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Kröger Lab

@kroegerlab.bsky.social
269 followers 365 following 13 posts

Microbiology Lab run by Carsten Kröger at the Moyne Institute of Preventive Medicine, Trinity College Dublin, the University of Dublin.

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Kröger Lab @kroegerlab.bsky.social · 06/08/2026
Congrats to Orlaith @orlaithplunkett.bsky.social! This work is now out in JMM: www.microbiologyresearch.org/content/jour....
microbiologyresearch.org
Contributions of plasmid p1AB5075-encoded antibiotic resistance genes to multidrug resistance of Acinetobacter baumannii AB5075
Infections caused by multidrug-resistant Acinetobacter baumannii are considered a threat to human and animal health. The widely studied A. baumannii strain AB5075 displays a high degree of antibiotic ...
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Ronan McCarthy @ronanmccarthy.bsky.social · 28/04/2026
⏰ We have two exciting opportunities to join our team in Southampton! 🚀 𝐏𝐨𝐬𝐭𝐝𝐨𝐜𝐭𝐨𝐫𝐚𝐥 𝐑𝐞𝐬𝐞𝐚𝐫𝐜𝐡𝐞𝐫 (2 𝐲𝐞𝐚𝐫𝐬) 𝘈𝘤𝘪𝘯𝘦𝘵𝘰𝘣𝘢𝘤𝘵𝘦𝘳 virulence 👉 jobs.soton.ac.uk/Vacancy.aspx... 𝐑𝐞𝐬𝐞𝐚𝐫𝐜𝐡 𝐓𝐞𝐜𝐡𝐧𝐢𝐜𝐢𝐚𝐧 (3 𝐲𝐞𝐚𝐫𝐬) Engineering Biology 👉 jobs.soton.ac.uk/Vacancy.aspx...
jobs.soton.ac.uk
Job Opportunity at the University of Southampton: Research Fellow
The McCarthy Lab has an exciting opportunity for a prospective Postdoctoral Research Fellow who is interested in understanding virulence and hospital persistence in Acinetobacter baumannii. The role w...
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Kröger Lab @kroegerlab.bsky.social · 31/03/2026
New pre-print from our lab looking at antibiotic resistance and sensitivity of AB5075 lacking p1AB5075 - a serendipitous isolation. We also included a full sequence of the widely used pWH1266 E.coli-Acinetobacter shuttle plasmid: GenBank accession no.: PV577797.1.
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Kröger Lab @kroegerlab.bsky.social · 30/01/2026
Always good to start the year with a new preprint. We charted DNA methylation in Salmonella enterica: www.biorxiv.org/content/10.64898/2026.01.27.702048v1.
biorxiv.org
Methylome and transcriptome mapping reveal miniscule DNA methyltransferase regulons in Salmonella enterica serovar Typhimurium
DNA methylation is a regulator of bacterial gene expression and adaptation, influencing traits such as virulence and antimicrobial resistance. The dynamic nature of DNA methylation enables rapid responses to changing environments and is a source of heterogeneity in bacterial populations. However, condition-dependent DNA methylation and consequences for transcriptional output remain poorly understood. We applied Oxford Nanopore sequencing to profile DNA methylation during exponential growth and late stationary phase of Salmonella enterica serovar Typhimurium and integrated these data with transcriptomic analyses. We found that each DNA methyltransferase (MTases) exhibits a distinct activity pattern across growth stages, which could not be explained by transcriptional levels of the corresponding enzymes. As predicted, DNA methylation patterns determined by regulatory MTases were dynamic across growth conditions whereas methylation patterns of MTases belonging to R-M systems were comparatively stable. We identified growth stage–specific methylation patterns for all studied MTases and correlations between methylation states and gene expression patterns. Together, these findings chart DNA methylation networks in the epigenetic regulation of bacterial physiology. Author summary DNA methylation in bacteria is best known for its role protecting DNA from endonucleases, such as restriction–modification, and coordinating chromosome replication and mutation repair, yet DNA methylation also regulates gene expression and cell physiology. Previous studies primarily examined bacterial DNA methylation at single time points or in limited genomic regions, providing only a partial view of its biological significance. In this study, we used Oxford Nanopore sequencing to compare DNA methylation patterns in Salmonella enterica during exponential growth and late stationary phase then integrated these data with corresponding gene expression profiles. We identified numerous methylation target motifs, all of which demonstrated constitutively methylated or unmethylated regions. This systems-level analysis clarifies the role of DNA methylation in bacterial adaptation across growth stages and demonstrates the utility of Oxford Nanopore sequencing for genome-wide methylation profiling. ### Competing Interest Statement The authors have declared no competing interest. European Union, https://ror.org/019w4f821, Marie Skłodowska-Curie grant agreement No. 896441 University of Regina Fir cluster of the Digital Research Alliance of Canada
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Westermann Lab @westermannlab.bsky.social · 01/12/2025
🔊 Interested in doing a PhD on RNA-binding proteins in an abundant microbiota species and becoming a member of the German Priority Programme “Illuminating Gene Functions in the Human Gut Microbiome”? Apply here: www.uni-wuerzburg.de/karriere/sin...
uni-wuerzburg.de
Job offer for a PhD student position at the Chair of Microbiology
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Kröger Lab @kroegerlab.bsky.social · 26/11/2025
This work is now out in Microbiology! www.microbiologyresearch.org/content/jour.... Congrats to first author Aalap Mogre! Publish with the Microbiology Society! A membership charity and not-for-profit publisher: @microbiologysociety.org !
microbiologyresearch.org
