Prof. Dr.
Alexander Westermann
Prof. Dr.
Alexander Westermann
Research background
RNA plays a central role in regulating gene expression in response to environmental and host-derived signals, yet its contribution to microbial physiology and host–pathogen interactions has long been underappreciated. In the human intestine, beneficial commensal bacteria and enteric pathogens coexist and compete within a complex ecosystem, and the outcome of these interactions determines health or disease. How RNA-mediated regulatory networks control bacterial adaptation, virulence, and niche colonization in the gut remains a key unresolved question in infection biology.
The research of Alexander Westermann’s group focuses on RNA-centric mechanisms that govern microbial interactions in the intestinal tract. Their work investigates transcriptomic regulation in commensal and pathogenic bacteria, particularly in the context of host colonization. Using in–vitro colonization models combined with advanced cross-species RNA sequencing approaches, such as Dual RNA-seq and Triple RNA-seq, they analyze gene expression dynamics across interacting bacteria and their host. By dissecting how noncoding RNAs and RNA-binding proteins shape bacterial behavior in the gut, this research aims to identify novel RNA-informed strategies for microbiome editing.
Research fields
Decoding RNA regulatory networks of our gut microbiota may enable therapies nurturing beneficial microbes against infections.
Prof. Dr. Alexander Westermann
Publications
Intramacrophage RIL-seq uncovers an RNA antagonist of the Salmonella virulence-associated small RNA PinT.
Nucleic Acids Res. · 2025
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Salmonella virulence chiefly relies upon two major pathogenicity islands, SPI-1 and SPI-2, which enable host cell invasion and intracellular survival, respectively. Growing evidence suggests post-transcriptional control of SPI gene expression by Hfq-dependent small regulatory RNAs (sRNAs) such as PinT. This 80-nucleotide sRNA is highly expressed after Salmonella enters host cells and modulates the transition from the SPI-1 to SPI-2 program by targeting the mRNAs of different virulence factors. However, it remains unclear how PinT activity can be counteracted when the suppression of virulence genes needs to be relieved. Here, we mapped the RNA interactome of Salmonella recovered from infected macrophages, using an optimized version of RIL-seq. In addition to offering an unprecedented view of Hfq-mediated RNA interactions during Salmonella's intracellular infection stage, RIL-seq uncovered the previously described 3' end-derived sRNA InvS as a direct negative regulator of PinT. Biochemical and genetic experiments suggest a decoy mechanism by which InvS lifts PinT-mediated target repression. Moreover, InvS acts as an mRNA repressor of the adhesion protein MipA and PinT interaction with InvS relieves mipA repression. Together, our work identifies a pair of antagonistic sRNAs in a growing post-transcriptional network of virulence gene regulation.
The global RNA-binding protein RbpB is a regulator of polysaccharide utilization in Bacteroides thetaiotaomicron.
Nat Commun. · 2025
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Paramount to human health, symbiotic bacteria in the gastrointestinal tract rely on the breakdown of complex polysaccharides to thrive in this sugar-deprived environment. Gut Bacteroides are metabolic generalists and deploy dozens of polysaccharide utilization loci (PULs) to forage diverse dietary and host-derived glycans. The expression of the multi-protein PUL complexes is tightly regulated at the transcriptional level. However, how PULs are orchestrated at translational level in response to the fluctuating levels of their cognate substrates is unknown. Here, we identify the RNA-binding protein RbpB and a family of noncoding RNAs as key players in post-transcriptional PUL regulation. We demonstrate that RbpB interacts with numerous cellular transcripts, including a paralogous noncoding RNA family comprised of 14 members, the FopS (family of paralogous sRNAs). Through a series of in-vitro and in-vivo assays, we reveal that FopS sRNAs repress the translation of SusC-like glycan transporters when substrates are limited-an effect antagonized by RbpB. Ablation of RbpB in Bacteroides thetaiotaomicron compromises colonization in the mouse gut in a diet-dependent manner. Together, this study adds to our understanding of RNA-coordinated metabolic control as an important factor contributing to the in-vivo fitness of predominant microbiota species in dynamic nutrient landscapes.
CRISPR-based screening of small RNA modulators of bile susceptibility in .
Proc Natl Acad Sci U S A. · 2024
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Microbiota-centric interventions are limited by our incomplete understanding of the gene functions of many of its constituent species. This applies in particular to small RNAs (sRNAs), which are emerging as important regulators in microbiota species yet tend to be missed by traditional functional genomics approaches. Here, we establish CRISPR interference (CRISPRi) in the abundant microbiota member for genome-wide sRNA screens. By assessing the abundance of different protospacer-adjacent motifs, we identify the B14 Cas12a as a suitable nuclease for CRISPR screens in these bacteria and generate an inducible Cas12a expression system. Using a luciferase reporter strain, we infer guide design rules and use this knowledge to assemble a computational pipeline for automated gRNA design. By subjecting the resulting guide library to a phenotypic screen, we uncover the sRNA BatR to increase susceptibility to bile salts through the regulation of genes involved in cell surface structure. Our study lays the groundwork for unlocking the genetic potential of these major human gut mutualists and, more generally, for identifying hidden functions of bacterial sRNAs.
An expanded transcriptome atlas for Bacteroides thetaiotaomicron reveals a small RNA that modulates tetracycline sensitivity.
Nat Microbiol. · 2024
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Plasticity in gene expression allows bacteria to adapt to diverse environments. This is particularly relevant in the dynamic niche of the human intestinal tract; however, transcriptional networks remain largely unknown for gut-resident bacteria. Here we apply differential RNA sequencing (RNA-seq) and conventional RNA-seq to the model gut bacterium Bacteroides thetaiotaomicron to map transcriptional units and profile their expression levels across 15 in vivo-relevant growth conditions. We infer stress- and carbon source-specific transcriptional regulons and expand the annotation of small RNAs (sRNAs). Integrating this expression atlas with published transposon mutant fitness data, we predict conditionally important sRNAs. These include MasB, which downregulates tetracycline tolerance. Using MS2 affinity purification and RNA-seq, we identify a putative MasB target and assess its role in the context of the MasB-associated phenotype. These data-publicly available through the Theta-Base web browser ( http://micromix.helmholtz-hiri.de/bacteroides/ )-constitute a valuable resource for the microbiome community.
Dual RNA-seq unveils noncoding RNA functions in host-pathogen interactions.
Nature. · 2016
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Bacteria express many small RNAs for which the regulatory roles in pathogenesis have remained poorly understood due to a paucity of robust phenotypes in standard virulence assays. Here we use a generic 'dual RNA-seq' approach to profile RNA expression simultaneously in pathogen and host during Salmonella enterica serovar Typhimurium infection and reveal the molecular impact of bacterial riboregulators. We identify a PhoP-activated small RNA, PinT, which upon bacterial internalization temporally controls the expression of both invasion-associated effectors and virulence genes required for intracellular survival. This riboregulatory activity causes pervasive changes in coding and noncoding transcripts of the host. Interspecies correlation analysis links PinT to host cell JAK-STAT signalling, and we identify infection-specific alterations in multiple long noncoding RNAs. Our study provides a paradigm for a sensitive RNA-based analysis of intracellular bacterial pathogens and their hosts without physical separation, as well as a new discovery route for hidden functions of pathogen genes.