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Biology subjects

Mount, H. O.

Publications and source records attributed to Mount, H. O..

2 recordsLinked to original sources

A random mutagenesis screen enriched for missense mutations in bacterial effector proteins.

To remodel their hosts and escape immune defenses, many pathogens rely on large arsenals of proteins (effectors) that are delivered to the host cell using dedicated translocation machinery. Effectors hold significant insight into the biology of both the pathogens that encode for them and the host pathways that they manipulate. One of the most powerful systems biology tools for studying effectors is the model organism, Saccharomyces cerevisiae. For many pathogens, the heterologous expression of effectors in yeast is growth inhibitory at a frequency much higher than housekeeping genes, an observation ascribed to targeting conserved eukaryotic proteins. Abrogation of yeast growth inhibition has been used to identify bacterial suppressors of effector activity, host targets, and functional residues and domains within effector proteins. We present here a yeast-based method for enriching for informative, in-frame, missense mutations in a pool of random effector mutants. We benchmark this approach against three effectors from Legionella pneumophila, an intracellular bacterial pathogen that injects a staggering >330 effectors into the host cell. For each protein, we show how in silico protein modeling (AlphaFold2) and missense- directed mutagenesis can be combined to reveal important structural features within effectors. We identify known active site residues within the metalloprotease RavK, highly conserved residues in SdbB, and previously unidentified functional motifs within the C-terminal domain of SdbA. We show that this domain has structural similarity with glycosyltransferases and exhibits in vitro activity consistent with this predicted function.

microbiology↗

The L. pneumophila effector PieF modulates mRNA stability through association with eukaryotic CCR4-NOT

The eukaryotic CCR4-NOT deadenylase complex is a highly conserved regulator of mRNA metabolism that influences the expression of the complete transcriptome, representing a prime target for a generalist bacterial pathogen. We show that a translocated bacterial effector protein, PieF (Lpg1972) of L. pneumophila Str. Philadelphia-1, interacts specifically with the CNOT7/8 nuclease module of CCR4-NOT, with a dissociation constant in the low nanomolar range. PieF inhibits the catalytic deadenylase subunit CNOT7 of the CCR4-NOT complex in a stoichiometric, dose-dependent manner in vitro. In transfected cells, PieF can silence reporter gene expression and reduce mRNA steady-state levels when artificially tethered. PieF demonstrates molecular similarities to another family of CNOT7-associated factors but demonstrates divergence concerning the interaction interface with CNOT7. In addition, we show that PieF overexpression changes the subcellular localization of CNOT7 and displaces the CNOT6/6L nucleases from CCR4-NOT. Finally, PieF expression phenocopies knockout of the CNOT7 ortholog in S. cerevisiae, resulting in 6-azauracil sensitivity. Collectively, this work suggests that L. pneumophila targets host mRNA stability and expression through a highly conserved host pathway not previously associated with Legionella pathogenesis.

microbiology↗