for limited cellular resources, and some viruses deliver defense mechanisms that protect the host from competing genetic parasites. PARIS is a defense system, often encoded in viral genomes, that is composed of a 53 kDa ABC ATPase (AriA) and a 35 kDa TOPRIM nuclease (AriB). Here we show that AriA and AriB assemble into a 425 kDa supramolecular immune complex. We use cryo-EM to determine the structure of this complex which explains how six molecules of AriA assemble into a propeller-shaped scaffold that coordinates three subunits of AriB. ATP-dependent detection of foreign proteins triggers the release of AriB, which assembles into a homodimeric nuclease that blocks infection by cleaving the host tRNALys. Phage T5 subverts PARIS immunity through expression of a tRNALys variant that prevents PARIS-mediated cleavage, and thereby restores viral infection. Collectively, these data explain how AriA functions as an ATP-dependent sensor that detects viral proteins and activates the AriB toxin. PARIS is one of an emerging set of immune systems that form macromolecular complexes for the recognition of foreign proteins, rather than foreign nucleic acids.

biochemistry↗