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ZipA is required for targeting of DMinC/DicB, but not DMinC/MinD, complexes to septal ring assemblies in Escherichia
Jay E Johnson1, Laura L Lackner, Cynthia A Hale
1Department of Molecular Biology and Microbiology, School of Medicine, Case Western Reserve University, Cleveland, Ohio 44106-4960, USA.
Abstract:
The MinC division inhibitor is required for accurate placement of the septal ring at the middle of the Escherichia coli cell. The N-terminal domain of MinC ((Z)MinC) interferes with FtsZ assembly, while the C-terminal domain ((D)MinC) mediates both dimerization and complex formation with either MinD or DicB. Binding to either of these activators greatly enhances the division-inhibitory activity of MinC in the cell. The MinD ATPase plays a crucial role in the rapid pole-to-pole oscillation of MinC that is proposed to force FtsZ ring formation to midcell. DicB is encoded by one of the cryptic prophages on the E. coli chromosome (Qin) and is normally not synthesized. Binding of MinD or DicB to (D)MinC produces complexes that have high affinities for one or more septal ring-associated targets. Here we show that the FtsZ-binding protein ZipA is required for both recruitment of the (D)MinC/DicB complex to FtsZ rings and the DicB-inducible division block normally seen in MinC(+) cells. In contrast, none of the known FtsZ-associated factors, including ZipA, FtsA, and ZapA, appear to be specifically required for targeting of the (D)MinC/MinD complex to rings, implying that the two MinC/activator complexes must recognize distinct features of FtsZ assemblies. MinD-dependent targeting of MinC may occur in two steps of increasing topological specificity: (i) recruitment of MinC from the cytoplasm to the membrane, and (ii) specific targeting of the MinC/MinD complex to nascent septal ring assemblies on the membrane. Using membrane-tethered derivatives of MinC, we obtained evidence that both of these steps contribute to the efficiency of MinC/MinD-mediated division inhibition.
Insights
The MinC protein inhibitor ensures accurate bacterial cell division by forming complexes with MinD or DicB. These complexes target specific FtsZ assemblies, with ZipA protein mediating MinC/DicB recruitment to septal rings.
Area of Science:
- Microbiology
- Cell Biology
- Molecular Biology
Background:
- Accurate bacterial cell division relies on precise septal ring placement.
- The MinC protein inhibitor is essential for regulating Escherichia coli cell division.
- MinC interacts with activators MinD and DicB to enhance its division-inhibitory activity.
Purpose of the Study:
- To investigate the distinct mechanisms by which MinC/MinD and MinC/DicB complexes target FtsZ assemblies.
- To elucidate the role of ZipA in the recruitment of MinC/DicB complexes to septal rings.
- To understand the two-step targeting process of MinC/MinD for efficient division inhibition.
Main Methods:
- Investigated protein-protein interactions between MinC, MinD, DicB, and FtsZ-associated factors.
- Utilized DicB-inducible division block assays in MinC(+) cells.
- Employed membrane-tethered MinC derivatives to study targeting mechanisms.
Main Results:
- ZipA is specifically required for recruiting the (D)MinC/DicB complex to FtsZ rings.
- Unlike the MinC/DicB complex, the MinC/MinD complex does not appear to require known FtsZ-associated factors like ZipA, FtsA, or ZapA for ring targeting.
- Evidence suggests MinD-dependent MinC targeting involves cytoplasmic recruitment to the membrane followed by specific assembly targeting.
Conclusions:
- MinC/MinD and MinC/DicB complexes recognize distinct features of FtsZ assemblies, indicating differential targeting mechanisms.
- ZipA plays a crucial role in mediating the division inhibition induced by the MinC/DicB complex.
- The two-step targeting process of MinC/MinD contributes significantly to the efficiency of bacterial cell division inhibition.

