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.

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.