Prof. Dr.

Jörg Vogel

A1
C3
Principal Investigator

Prof. Dr.

Jörg Vogel

Chair of Molecular Infection Biology I, Director Institute of Molecular Infection Biology and Director, Helmholtz Institute for RNA-based Infection Research, Faculty of Medicine

Julius-Maximilians-Universität Würzburg and Helmholtz Institut für RNA-basierte Infektionsforschung (HIRI)

Research background 

The Vogel lab explores the RNA world of microbes and bacteriophages to advance RNA-centric strategies for microbiology, infection biology and precision editing of the human microbiome. The group develops new RNA-sequencing techniques to rapidly chart the RNA landscape of microbes, ideally at the single-cell level, and to understand how and why bacteria use RNA to regulate gene expression. A central focus of the lab is asobiotics—programmable antisense oligomers (ASOs) designed for precision targeting of mRNA expression in microbes and phages. The ultimate goal is to establish ASOs as a platform technology for microbial research, infection treatment and industrial applications.

Research fields
Publications

Programmable antisense oligomers for phage functional genomics.

Gerovac, M.; Buhlmann, L.; Zhu, Y.; Ðurica-Mitić, S.; Rech, V.; Carien, S.; Gräfenhan, T.; Popella, L.; Vogel, J.

Nature. · 2025

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Bacteriophages are the most abundant entities on earth and exhibit vast genetic and phenotypic diversity. Exploitation of this largely unexplored molecular space requires identification and functional characterization of genes that act at the phage-host interface. So far, this has been restricted to few model phage-host systems that are amenable to genetic manipulation. Here, to overcome this limitation, we introduce a non-genetic mRNA targeting approach using exogenous delivery of programmable antisense oligomers to silence genes of DNA and RNA phages. A systematic knockdown screen of core and accessory genes of the nucleus-forming jumbo phage ΦKZ, coupled to RNA-sequencing and microscopy analyses, reveals previously unrecognized proteins that are essential for phage propagation and that, upon silencing, elicit distinct phenotypes at the level of the phage and host response. One of these factors is the RNase H-like protein ΦKZ155 (also known as Nlp2), which acts at a major decision point during infection, linking the formation of the protective phage nucleus to phage genome amplification. This non-genetic antisense oligomer-based gene silencing method promises to be a versatile tool for molecular discovery in phage biology, will help to elucidate defence and anti-defence mechanisms in non-model phage-host pairs, and offers potential for optimizing phage therapy and biotechnological procedures.

Dual RNA-seq unveils noncoding RNA functions in host-pathogen interactions.

Westermann, AJ.; Förstner, KU.; Amman, F.; Barquist, L.; Chao, Y.; Schulte, LN.; Müller, L.; Reinhardt, R.; Stadler, PF.; Vogel, J.

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.

Small RNA-mediated activation of sugar phosphatase mRNA regulates glucose homeostasis.

Papenfort, K.; Sun, Y.; Miyakoshi, M.; Vanderpool, CK.; Vogel, J.

Cell. · 2013

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Glucose homeostasis is strictly controlled in all domains of life. Bacteria that are unable to balance intracellular sugar levels and deal with potentially toxic phosphosugars cease growth and risk being outcompeted. Here, we identify the conserved haloacid dehalogenase (HAD)-like enzyme YigL as the previously hypothesized phosphatase for detoxification of phosphosugars and reveal that its synthesis is activated by an Hfq-dependent small RNA in Salmonella typhimurium. We show that the glucose-6-P-responsive small RNA SgrS activates YigL synthesis in a translation-independent fashion by the selective stabilization of a decay intermediate of the dicistronic pldB-yigL messenger RNA (mRNA). Intriguingly, the major endoribonuclease RNase E, previously known to function together with small RNAs to degrade mRNA targets, is also essential for this process of mRNA activation. The exploitation of and targeted interference with regular RNA turnover described here may constitute a general route for small RNAs to rapidly activate both coding and noncoding genes.

CRISPR RNA maturation by trans-encoded small RNA and host factor RNase III.

Deltcheva, E.; Chylinski, K.; Sharma, CM.; Gonzales, K.; Chao, Y.; Pirzada, ZA.; Eckert, MR.; Vogel, J.; Charpentier, E.

Nature. · 2011

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CRISPR/Cas systems constitute a widespread class of immunity systems that protect bacteria and archaea against phages and plasmids, and commonly use repeat/spacer-derived short crRNAs to silence foreign nucleic acids in a sequence-specific manner. Although the maturation of crRNAs represents a key event in CRISPR activation, the responsible endoribonucleases (CasE, Cas6, Csy4) are missing in many CRISPR/Cas subtypes. Here, differential RNA sequencing of the human pathogen Streptococcus pyogenes uncovered tracrRNA, a trans-encoded small RNA with 24-nucleotide complementarity to the repeat regions of crRNA precursor transcripts. We show that tracrRNA directs the maturation of crRNAs by the activities of the widely conserved endogenous RNase III and the CRISPR-associated Csn1 protein; all these components are essential to protect S. pyogenes against prophage-derived DNA. Our study reveals a novel pathway of small guide RNA maturation and the first example of a host factor (RNase III) required for bacterial RNA-mediated immunity against invaders.

The primary transcriptome of the major human pathogen Helicobacter pylori.

Sharma, CM.; Hoffmann, S.; Darfeuille, F.; Reignier, J.; Findeiss, S.; Sittka, A.; Chabas, S.; Reiche, K.; Hackermüller, J.; Reinhardt, R.; Stadler, PF.; Vogel, J.

Nature. · 2010

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Genome sequencing of Helicobacter pylori has revealed the potential proteins and genetic diversity of this prevalent human pathogen, yet little is known about its transcriptional organization and noncoding RNA output. Massively parallel cDNA sequencing (RNA-seq) has been revolutionizing global transcriptomic analysis. Here, using a novel differential approach (dRNA-seq) selective for the 5' end of primary transcripts, we present a genome-wide map of H. pylori transcriptional start sites and operons. We discovered hundreds of transcriptional start sites within operons, and opposite to annotated genes, indicating that complexity of gene expression from the small H. pylori genome is increased by uncoupling of polycistrons and by genome-wide antisense transcription. We also discovered an unexpected number of approximately 60 small RNAs including the epsilon-subdivision counterpart of the regulatory 6S RNA and associated RNA products, and potential regulators of cis- and trans-encoded target messenger RNAs. Our approach establishes a paradigm for mapping and annotating the primary transcriptomes of many living species.