Pore confinement enhances but surface adhesion reduces bacterial cell-to-cell conjugation

Huihui Sun, Mark Radosevich, Yanchen Sun, Larry Millet, Shuo Qian, Jie Zhuang

Research output: Contribution to journalArticlepeer-review

Abstract

As the habitats of bacteria, soil pore network and surface properties control the distribution, adhesion, and motility of bacteria in soils. These physical processes in turn influence bacterial accesses to nutrients and bacterial interactions. Our understanding on the pore- and surface-mediated bacterial interactions is currently limited. In this research, we evaluated the effects of soil pore confinement and surface adhesion on conjugation-based bacterial interactions. The interaction was measured by plasmid transfer between donor and recipient cells within the population of soil bacterium Pseudomonas putida. We found that the presence of porous sand media led to a net increase in conjugation frequency compared to sand-free liquid control. The increase is attributed to the facilitated effect of pore confinement on the collision of bacteria within pores. In contrast, bacterial adhesion to sand surfaces under elevated ionic strength conditions decreased the conjugation frequency as a result of mobility reduction on the surface. Such collision and adhesion mechanisms jointly drive the conjugation as a function of pore and surface properties of porous media. These results provide valuable insights into the roles of soil pores and surfaces in regulating horizontal gene transfer, an essential cell-to-cell interaction sustaining key processes of soil ecology and health.

Original languageEnglish
Pages (from-to)901-910
Number of pages10
JournalBiology and Fertility of Soils
Volume60
Issue number7
DOIs
StatePublished - Oct 2024
Externally publishedYes

Funding

This work was supported by U.S. Department of Agriculture\u2019s National Institute of Food and Agriculture funds (USDA-NIFA 2018-67019-27792).

Keywords

  • Cell-to-cell conjugation
  • Pseudomonas putida
  • Soil pores
  • Surface adhesion

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