Search bioRxiv⌕ Search

Biology subjects

Kuijl, C.

Publications and source records attributed to Kuijl, C..

2 recordsLinked to original sources

A new role for lipoproteins LpqZ and FecB in orchestrating mycobacterial cell envelope biogenesis

Accounting for more deaths than any other bacterial species, Mycobacterium tuberculosis (Mtb) represents a critical threat to public health worldwide. A key factor contributing to Mtbs virulence is its unique cell envelope, which acts as a protective barrier. Among the components of this envelope, lipoproteins represent a critical but understudied group of proteins. In this study, we focused on 79 conserved putative lipoproteins, shared between Mtb and the closely related M. marinum. Leveraging the CRISPR1-Cas9 (Sth1Cas9) gene editing system for Mycobacteria, we generated frameshift mutations, targeting one conserved lipoprotein-coding gene at a time. We identified two mutants, lpqZ and fecB, that exhibited increased susceptibility to all tested antibiotics, suggesting essential roles in cell envelope biogenesis. Interestingly, despite having homology to periplasmic substrate binding proteins (SBPs), neither protein is associated with any inner membrane transporter complex. Instead, co-immunoprecipitation experiments revealed that LpqZ interacts with AftA and FecB interacts with AftB. Both these interaction partners are essential enzymes involved in arabinogalactan and lipoarabinomannan synthesis. Accordingly, we observed alterations for both glycoconjugates in lpqZ and fecB mutants. Together, these findings show that orphaned SBP-like proteins have been neofunctionalized in mycobacteria to aid key enzymes involved in cell envelope biosynthesis.

microbiology↗

Reconstitution of a minimal ESX-5 type VII secretion systems uncovers the essential role of the PPE proteins in secretion

Mycobacteria utilize type VII secretion systems (T7SSs) to secrete proteins across their highly hydrophobic and diderm cell envelope. Pathogenic mycobacteria have up to five different T7SSs, called ESX-1 to ESX-5, which are crucial for growth and virulence. Here, we use a functionally reconstituted ESX-5 system in the avirulent species Mycobacterium smegmatis that lacks ESX-5, to define the role of each esx-5 gene in system functionality. By creating an array of gene deletions and assessing protein levels of components and membrane complex assembly, we observed that only the five components of the inner membrane complex are required for its assembly. However, in addition to these five core components, active secretion also depends on both the Esx and PE/PPE substrates. Tagging the PPE substrates followed by subcellular fractionation, surface labeling and membrane extraction showed that these proteins localize to the mycobacterial outer membrane. This indicates that they could play a role in secretion across this enigmatic outer barrier. These results provide a first full overview of the role of each esx-5 gene in T7SS functionality.

microbiology↗