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Taiki, F.

Publications and source records attributed to Taiki, F..

2 recordsLinked to original sources

Uncoupling mycomembrane biogenesis from mycolic acid synthesis reveals a distinct role for mycoloyltransferases in mycobacterial cell division.

Bacteria of the order Mycobacteriales, including the genera Mycobacterium and Corynebacterium, possess a unique outer membrane, termed the mycomembrane, which is structurally and chemically distinct from the lipopolysaccharide-containing outer membrane of Gram-negative bacteria. A defining feature of the mycomembrane is its enrichment in mycolic acids, long-chain -branched, {beta}-hydroxylated fatty acids that occur as trehalose monomycolate (TMM), trehalose dimycolate (TDM), or are esterified to arabinogalactan, an unusual polymer that is itself covalently linked to peptidoglycan (PG). Mycoloyltransferases are Mycobacteriales-specific enzymes described to catalyze the transfer of mycolic acids from trehalose monomycolate (TMM) to various cell envelope acceptors, including trehalose and arabinogalactan. In several species, including Mycobacterium tuberculosis, these proteins are essential for viability; however, their occurrence as multiple paralogs with partially redundant functions has hindered the precise assignment of their cellular roles. Previously, we showed that Corynebacterium glutamicum remains viable in the absence of mycolic acids, and thus without a mycomembrane, following deletion of pks, the gene required for mycolic acid biosynthesis. Building on this finding, we systematically deleted all genes encoding mycoloyltransferases in C. glutamicum to further disclose their collective function in the cell. The resulting {Delta}myts mutant lacked arabinogalactan-bound mycolates and TDM, yet continued to synthesize TMM. Despite the high abundance of this major glycolipid, the {Delta}myts strain failed to assemble a mycomembrane and displayed pronounced cell aggregation. Unexpectedly, deletion of mycoloyltransferases also caused very severe defects in cell division and morphogenesis that are not observed in a {Delta}pks strain unable to synthesize mycolic acids. Together, these results demonstrate that mycoloyltransferases are essential for mycomembrane assembly but dispensable for TMM biosynthesis, and reveal an unexpected role for these enzymes in cell division that is independent of their canonical mycolic acid transfer activity. SIGNIFICANCEHow the mycomembrane is assembled and anchored to the cell wall remains a central question in Mycobacteriales, where this outer membrane is necessary for envelope integrity and intrinsic antibiotic resistance. By genetically separating mycolic acid synthesis from their incorporation into the outer membrane, we identify arabinogalactan-linked mycolates as the critical determinant for initiating membrane assembly. Unexpectedly, we also uncover a role for mycoloyltransferases beyond their canonical function in lipid metabolism, revealing a functional link with cell division. These findings point to a critical role of Mycoloyltransferases in the coordination between outer membrane biogenesis and bacterial cytokinesis.

microbiology↗

Optimization of adhesion for high throughput cryo-electron tomography of vitreous sections

Cellular cryo electron tomography explores tissue and cells in their unstained flash-frozen native state, revealing in situ the structure of macromolecules together with their local environment and interactions with partners, also known as molecular sociology. To obtain thin samples, cryo-FIB milling is nowadays the most popular method, with impressive successes. The alternative, cryo-ultramicrotomy, is often overlooked on account of poorly reproducible attachment of cryo-sections to their support, resulting in extremely low throughput. We optimized the workflow, focusing on section adhesion and their support grids. We thus increased vitreous sections cryo electron tomography throughput to equal that of thin film, with typically several tens to hundreds of cryo-tomograms per sample. This open the way to new advances in cellular cryo electron tomography, as the method is devoid of beam damage, can provide large surfaces and serial sections of any type of sample from cells to tissues. In addition, section thickness can be tuned down to 30-50 nm, which may be an advantage for imaging small molecular complexes, such as DNA and nucleosomes.

biophysics↗