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Effects of phospholipid composition on MinD-membrane interactions in vitro and in vivo

Eugenia Mileykovskaya1, Itzhak Fishov, Xueyao Fu

  • 1Department of Biochemistry, The University of Texas Medical School, Houston, Texas 77030, USA.

Insights

The MinD protein, crucial for bacterial cell division, prefers anionic phospholipids in cell membranes. This preference may regulate MinD

Area of Science:

  • * Cell Biology
  • * Biochemistry
  • * Microbiology

Background:

  • * The MinD protein is essential for bacterial cell division, ensuring the correct placement of the division site in *Escherichia coli*.
  • * MinD is a peripheral membrane ATPase that localizes to the cell membrane in its ATP-bound form.
  • * A C-terminal domain of MinD is predicted to mediate membrane localization by interacting with phospholipids.

Purpose of the Study:

  • * To investigate whether *E. coli* MinD exhibits a preference for anionic phospholipids.
  • * To explore the role of phospholipid composition in regulating MinD localization and cell division site selection.

Main Methods:

  • * Localization dynamics of green fluorescent protein-tagged MinD in *E. coli* mutants lacking phosphatidylethanolamine.
  • * Binding assays using purified MinD and liposomes composed of varying phospholipid compositions (zwitterionic, anionic, mixed).
  • * Fluorescence resonance energy transfer (FRET) to detect MinD oligomerization on liposome surfaces.

Main Results:

  • * MinD formed dynamic focal clusters in *E. coli* lacking phosphatidylethanolamine, indicating altered localization on anionic phospholipids.
  • * Purified MinD bound to anionic and mixed phospholipid liposomes with higher affinity than zwitterionic liposomes, showing positive cooperativity.
  • * Increased acyl chain unsaturation enhanced MinD binding strength to liposomes.

Conclusions:

  • * *E. coli* MinD demonstrates a preference for anionic phospholipids.
  • * The oscillation behavior of MinD, critical for cell division, may be modulated by the cell membrane's phospholipid composition.

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