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Dunn, S.

Publications and source records attributed to Dunn, S..

4 recordsLinked to original sources

Wiskott-Aldrich Syndrome Protein Regulates Nucleolar Organization and Function in Innate Immune Response

Wiskott-Aldrich syndrome (WAS) is a primary immunodeficiency disorder caused by the dysfunction of the WAS protein (WASP). Using an isogenic macrophage model derived from genome edited induced pluripotent stem cells we demonstrated that WASP functions in the nucleolus, which plays important roles in immune regulation. The absence of WASP resulted in smaller and misshapen nucleoli, decreased fibrillar center territory, and impaired ribosomal RNA (rRNA) transcription. The nucleolar and rRNA phenotypes were confirmed in WAS patient samples. Furthermore, WASP interacts with nucleolar proteins, including nucleophosmin 1 (NPM1) and fibrillarin (FBL). NPM1 deficiency is known to cause elevated cytokine expression following lipopolysaccharide (LPS) stimulation. Consistently, WASP deficient cells displayed lower levels of NPM1 and a heightened inflammatory cytokine response to LPS, which was rescued by overexpressing NPM1. Together, our research provides novel insights into the critical role of WASP in nucleolar function and the modulation of inflammatory cytokine production.

cell biology↗

Loss of type VI secretion systems in multi-drug resistant Escherichia coli clones

The repeated emergence of multi-drug resistant (MDR) Escherichia coli clones is a threat to public health globally. In recent work, drug resistant E. coli were shown to be capable of displacing commensal E. coli in the human gut. Given the rapid colonisation observed in travel studies, it is possible that the presence of a type VI secretion system (T6SS) may be responsible for the rapid competitive advantage of drug resistant E. coli clones. We employed large scale genomic approaches to investigate this hypothesis. First, we searched for T6SS genes across a curated dataset of over 20,000 genomes representing the full phylogenetic diversity of E. coli. This revealed large, non-phylogenetic variation in the presence of T6SS genes. No association was found between T6SS gene carriage and MDR lineages. However, multiple clades containing MDR clones have lost essential structural T6SS genes. We characterised the T6SS loci of ST410 and ST131 and identified specific recombination and insertion events responsible for the parallel loss of essential T6SS genes in two MDR clones. Data SummaryThe genome sequence data generated in this study is publicly available from NCBI under BioProject PRJNA943186, alongside a complete assembly in GenBank under accessions CP120633-CP120634. All other sequence data used in this paper has been taken from ENA with the appropriate accession numbers listed within the methods section. The E. coli genome data sets used in this work are from a previous publication, the details of which can be found in the corresponding supplementary data files 10.6084/m9.figshare.21360108 [1]. Impact StatementEscherichia coli is a globally significant pathogen that causes the majority of urinary tract infections. Treatment of these infections is exacerbated by increasing levels of drug resistance. Pandemic multi-drug resistant (MDR) clones, such as ST131-C2/H30Rx, contribute significantly to global disease burden. MDR E. coli clones are able to colonise the human gut and displace the resident commensal E. coli. It is important to understand how this process occurs to better understand why these pathogens are so successful. Type VI secretion systems may be one of the antagonistic systems employed by E. coli in this process. Our findings provide the first detailed characterisation of the T6SS loci in ST410 and ST131 and shed light on events in the evolutionary pathways of the prominent MDR pathogens ST410-B4/H42RxC and ST131-C2/H30Rx.

microbiology↗

RND pumps across the Acinetobacter genus; AdeIJK is the ancestral efflux system.

Acinetobacter are generally soil-dwelling organisms that can also cause serious human infections. A. baumannii is one of the most common causative agents of Acinetobacter infections and is extensively drug resistant. However, an additional 25 species within the genus have also been associated with infection. A. baumannii encodes 6 RND efflux pumps, the most clinically relevant class of efflux pumps for antibiotic export, however the distribution and types of RND efflux pumps across the genus is currently unknown. Sixty-three species making up the Acinetobacter genus were searched for RND systems within their genomes. We also developed a novel method using conserved RND residues to predict the total number of RND proteins including currently undescribed RND pump proteins. The total number of RND proteins differed both within a species and across the genus. Species associated with infection tended to encode more pumps. AdeIJK/AdeXYZ was found in all searched species of Acinetobacter, and through genomic, structural and phenotypic work we show that these genes are actually orthologues of the same system. This interpretation is further supported by structural analysis of the potential drug-binding determinants of the associated RND-transporters, which reveal their close similarity to each other, and distinctiveness from other RND-pumps in Acinetobacter, such as AdeB. Therefore, we conclude that AdeIJK is the fundamental RND system for species in the Acinetobacter genus. AdeIJK can export a broad range of antibiotics and provides crucial functions within the cell, for example lipid modulation of the cell membrane, therefore it is likely that all Acinetobacter require AdeIJK for survival and homeostasis. In contrast, additional RND systems, such as AdeABC and AdeFGH were only found in a subset of Acinetobacter, that are associated with infection. By understanding the roles and mechanisms of RND efflux systems in Acinetobacter, treatments for infections can avoid efflux-mediated resistance and improve patient outcomes. Impact statementEfflux pumps extrude antibiotics from within bacterial cells directly conferring antibiotic resistance and underpinning other mechanisms of resistance. By understanding the exact complement of efflux pumps and their roles across infection-causing organisms such as those within the Acinetobacter genus, it is possible to understand how cells become resistant to antibiotics and how this might be tackled. Efflux is an attractive target for inhibition to increase susceptibility to existing drugs and therefore, knowing which pumps are present in each species is important. Furthermore, we present a novel method using conserved RND residues to predict the total number of RND proteins including currently novel systems, within bacterial genomes. Data SummaryThis study made use of publicly available datasets downloaded from NCBIs GenBank. A full list of accession numbers can be found in supplementary text 3. Bioinformatics software used in this study was previously published and listed in the methods section. The BLASTp conserved residue files are in S1 text 1 and 2. The authors confirm all supporting data, code and protocols have been provided within the article or through supplementary data files.

microbiology↗

Evolutionary responses to acquiring a multidrug resistance plasmid are dominated by metabolic functions across diverse Escherichia coli lineages

Multidrug resistance (MDR) plasmids drive the spread of antibiotic resistance between bacterial lineages. The immediate impact of MDR plasmid acquisition on fitness and cellular processes varies among bacterial lineages, but how the evolutionary processes enabling the genomic integration of MDR plasmids vary is less well understood, particularly in clinical pathogens. Using diverse Escherichia coli lineages experimentally evolved for [~]700 generations, we show that the evolutionary response to gaining the MDR plasmid pLL35 was dominated by chromosomal mutations affecting metabolic and regulatory functions, with both strain-specific and shared mutational targets. The expression of several of these functions, such as anaerobic metabolism, is known to be altered upon acquisition of pLL35. Interactions with resident mobile genetic elements, notably several IS-elements, potentiated parallel mutations, including insertions upstream of hns that were associated with its upregulation and the downregulation of the plasmid-encoded extended-spectrum beta-lactamase gene. Plasmid parallel mutations targeted conjugation-related genes, whose expression was also commonly downregulated in evolved clones. Beyond their role in horizontal gene transfer, plasmids can be an important selective force shaping the evolution of bacterial chromosomes and core cellular functions.

evolutionary biology↗