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Stuart, W. S.

Publications and source records attributed to Stuart, W. S..

3 recordsLinked to original sources

Cryo-EM reveals multiple mechanisms of ribosome inhibition by doxycycline

Antimicrobial resistance is driving the search for new antibiotics and a greater understanding of their mechanism of action. Doxycycline is amongst the most-prescribed antimicrobials. It demonstrates a particularly low minimum inhibitory concentration against the zoonotic pathogen Coxiella burnetii. Doxycycline canonically targets the bacterial ribosome by blocking tRNA binding at the decoding centre (A-site) of the small subunit. Using cryo electron-microscopy, we analysed doxycycline binding to C. burnetii and Escherichia coli ribosomes. Both structures reveal unexpected binding at the exit tunnel in the large subunit. In C. burnetii three doxycycline molecules stack to block the tunnel. In E. coli one doxycycline molecule triggers a major uncharacterised conformation of the ribosome. This fundamentally reorganises the peptidyl transferase centre and blocks tRNA binding, challenging the concept that this region is largely static. We identify a new ribosomal protein in the C. burnetii large subunit and characterise an additional member of the prokaryotic ribosome hibernation promoting factor family. These insights into ribosome function and antibiotic action may aid the development of new ribosome inhibitor antibiotics.

biochemistry↗

Structure and catalytic mechanism of methylisocitrate lyase, a potential drug target against Coxiella burnetii

We present a comprehensive investigation into the catalytic mechanism of methylisocitrate lyase, a potential drug target candidate against the zoonotic pathogen Coxiella burnetii, the causative agent of Q fever and a federal select agent. Current treatment regimens are prolonged, often with incomplete clearance of the pathogen. We utilised a structure-based bioinformatics pipeline to identify methylisocitrate lyase as a candidate therapeutic target against C. burnetii from a list of essential genes. Wild-type C. burnetii methylisocitrate lyase has a kcat of 32,000 s-1 (compared to 105 s-1 for Salmonella enterica) and isocitrate inhibits with a KI of 6 mM. We have determined the previously uncharacterised substrate-bound structure of this enzyme family, alongside product and inhibitor-bound structures. These structures of wild-type enzyme reveal that in the active state the catalytic C118 is positioned 2.98 [A] from O5 of methylisocitrate and Arg152 moves towards the substrate relative to the inhibitor bound structure. Analysis of structure-based mutants reveals that Arg152 and Glu110 are both essential for catalysis. We suggest that Arg152 acts as the catalytic base that initiates the methylisocitrate lyase reaction. These results deepen our understanding of the catalytic mechanism of methylisocitrate lyase and could aid the development of new therapeutics against C. burnetii.

biochemistry↗

Cryo-EM resolves the structure of the archaeal dsDNA virus HFTV1 from head to tail

Outnumbering their hosts by at least a factor of 10, viruses are the most common biological entity on Earth, are major drivers of evolution, and greatly impact on the dynamics of our planets ecosystems. While viruses infecting bacteria and eukaryotes have been extensively studied, the viruses roaming the archaeal domain remain largely unexplored. In recent years, a growing number of archaeal viruses have been described, revealing a stunningly diverse range of morphologies that appear unique to archaea. Detailed structural studies are paramount to fully understand how archaeal viruses infect their hosts. However, no complete atomic models of archaeal viruses are available to date. Using electron cryo-microscopy, we investigated the structure of the archaeal virus Haloferax tailed virus 1 (HFTV1), which infects the halophile Haloferax gibbonsii LR2-5 originating from the Senegalese salt lake Retba. Through single particle analysis, we achieved near-atomic resolution for the entire set of HFTV1s structural proteins, enabling the building of a full atomic model of the virion. Comparing the structures of DNA filled and empty capsids, we visualise structural changes occurring upon DNA ejection. By investigating the double-stranded DNA inside the capsid, we elucidate how the genome is spooled upon loading. Furthermore, our structure reveals putative cell-surface receptor-binding and catalytic roles of capsid turret, baseplate, and tail fibre proteins. Together, our data provide new insights into the mechanisms of HFTV1 assembly and infection, unveiling new perspectives on general rules of host-virus interactions in archaea and their evolutionary links to bacterial and eukaryotic viruses.

microbiology↗