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Sweten, A.

Publications and source records attributed to Sweten, A..

2 recordsLinked to original sources

CRISPR interference in a Streptococcus agalactiae Multi-locus Sequence Type 17 Strain

Group B Streptococcus (GBS), a common colonizer of the human genital and gastrointestinal tracts, is a leading cause of neonatal bacterial meningitis, which can lead to severe neurological complications. The hypervirulent serotype III, sequence type 17 (ST-17) strain COH1 is strongly associated with late-onset disease due to its unique set of virulence factors. However, genetic manipulation of ST-17 strains is notoriously challenging, limiting the ability to study key pathogenic genes. In this study, we developed a CRISPR interference (CRISPRi) system utilizing an endogenous catalytically inactivated Cas9 (dCas9) in the COH1 strain, enabling targeted and tunable gene expression knockdown. We confirmed the efficacy of this system through hemolysis assays, qPCR transcriptional analysis, and in vitro infection models using human brain endothelial cells. The CRISPRi system successfully produced phenotypic knockdowns of essential virulence genes, including pilA, srr2, and iagA, reducing adhesion, invasion, and inflammatory responses at the blood-brain barrier. This platform enables rapid gene knockdowns for functional genomics in ST-17 GBS, enabling high-throughput screening and pathogenesis research. ImportanceGroup B Streptococcus (GBS) remains the worlds leading cause of neonatal meningitis. GBS-host interactions at the blood-brain barrier (BBB) are dependent on bacterial factors, including surface factors and two-component systems. Multi-locus sequence type 17 (ST-17) GBS strains are highly associated with neonatal meningitis, and these strains harbor many virulence factors for infection at the BBB. Historically, these factors have been studied using traditional knockout mutagenesis, which has proven challenging in the most common ST-17 lab strain, COH1. This study utilizes CRISPR interference (CRISPRi) to generate rapid expression knockdown. This study validates a CRISPRi-enabled COH1 dCas9 strain as a versatile tool for probing GBS pathogenesis at the BBB.

microbiology↗

Independent, Ongoing Clade-Specific Expansions of IS5 Elements in Pseudomonas syringae

Insertion Sequence (IS) elements are transposable regions of DNA which are present in a majority of bacterial genomes. It has been hypothesized that differences in distributions of IS elements across bacterial strains and species may reflect underlying differences in population biology. Therefore, shifts in IS element distributions between strains may be proxies for and reflective of changes in population dynamics. Here we investigate the presence and distribution of a subclass of IS5 elements throughout genomes of Pseudomonas syringae, by querying complete genomes for the presence of InsH (the main transposase found within these IS5 elements). We report that this one subclass of IS5 elements appears to have recently undergone multiple independent expansions in P. syringae clades and find that a majority of IS5 insertion sites are not conserved across three closely related P. syringae pv. lachrymans genomes. We present further evidence, as has been shown for other members of the IS5 family in different taxa, that elements from this IS5 subclass can drive the expression of downstream genes in P. syringae. Taken together, our results highlight how dynamic IS5 elements can be within and across P. syringae genomes and point toward the potential for IS5 elements to rewire the expression of the P. syringae chromosome.

microbiology↗