Spatial alanine metabolism determines local growth dynamics of Escherichia coli colonies

Research output: Contribution to journalJournal articleResearchpeer-review

  • Francisco Díaz-Pascual
  • Martin Lempp
  • Kazuki Nosho
  • Hannah Jeckel
  • Jeanyoung K. Jo
  • Konstantin Neuhaus
  • Raimo Hartmann
  • Eric Jelli
  • Hansen, Mads Frederik
  • Alexa Price-Whelan
  • Lars E. P. Dietrich
  • Hannes Link
  • Knut Drescher

Bacteria commonly live in spatially structured biofilm assemblages, which are encased by an extracellular matrix. Metabolic activity of the cells inside biofilms causes gradients in local environmental conditions, which leads to the emergence of physiologically differentiated subpopulations. Information about the properties and spatial arrangement of such metabolic subpopulations, as well as their interaction strength and interaction length scales are lacking, even for model systems like Escherichia coli colony biofilms grown on agar-solidified media. Here, we use an unbiased approach, based on temporal and spatial transcriptome and metabolome data acquired during E. coli colony biofilm growth, to study the spatial organization of metabolism. We discovered that alanine displays a unique pattern among amino acids and that alanine metabolism is spatially and temporally heterogeneous. At the anoxic base of the colony, where carbon and nitrogen sources are abundant, cells secrete alanine via the transporter AlaE. In contrast, cells utilize alanine as a carbon and nitrogen source in the oxic nutrient-deprived region at the colony mid-height, via the enzymes DadA and DadX. This spatially structured alanine cross-feeding influences cellular viability and growth in the cross-feeding-dependent region, which shapes the overall colony morphology. More generally, our results on this precisely controllable biofilm model system demonstrate a remarkable spatiotemporal complexity of metabolism in biofilms. A better characterization of the spatiotemporal metabolic heterogeneities and dependencies is essential for understanding the physiology, architecture, and function of biofilms.

Original languageEnglish
Article numbere70794
JournaleLife
Volume10
Number of pages29
ISSN2050-084X
DOIs
Publication statusPublished - 2021
Externally publishedYes

Bibliographical note

© 2021, Díaz-Pascual et al.

ID: 285239448