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Dyda, F.

Publications and source records attributed to Dyda, F..

4 recordsLinked to original sources

Molecular basis for the transcriptional regulation of an epoxide-based virulence circuit in Pseudomonas aeruginosa

The opportunistic pathogen Pseudomonas aeruginosa infects cystic fibrosis (CF) patient airways and produces a virulence factor Cif that is associated with worse outcomes. Cif is an epoxide hydrolase that reduces cell-surface abundance of the cystic fibrosis transmembrane conductance regulator (CFTR) and sabotages pro-resolving signals. Its expression is regulated by a divergently transcribed TetR family transcriptional repressor. CifR represents the first reported epoxide-sensing bacterial transcriptional regulator, but neither its interaction with cognate operator sequences nor the mechanism of activation has been investigated. Using biochemical and structural approaches, we uncovered the molecular mechanisms controlling this complex virulence operon. We present here the first molecular structures of CifR alone and in complex with operator DNA, resolved in a single crystal lattice. Significant conformational changes between these two structures suggest how CifR regulates the expression of the virulence gene cif. Interactions between the N-terminal extension of CifR with the DNA minor groove of the operator play a significant role in the operator recognition of CifR. We also determined that cysteine residue Cys107 is critical for epoxide sensing and DNA release. These results offer new insights into the stereochemical regulation of an epoxide-based virulence circuit in a critically important clinical pathogen.

biochemistry↗

Toxic anti-phage defense proteins inhibited by intragenic antitoxin proteins

Recombination-promoting nuclease (Rpn) proteins are broadly distributed across bacterial phyla, yet their functions remain unclear. Here we report these proteins are new toxin-antitoxin systems, comprised of genes-within-genes, that combat phage infection. We show the small, highly variable Rpn C-terminal domains (RpnS), which are translated separately from the full-length proteins (RpnL), directly block the activities of the toxic full-length proteins. The crystal structure of RpnAS revealed a dimerization interface encompassing a helix that can have four amino acid repeats whose number varies widely among strains of the same species. Consistent with strong selection for the variation, we document plasmid-encoded RpnP2L protects Escherichia coli against certain phages. We propose many more intragenic-encoded proteins that serve regulatory roles remain to be discovered in all organisms. SignificanceHere we document the function of small genes-within-genes, showing they encode antitoxin proteins that block the functions of the toxic DNA endonuclease proteins encoded by the longer rpn genes. Intriguingly, a sequence present in both long and short protein shows extensive variation in the number of four amino acid repeats. Consistent with a strong selection for the variation, we provide evidence that the Rpn proteins represent a phage defense system.

microbiology↗

Transposase N-terminal phosphorylation and asymmetric transposon ends inhibit piggyBac transposition in mammalian cells

Mechanistic regulation of DNA transposon systems in mammalian cells remains poorly understood. Using modeling, biochemical, and cell-based assays, we sought to extend the recent cryoEM structural insight into the piggyBac transpososome to evaluate the previously unexplained role of the transposase N-terminus, the need for asymmetric transposon ends, and the complexity of transposase tetramer formation for transposition in mammalian cells. We found that N-terminal phosphorylation by casein kinase II inhibits transposase-DNA interaction and designed deletion of this phosphorylated domain releases inhibition thereby enhancing activity. We also found that the N-terminal domain promotes transposase dimerization in the absence of transposon DNA. N-terminal deletion enables transposition of symmetric transposon ends that was previously not achievable with piggyBac. The complex transposase tetramer needed for transposition of asymmetric transposon ends can be overcome via appending a second transposase C-terminal domain in combination with symmetric transposon ends overcoming the negative regulation by asymmetric ends. Our results demonstrate that N-terminal transposase phosphorylation and the requirement for asymmetric transposon ends both negatively regulate piggyBac transposons in mammalian cells. These novel insights into mechanism and structure of the piggyBac transposase expand its potential use for genomic applications.

molecular biology↗

Formation of the active Hermes transpososome is driven by asymmetric DNA binding of BED domains

The cut-and-paste Hermes DNA transposase stands out among the transposases that have been biochemically or structurally characterized so far. Many transposases function as dimers, but the Hermes transposase forms a tetramer of dimers to achieve its active form in vivo. Intriguingly, the transposition complex, or transpososome, relies on only one dimer to perform the enzymatic reactions necessary to the mobilization of its transposon. Our investigation combining biochemical and structural approaches shows that the Hermes octamer extensively interacts with its transposon left-end (LE) engaging the BED domains of three Hermes protomers belonging to three dimers. By contrast, the right-end (RE) is entirely deprived of such interaction inside the transpososome. Our work suggests that formation of the Hermes synaptic complex is sequential and relies on the considerable difference of affinity of the transposase towards its transposon ends. Thus, we propose that Hermes dimers multimerize to gather enough BED domains to find the LE among the abundant genomic DNA, facilitating the subsequent interaction with the RE, most likely solely based on recognition of its terminal inverted repeat.

biochemistry↗