Quantifying the fractal complexity of nutrient transport channels in Escherichia coli biofilms under varying cell shape and growth environment

Microbiology (Reading). 2024 Nov;170(11):001511. doi: 10.1099/mic.0.001511.

Abstract

Recent mesoscopic characterization of nutrient-transporting channels in Escherichia coli has allowed the identification and measurement of individual channels in whole mature colony biofilms. However, their complexity under different physiological and environmental conditions remains unknown. Analysis of confocal micrographs of colony biofilms formed by cell shape mutants of E. coli shows that channels have high fractal complexity, regardless of cell phenotype or growth medium. In particular, colony biofilms formed by the mutant strain ΔompR, which has a wide-cell phenotype, have a higher fractal dimension when grown on rich medium than when grown on minimal medium, with channel complexity affected by glucose and agar concentrations in the medium. Osmotic stress leads to a dramatic reduction in the ΔompR cell size but has a limited effect on channel morphology. This work shows that fractal image analysis is a powerful tool to quantify the effect of phenotypic mutations and growth environment on the morphological complexity of internal E. coli biofilm structures. If applied to a wider range of mutant strains, this approach could help elucidate the genetic determinants of channel formation in E. coli colony biofilms.

Keywords: Biofilms; Image analysis; Microscopy.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biofilms* / growth & development
  • Biological Transport
  • Culture Media* / chemistry
  • Culture Media* / metabolism
  • Escherichia coli Proteins* / genetics
  • Escherichia coli Proteins* / metabolism
  • Escherichia coli* / genetics
  • Escherichia coli* / growth & development
  • Escherichia coli* / metabolism
  • Escherichia coli* / physiology
  • Fractals*
  • Microscopy, Confocal
  • Nutrients / metabolism
  • Osmotic Pressure

Substances

  • Culture Media
  • Escherichia coli Proteins