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Cox, J. V.

Publications and source records attributed to Cox, J. V..

3 recordsLinked to original sources

Localized Cardiolipin Synthesis is Required for the Assembly of MreB During the Polarized Cell Division of Chlamydia trachomatis

Pathogenic Chlamydia species are coccoid bacteria that use the rod-shape determining protein MreB to direct septal peptidoglycan synthesis during their polarized cell division process. How the site of polarized budding is determined in this bacterium, where contextual features like membrane curvature are seemingly identical, is unclear. We hypothesized that the accumulation of the phospholipid, cardiolipin (CL), in specific regions of the cell membrane induces localized membrane changes that trigger the recruitment of MreB to the site where the bud will arise. To test this, we ectopically expressed cardiolipin synthase (Cls) and observed a polar distribution for this enzyme in Chlamydia trachomatis. In early division intermediates, Cls was restricted to the bud site where MreB is localized and peptidoglycan synthesis is initiated. The localization profile of Cls throughout division mimicked the distribution of lipids that stain with NAO, a dye that labels CL. Treatment of Chlamydia with 3,6-dinonylneamine (diNN), an antibiotic targeting CL-containing membrane domains, resulted in redistribution of Cls and NAO-staining phospholipids. In addition, MreB localization was altered by diNN treatment, suggesting an upstream regulatory role for CL-containing membranes in directing the assembly of MreB. This hypothesis is consistent with the observation that the clustered localization of Cls is not dependent upon MreB function or peptidoglycan synthesis. Furthermore, expression of a CL-binding protein at the inner membrane of C. trachomatis dramatically inhibited bacterial growth supporting the importance of CL in the division process. Our findings implicate a critical role for localized CL synthesis in driving MreB assembly at the bud site during the polarized cell division of Chlamydia.

microbiology↗

Chlamydia trachomatis Encodes a Dynamic, Ring-Forming Bactofilin Critical for Maintaining Cell Size and Shape

Bactofilins are polymer-forming cytoskeletal proteins that are widely conserved in bacteria. Members of this protein family have diverse functional roles such as orienting subcellular molecular processes, establishing cell polarity, and aiding in cell shape maintenance. Chlamydia species are obligate intracellular bacteria that undergo a developmental cycle alternating between an infectious, non-dividing EB and a non-infectious, dividing RB. As Chlamydia divides by a polarized division process, we hypothesized that BacACT may function to establish polarity in these unique bacteria. Using sequence alignment to the conserved bactofilin domain, we identified a bactofilin ortholog, BacACT, in the obligate intracellular pathogen Chlamydia trachomatis. Utilizing a combination of fusion constructs and high-resolution fluorescence microscopy, we determined that BacACT forms a dynamic, membrane-associated, ring-like structure in Chlamydias replicative RB form. Contrary to our hypothesis, this filamentous ring structure is distinct from the microbes cell division machinery and does not colocalize with septal peptidoglycan or MreB, the major organizer of the bacteriums division complex. Bacterial two-hybrid assays demonstrated BacACT interacts homotypically but does not directly interact with proteins involved in cell division or peptidoglycan biosynthesis. To investigate the function of BacACT in chlamydial development, we constructed a conditional knockdown strain using a newly developed CRISPR interference system. We observed that reducing bacACT expression significantly impacted chlamydial cell size and morphology. Normal RB morphology was restored when an additional copy of BacACT was expressed in trans during knockdown. These data reveal a novel function for chlamydial bactofilin in maintaining cell shape in this obligate intracellular bacterium. IMPORTANCEChlamydia is an ancient, obligate intracellular bacterium with a unique biphasic developmental cycle. As a result of its evolution within the osmotically stable environment of a host cell, Chlamydia has lost its dependence on side-wall peptidoglycan, and maintains only a fraction of the components thought to be required for regulating bacterial cell size and division. As such, very little is known about how Chlamydia species carry out these critical processes in the absence of a stabilizing peptidoglycan layer. In the current study, we identify a novel cytoskeletal element, termed a bactofilin, that is critical for maintaining the morphology of the bacteria. Using state-of-the-art genetic techniques for this organism, we demonstrate that chlamydial bactofilin forms a dynamic ring structure independent of the microbes division machinery and that abrogating its expression level using CRISPR interference results in abnormal morphologic forms. These findings enhance our understanding of chlamydial biology and bactofilins more generally.

microbiology↗

Critical Role for the Unique N-Terminus of Chlamydial MreB in Directing Its Membrane Association and Interaction with Elements of the Divisome

Chlamydiae lack the conserved central coordinator protein of cell division FtsZ, a tubulin-like homolog. Current evidence indicates Chlamydia uses the actin-like homolog, MreB, to substitute for the role of FtsZ. Interestingly, we observed MreB as a ring at the septum in dividing cells of Chlamydia. We hypothesize that MreB, to substitute for FtsZ in Chlamydia, must possess unique properties compared to canonical MreB orthologs. Sequence differences between chlamydial MreB and orthologs in other bacteria revealed that chlamydial MreB possesses an extended N-terminal region and the conserved amphipathic helix found in other bacterial MreBs. The extended N-terminal region was sufficient to restore the localization of a truncated E. coli MreB mutant lacking its amphipathic helix to the membrane and was crucial for interactions with cell division components RodZ and FtsK, though the region was not required for homotypic interactions. Importantly, the N-terminal region was sufficient to direct GFP to the membrane when expressed in Chlamydia. A mutant N-terminal region with reduced amphipathicity was unable to perform these functions. From these data, the extended N-terminal region of chlamydial MreB is critical for localization and interactions of this protein. Our data provide mechanistic support for chlamydial MreB to serve as a substitute for FtsZ. ImportanceChlamydia trachomatis is an obligate intracellular pathogen, causing sexual transmitted diseases and trachoma. Studying chlamydial physiology, especially its cell division mechanism, is important for developing novel therapeutic strategies for the treatment of these diseases. Since chlamydial cell division has unique features, including a polarized cell division process independent of FtsZ, a canonical cell division coordinator, studying the subject is helpful for understanding undefined aspects of chlamydial growth. In this study, we characterized MreB, a substitute for FtsZ, as a cell division coordinator. It forms a filamentous ring at the septum, like FtsZ in E. coli. We show that the localization of MreB is dependent upon the amphipathic nature of its extended N-terminus. Furthermore, this region is crucial for its interaction with other proteins involved in cell division. Given these results, chlamydial MreB may function as a scaffold for cell divisome proteins at the septum and regulate cell division in this organism.

microbiology↗