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Joncha, J.

Publications and source records attributed to Joncha, J..

2 recordsLinked to original sources

MinJ is a conserved nine-pass transmembrane protein that contains a putative transmembrane β-sheet

The Min system disassembles FtsZ-rings after septation in Bacillus subtilis and is localized to the nascent division plane and cell poles by the protein MinJ. The N-terminal region of MinJ contains transmembrane segments while the C-terminal region of MinJ contains a PDZ domain but its topology and functional domains are poorly understood. Here we empirically test MinJ topology based on a variety of transmembrane prediction models and find that the data is most consistent with Alphafold3, which predicts a 9-pass transmembrane protein with an external N-terminus and internal C-terminus. Deletion analysis indicates that all regions of the protein tested are required for function but deletion of the PDZ domain alone preserves polar localization and interaction with both MinD and DivIVA. Moreover, Alphafold predicts that transmembrane segments 6 and 7 comprise staves of an unusual transmembrane {beta}-sheet and deletion of the putative {beta}-sheet in the absence of MinD results in a minicell frequency that exceeds mutation of MinD alone. Bioinformatic analysis indicates that MinJ is highly conserved within Firmicutes and is co-conserved with MinD and DivIVA with which it interacts. Our data clarify the structure of MinJ and support models in which MinJ has functions in addition to restricting the activity of the Min system. IMPORTANCEFaithful positioning of the bacterial division site is important for cell growth and is coordinated by the conserved Min system. Although the Min system of Bacillus subtilis has been extensively studied, MinJ, the membrane protein that links the division inhibitor MinCD to the polar determinant DivIVA, remains the least well-understood. Here we experimentally define the membrane topology of MinJ and show that our data are most consistent with a nine-pass transmembrane architecture predicted by AlphaFold3. We further provide genetic, cell biological, and evolutionary evidence supporting that two of the staves form a highly conserved putative transmembrane {beta}-sheet, a structure normally excluded from the plasma membrane. Our findings refine MinJ structural organization and provide a framework for understanding its conserved functions in bacterial cell division.

microbiology↗

Constitutive, endogenous, fluorescent membrane reporters for dynamic cell cycle analysis in Bacillus subtilis

Bacteria increase in biomass and divide, but determining precisely when cell division completes is technically challenging. To aid time-lapse imaging and cell-cycle tracking, we set out to identify a protein in Bacillus subtilis, which when fused with a fluorophore would cause the membrane to fluoresce in a manner that was constitutive, uniform, and bright. A forward genetic transposon-based approach combined with fluorescence-activated cell sorting was used to identify a fluorescent fusion to the glucose PTS transport transmembrane protein PtsG with all desired properties. Moreover, PtsG-GFP was constitutive and neutral to growth under all conditions tested and also labeled membranes during sporulation. We used PtsG-GFP to track cell growth in microfluidic channels and determine when cytokinesis occurred, defined as when fluorescence reached a local maximum at the division plane. Simultaneous imaging with a compatible fluorescent fusion to the cell division protein FtsZ indicated that FtsZ peak intensity occurred midway through septum constriction and that Z-ring recycling coincided with cytokinesis. We conclude that PtsG-GFP is a powerful tool for membrane imaging and cell cycle tracking. As such, we provide constructs with fluorophores that emit across the visible spectrum and antibiotic resistance cassettes to facilitate deployment in B. subtilis. IMPORTANCEBacterial cells are fully divided when new membrane separates the cytoplasm of each daughter. Reproducibly staining of bacterial membranes with exogenous labels for fluorescence microscopy can be challenging, particularly during chemostatic growth in microfluidic devices. Here, we report that fusion of a fluorescent protein to the glucose transport protein PtsG causes the membrane of Bacillus subtilis to give off bright and even fluorescence under a variety of conditions. We use PtsG-GFP to operationally define when cytokinesis occurs during growth, and we note that a fluorescent PtsG fusion would likely make fluorescent staining of the membrane more facile theoretically in any organism.

microbiology↗