A novel membrane protein influencing cell shape and multicellular swarming of Proteus mirabilis

N A Hay1, D J Tipper, D Gygi

  • 1Department of Pathology, University of Cambridge, Cambridge CB2 1QP, United Kingdom.

Insights

A new gene, ccmA, is crucial for Proteus mirabilis swarming. Mutations cause curved cells, hindering multicellular migration. Wild-type CcmA maintains cell shape for effective swarming.

Area of Science:

  • Microbiology
  • Bacterial Motility
  • Cell Morphology

Background:

  • Proteus mirabilis swarming involves coordinated migration of elongated, hyperflagellated cells.
  • A transposon mutant, MNS185, lost swarming ability despite normal motility and differentiation.

Purpose of the Study:

  • To identify the gene responsible for the swarming defect in MNS185.
  • To characterize the role of the identified gene (ccmA) in cell morphology and swarming.

Main Methods:

  • Transposon mutagenesis and mutant screening.
  • Gene cloning and complementation analysis.
  • Protein localization studies using immunoblotting and immunoelectron microscopy.
  • Analysis of ccmA null mutants and overexpression studies.

Main Results:

  • The transposon insertion in MNS185 disrupted the ccmA gene, encoding a novel inner membrane protein.
  • Mutant cells exhibited irregular curvature and variable diameters, impairing multicellular raft formation.
  • Wild-type CcmA protein, particularly two forms (CcmA1 and CcmA2), was upregulated in swarm cells.
  • Truncated CcmA proteins in the mutant interfered with normal cell elongation and linearity.
  • A ccmA null mutant showed less severe morphological defects and partial swarming ability.
  • Overexpression of ccmA induced enlarged, ellipsoidal cell shapes in both P. mirabilis and E. coli.

Conclusions:

  • The ccmA gene is essential for maintaining cell linearity during P. mirabilis swarming.
  • Truncated CcmA variants negatively impact cell morphogenesis, while full-length CcmA enhances migration.
  • CcmA plays a role in regulating cell shape, influencing bacterial surface motility.

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