Flow Cytometry Combined With Single Cell Sorting to Study Heterogeneous Germination of Bacillus Spores Under High

Yifan Zhang1, Alessia I Delbrück1, Cosima L Off1

  • 1Sustainable Food Processing Laboratory, Institute of Food, Nutrition and Health, Department of Health Science and Technology, ETH Zürich, Zurich, Switzerland.

Frontiers in Microbiology
|February 11, 2020
PubMed

Insights

High pressure (HP) treatment triggers bacterial spore germination, revealing diverse responses. Flow cytometry and cell sorting identified four distinct spore sub-populations with varying heat resistance and viability, aiding in understanding spore behavior.

Area of Science:

  • Microbiology
  • Food Science
  • Biotechnology

Background:

  • Bacterial spores exhibit extreme resistance to stress.
  • Isostatic high pressure (HP) can induce spore germination, increasing susceptibility to inactivation.
  • Spore germination under HP is heterogeneous, necessitating advanced analytical tools.

Purpose of the Study:

  • To investigate the heterogeneous germination response of bacterial spores under HP using advanced techniques.
  • To isolate and characterize distinct spore sub-populations based on their physiological state after HP treatment.
  • To understand the kinetic transitions between different physiological states during HP-induced germination.

Main Methods:

  • Combined classical methods with flow cytometry (FCM) and fluorescence-activated cell sorting (FACS).
  • Treated *Bacillus subtilis* spores with HP (150 MPa, 37°C) and stained with SYTO16 and PI.
  • Analyzed and isolated four distinct spore sub-populations using FCM and FACS for characterization.

Main Results:

  • Four distinct sub-populations were identified: superdormant, germinated (cultivable), germinated (partially cultivable), and membrane-compromised.
  • HP treatment (150 MPa, 37°C) for <10 min induced germination in most spores, leading to sublethal damage.
  • Characterized the "unknown" sub-population as heat-sensitive and partially cultivable.

Conclusions:

  • FCM is a powerful tool for studying heterogeneous spore behavior under HP.
  • FACS enables the isolation and characterization of distinct spore sub-populations.
  • HP treatment alone is insufficient for complete spore inactivation, requiring subsequent mild inactivation strategies.