Active Genetics & Molecular Biology Infection & Immunity

Investigating the molecular mechanisms and evolutionary conservation of the RNA-binding protein Tex in bacterial pathogens.

In plain English

AI plain-English summary

A single bacterial protein, Tex, helps several dangerous pathogens survive inside human cells—and researchers want to know exactly how it works. The problem: Tex is known to be essential for virulence in *Burkholderia pseudomallei*, the bacterium that causes melioidosis, a severe tropical infection with a high death rate. Deleting the *tex* gene makes the bacteria far less able to survive and cause disease. Yet the molecular details of how Tex controls gene expression remain a black box. Without understanding those mechanisms, researchers cannot tell whether Tex is a viable target for new drugs or vaccines. This project will map Tex’s biochemical functions in *Burkholderia thailandensis* (a close, safer relative of *B. pseudomallei*) and in *Legionella pneumophila*, which causes Legionnaires’ disease. By comparing how Tex works across these two very different intracellular pathogens, the team aims to identify both shared mechanisms and species-specific adaptations. This is fundamental science. If it succeeds, it will reveal whether Tex is a conserved Achilles’ heel in multiple bacterial pathogens. That knowledge could eventually guide development of broad-spectrum treatments for infections that currently have few effective options.

View original technical description
The RNA-binding protein Tex has been implicated in the virulence and survival of multiple bacterial pathogens. In Burkholderia pseudomallei, the causative agent of melioidosis, deletion of the tex gene decreased bacterial survival both in vivo and in vitro and attenuated bacterial virulence. Despite its important for virulence in multiple pathogens, the molecular mechanisms underlying Tex function remain poorly understood. Here we propose to investigate the molecular mechanisms of Tex mediated gene regulation in B. thailandensis, a close relative of B. pseudomallei. We will establish the biochemical functions of Burkholderia Tex through RNA-binding studies, transcriptional profiling, and other assays, defining the molecular mechanisms by which Tex regulates gene expression, establishing the framework for cross- species comparisons. Furthermore, we will characterise the role of Tex in L. pneumophila in intracellular survival and explore mechanisms of Tex mediated bacterial modulation through RNA-sequencing. This comparative approach will provide insight into the molecular basis of Tex-mediated virulence conservation, whilst identifying pathogen-specific adaptations that may reflect their distinct intracellular lifestyles.

View the original record at the funder ↗

Researchers

Ben Holdsworth (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Genetic suppression of the RNA regulator system controlling virulence and antibiotic biosynthesis in the phytopathogen Erwinia carotovora
Dissecting the genetic basis of melioidosis infection
Isolation and characterisation of lytic bacteriophages which infect Burkholderia pseudomallei.
Decoding the triad: the interplay between Environment, Pathogen, and Host in melioidosis (DeEPH)
Decoding riboregulation in complex cellular behaviour of bacteria

Original classification

PhD Studentship (Basic)

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.