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Meikle, V.

Publications and source records attributed to Meikle, V..

3 recordsLinked to original sources

Structural elucidation of the hexameric MmpS4-MmpL4 complex from Mycobacterium tuberculosis

Mycobacterium tuberculosis contains thirteen Mycobacterial membrane protein Large (MmpL) transporters, which belong to the family of secondary active RND transporters. MmpL4 and MmpL5, together with their operon partners MmpS4 and MmpS5, export the mycobacterial siderophore mycobactin and the last resort TB drug bedaquiline. Recently, we determined a structure of the MmpL4 monomer in complex with desferrated mycobactin, which lacked a functionally essential coiled-coil domain predicted to extend far into the periplasm. Here, we present a cryo-EM structure of the hexameric (MmpS4)3-(MmpL4)3 complex, which was enabled by rational disulfide cross-links based on AlphaFold predictions. We observed density for the coiled-coil domain, which protrudes into the periplasmic space at an angle of around 60{degrees} relative to the symmetry axis of the MmpL4 trimer. In the context of the hexameric complex, MmpL4s conformation differs strikingly from the one observed for monomeric MmpL4, which includes formation of a large cavity in the periplasmic domain and rearrangements of conserved proton coupling residues at the transmembrane domain. Our work provides an experimental workflow to obtain single particle cryo-EM structures of labile multiprotein complexes by AlphaFold-informed stabilization of predicted protein interfaces.

biochemistry↗

The Mycobacterium tuberculosis ESX-5 secretion system enables carbon source utilization and growth in mice

Mycobacterium tuberculosis uses several ESX type VII protein secretion systems for pathogenesis. M. tuberculosis ESX-5 is poorly characterized because it is essential for growth in standard lab culture conditions. To circumvent ESX-5 essentiality, we made an M. tuberculosis strain in which the central ESX-5 membrane component EccD5 can be conditionally depleted. Here, we use this strain to demonstrate that M. tuberculosis requires the ESX-5 secretion system to grow using specific carbon sources in vitro, to grow in cultured macrophages, and to replicate and disseminate in aerosol-infected mice. M. tuberculosis requires ESX-5 to use glycerol or glucose as the sole carbon source. Use of glycerol and glucose also depends on the outer membrane protein PPE51. We show that M. tuberculosis requires ESX-5 activity for outer membrane export and surface exposure of PPE51. Expression of the outer membrane porin MspA enabled growth of ESX-5 deficient M. tuberculosis on glycerol, suggesting that the main function of ESX-5 in vitro is to export nutrient transporters to the outer membrane. Importantly, depletion of EccD5 in acutely infected mice resulted in clearance of M. tuberculosis from lung tissues, demonstrating the critical importance of ESX-5 activity during infection. Our findings suggest that ESX-5 promotes M. tuberculosis pathogenesis by mediating export of outer membrane proteins that enable nutrient acquisition. ImportanceMycobacterium tuberculosis ESX type VII secretion systems play important roles in pathogenesis, but the functions of ESX-5 are not well characterized because it is essential for growth in standard lab culture conditions. We used a strain that conditionally expresses a central membrane component of the ESX-5 secretion apparatus to determine how ESX-5 impacts growth in lab cultures and in a mouse infection model. We found that M. tuberculosis requires ESX-5 to grow using several carbon sources and to grow in the lungs of infected mice. Inhibiting production of the ESX-5 secretion system in mice also led to clearance of M. tuberculosis from lung tissues. Our results demonstrate that the M. tuberculosis ESX-5 system is a critical virulence factor and suggest that ESX-5 is a strong candidate for anti-tubercular drug development.

microbiology↗

Master control of protein secretion by Mycobacterium tuberculosis

Tuberculosis is the leading cause of death from a single infectious disease. Mycobacterium tuberculosis secretes proteins using five ESX systems with distinctive functions essential for its growth and virulence. Here we show that a non-canonical supercomplex of the EsxU-EsxT proteins, encoded in the esx-4 locus, with the orphan EsxE-EsxF proteins, encoded in the cpnT operon, is required for toxin secretion by M. tuberculosis. Surprisingly, the outer membrane localization of all Esx proteins and their secretion into the cytosol of infected macrophages also depend on the EsxEF-EsxUT supercomplex and ESX-4. These results not only demonstrate that the Esx proteins have dual functions as the long-sought outer membrane components of ESX systems and as secreted effector proteins, but also reveal a novel master control mechanism of protein secretion in M. tuberculosis. The mutual dependency of EsxEF and EsxUT on each other synchronizes ESX effector protein secretion, enabling M. tuberculosis to block phagosomal maturation and to permeabilize the phagosomal membrane only when it is capable of killing host cells by toxin secretion. The requirement of the ESX-4 system for general protein secretion is a critical vulnerability which could be targeted by drugs and/or vaccines to simultaneously block many virulence factors of M. tuberculosis.

microbiology↗