MinJ is a conserved nine-pass transmembrane protein that contains a putative transmembrane β-sheet

Insights

The MinJ protein in Bacillus subtilis has a complex structure, featuring a nine-pass transmembrane architecture and a unique beta-sheet, crucial for bacterial cell division regulation. This research clarifies MinJ

Area of Science:

  • Microbiology
  • Cell Biology
  • Structural Biology

Background:

  • The Min system regulates bacterial cell division by disassembling FtsZ-rings.
  • MinJ is a membrane protein linking MinCD to DivIVA in Bacillus subtilis, but its structure and function are poorly understood.
  • Accurate positioning of the bacterial division site is vital for cell growth.

Purpose of the Study:

  • To experimentally determine the membrane topology and functional domains of the MinJ protein.
  • To investigate the structural organization of MinJ, including a putative transmembrane beta-sheet.
  • To understand MinJ's role in the conserved Min system of bacterial cell division.

Main Methods:

  • Empirical testing of MinJ topology using various transmembrane prediction models.
  • AlphaFold3 prediction for protein structure modeling.
  • Deletion analysis to assess the function of different MinJ regions.
  • Bioinformatic analysis of MinJ conservation and interactions.

Main Results:

  • MinJ topology is most consistent with a nine-pass transmembrane protein, with an external N-terminus and internal C-terminus, as predicted by AlphaFold3.
  • All tested regions of MinJ are required for function, but PDZ domain deletion retains polar localization and interaction with MinD and DivIVA.
  • A putative transmembrane beta-sheet formed by transmembrane segments 6 and 7 was identified, and its deletion increased minicell frequency.
  • MinJ is highly conserved within Firmicutes and co-conserved with MinD and DivIVA.

Conclusions:

  • This study clarifies the structural organization of MinJ, revealing a nine-pass transmembrane architecture and a unique beta-sheet.
  • MinJ plays a critical role in bacterial cell division beyond just restricting the Min system.
  • The findings provide a framework for understanding the conserved functions of MinJ in bacterial cell division.

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