Membrane Binding by MinD Involves Insertion of Hydrophobic Residues within the C-Terminal Amphipathic Helix into the Bilayer
Open Access
- 1 August 2003
- journal article
- Published by American Society for Microbiology in Journal of Bacteriology
- Vol. 185 (15) , 4326-4335
- https://doi.org/10.1128/jb.185.15.4326-4335.2003
Abstract
MinD binds to phospholipid vesicles in the presence of ATP and is released by MinE, which stimulates the MinD ATPase. Membrane binding requires a short conserved C-terminal region, which has the potential to form an amphipathic helix. This finding has led to a model in which the binding of ATP regulates the formation or accessibility of this helix, which then embeds in the membrane bilayer. To test this model, we replaced each of the four hydrophobic residues within this potential helix with tryptophan or a charged residue. Introduction of a negatively charged amino acid decreased membrane binding of MinD and its ability to activate MinC. In contrast, mutants with tryptophan substitutions retained the ability to bind to the membrane and activate MinC. Fluorescence emission spectroscopy analysis of the tryptophan mutants F263W, L264W, and L267W confirmed that these tryptophan residues did insert into the hydrophobic interior of the bilayer. We conclude that membrane binding by MinD involves penetration of the hydrophobic residues within the C-terminal amphipathic helix into the hydrophobic interior of the bilayer.Keywords
This publication has 26 references indexed in Scilit:
- ATP-Dependent Interactions between Escherichia coli Min Proteins and the Phospholipid Membrane In VitroJournal of Bacteriology, 2003
- Recruitment of MinC, an Inhibitor of Z-Ring Formation, to the Membrane in Escherichia coli : Role of MinD and MinEJournal of Bacteriology, 2003
- Curvature of clathrin-coated pits driven by epsinNature, 2002
- Targeting of D MinC/MinD and D MinC/DicB Complexes to Septal Rings in Escherichia coli Suggests a Multistep Mechanism for MinC-Mediated Destruction of Nascent FtsZ RingsJournal of Bacteriology, 2002
- Dynamic assembly of MinD on phospholipid vesicles regulated by ATP and MinEProceedings of the National Academy of Sciences, 2002
- Generation of high curvature membranes mediated by direct endophilin bilayer interactionsThe Journal of cell biology, 2001
- Topological Regulation of Cell Division in E. coliMolecular Cell, 2001
- The MinE ring required for proper placement of the division site is a mobile structure that changes its cellular location during the Escherichia coli division cycleProceedings of the National Academy of Sciences, 2001
- Deletion analysis of gene minE which encodes the topological specificity factor of cell division in Escherichia coliMolecular Microbiology, 1995
- A division inhibitor and a topological specificity factor coded for by the minicell locus determine proper placement of the division septum in E. coliCell, 1989