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Membrane Tethering of SepF, a Membrane Anchor for the Mycobacterium tuberculosis Z-ring
1Department of Chemistry, University of Illinois at Chicago, IL 60607, USA.
Abstract:
Bacterial cell division begins with the formation of the Z-ring via polymerization of FtsZ and the localization of Z-ring beneath the inner membrane through membrane anchors. In Mycobacterium tuberculosis (Mtb), SepF is one such membrane anchor, but our understanding of the underlying mechanism is very limited. Here we used molecular dynamics simulations to characterize how SepF itself, a water-soluble protein, tethers to acidic membranes that mimic the Mtb inner membrane. In addition to an amphipathic helix (residues 1-12) at the N-terminus, membrane binding also occurs through two stretches of positively charged residues (Arg27-Arg37 and Arg95-Arg107) in the long linker preceding the FtsZ-binding core domain (residues 128-218). The additional interactions via the disordered linker stabilize the membrane tethering of SepF, and keep the core domain of SepF and hence the attached Z-ring close to the membrane. The resulting membrane proximity of the Z-ring in turn enables its interactions with and thus recruitment of two membrane proteins, FtsW and CrgA, at the late stage of cell division.
Insights
SepF protein anchors the Z-ring to the Mycobacterium tuberculosis inner membrane via charged residues and an N-terminal helix. This stabilizes cell division by positioning the Z-ring for interactions with FtsW and CrgA.
Area of Science:
- Microbiology
- Molecular Biology
- Biophysics
Background:
- Bacterial cell division relies on Z-ring formation and membrane anchoring.
- SepF is a known membrane anchor in Mycobacterium tuberculosis (Mtb), but its mechanism is poorly understood.
Purpose of the Study:
- To elucidate the mechanism by which SepF tethers to acidic membranes mimicking the Mtb inner membrane.
Main Methods:
- Molecular dynamics simulations were employed to characterize SepF-membrane interactions.
Main Results:
- SepF utilizes an N-terminal amphipathic helix and two positively charged residue stretches (Arg27-Arg37, Arg95-Arg107) in its linker for membrane binding.
- These interactions stabilize SepF tethering and maintain Z-ring proximity to the membrane.
Conclusions:
- SepF's multi-site membrane binding ensures Z-ring localization.
- Membrane proximity of the Z-ring facilitates recruitment of FtsW and CrgA during late cell division.
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