Development of two compatible plasmids to assess sRNA-mediated post-transcriptional regulation in Acinetobacter baumannii
Post-transcriptional regulation can be mediated by small regulatory RNAs (sRNAs) in bacteria, which can act by base-pairing to a target mRNA. The discovery and mechanistic validation of base-pairing s...
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Julia Frunzke @frunzkelab.bsky.social · 08/10/2025
Please RT: We have an opening for a junior group leader position in „Phage Biology & Biotechnology“. www.fz-juelich.de/de/karriere/... Interested candidates are encouraged to contact me via email for further details. @spp2330.bsky.social; @mibinet.bsky.social
fz-juelich.de
Junior Group Leader - Phage Biology & Biotechnology
As a leading research institution for microbial biotechnology the Institute of Bio- and Geosciences - Biotechnology (IBG-1, https://www.fz-juelich.de/de/ibg/ibg-1 ) at the Forschungszentrum Jülich foc...
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FEMS @femsmicro.org · 17/09/2025
Happy International Microorganism Day! 🎉 Today, we are celebrating the tiny powerhouses that have a massive impact on our world. From the bacteria in our gut to the fungi that give us antibiotics, these incredible organisms are essential to life. Let's make some noise for the microscopic!
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Microbiology Society @microbiologysociety.org · 29/08/2025
Publish with us and invest in the research community. Supported by income from our journals, the Microbiology Society awards hundreds of grants every year, providing opportunities and experience for microbiologists at all career levels.
Poster quoting from a reviewer saying "I have been supported by the Microbiology Society so much, so I will always support them."
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Kröger Lab @kroegerlab.bsky.social · 21/07/2025
New preprint! We characterise the small, regulatory RNA Arp which controls DNA uptake and twitching motilty in A. baumannii. Led by our Dr Fergal Hamrock @hamrockfergal.bsky.social and in collaboration with @westermannlab.bsky.social and Mike Gebhardt's lab!
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Kröger Lab @kroegerlab.bsky.social · 21/07/2025
New preprint! We characterise the small, regulatory RNA Arp which controls DNA uptake and twitching motilty in A. baumannii. Led by our Dr Fergal Hamrock @hamrockfergal.bsky.social and in collaboration with @westermannlab.bsky.social and Mike Gebhardt's lab!
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Reposted by Kröger Lab
Suzana Salcedo @suzanasalcedo.bsky.social · 21/07/2025
Charline studied how some clinical strains of Acinetobacter baumannii create a transient intracellular niche before infecting neighboring cells. Great collaboration with @kroegerlab.bsky.social If you are interested, check out her preprint! www.biorxiv.org/content/10.1...
Human endothelial cell infected with Acinetobacter baumannii strain ABC141. Bacteria are visible with Dapi in white along with the nucleus of the cell. Bacteria are mostly organized in a large cluster with a few scattered ones. Mitochondria are visible in red.
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Kröger Lab @kroegerlab.bsky.social · 14/07/2025
Latest preprint from our lab describing a new 2-plasmid system to investigate sRNAs-target molecule interactions in A. baumannii.
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bioRxiv Microbiology @biorxiv-microbiol.bsky.social · 05/03/2025
Transposon-directed insertion-site sequencing (TraDIS) analysis of Enterococcus faecium using nanopore sequencing and a WebAssembly analysis platform www.biorxiv.org/content/10.1101/202…
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Kröger Lab @kroegerlab.bsky.social · 26/02/2025
Our lab contributed to this including @hamrockfergal.bsky.social : CsrA-mediated regulation of a virulence switch in Acinetobacter baumannii. Great work led by Phil Rather's group. journals.asm.org/doi/10.1128/...
journals.asm.org
CsrA-mediated regulation of a virulence switch in Acinetobacter baumannii | mBio
The World Health Organization has ranked Acinetobacter baumannii atop its “priority pathogens” list highlighting the urgent need for new therapeutics against this pathogen. Many A. baumannii strains i...
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Kröger Lab @kroegerlab.bsky.social · 24/02/2025
A work that started 10y ago with a simple experiment with a curious result. Great to see it finally published. Massive effort by @nic-ler.bsky.social and Andrew Cameron! Happy to have contributed to this!
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Jay Hinton @jayhinton.bsky.social · 23/01/2025
www.microbiologyresearch.org/content/jour...
The taxonomy & lifestyle of Salmonella Typhimurium
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Kröger Lab @kroegerlab.bsky.social · 19/08/2024
Delighted to share our work led by IRC GoI PG Scholar Fergal Hamrock: Global analysis of the RNA–RNA interactome in Acinetobacter baumannii AB5075 uncovers a small regulatory RNA repressing the virulence-related outer membrane protein CarO. academic.oup.com/nar/advance-...
academic.oup.com
Global analysis of the RNA–RNA interactome in Acinetobacter baumannii AB5075 uncovers a small regulatory RNA repressing the virulence-related outer membrane protein CarO
Abstract. Acinetobacter baumannii is an opportunistic Gram-negative pathogen that infects critically ill patients. The emergence of antimicrobial resistant
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