Related Experiment Video
Updated: Dec 28, 2025

Improvement of Bacillus subtilis Spore Enumeration and Label Analysis in Flow Cytometry
Published on: June 30, 2023
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.
Abstract:
Isostatic high pressure (HP) of 150 MPa can trigger the germination of bacterial spores, making them lose their extreme resistance to stress factors, and increasing their susceptibility to milder inactivation strategies. However, germination response of spores within a population is very heterogeneous, and tools are needed to study this heterogeneity. Here, classical methods were combined with more recent and powerful techniques such as flow cytometry (FCM) and fluorescence activated cell sorting (FACS) to investigate spore germination behavior under HP. Bacillus subtilis spores were treated with HP at 150 MPa and 37°C, stained with SYTO16 and PI, and analyzed via FCM. Four sub-populations were detected. These sub-populations were for the first time isolated on single cell level using FACS and characterized in terms of their heat resistance (80°C, 10 min) and cultivability in a nutrient-rich environment. The four isolated sub-populations were found to include (1) heat-resistant and mostly cultivable superdormant spores, i.e., spores that remained dormant after this specific HP treatment, (2) heat-sensitive and cultivable germinated spores, (3) heat-sensitive and partially-cultivable germinated spores, and (4) membrane-compromised cells with barely detectable cultivability. Of particular interest was the physiological state of the third sub-population, which was previously referred to as "unknown". Moreover, the kinetic transitions between different physiological states were characterized. After less than 10 min of HP treatment, the majority of spores germinated and ended up in a sublethally damaged stage. HP treatment at 150 MPa and 37°C did not cause inactivation of all geminated spores, suggesting that subsequent inactivation strategies such as mild heat inactivation or other inactivation techniques are necessary to control spores in food. This study validated FCM as a powerful technique to investigate the heterogeneous behavior of spores under HP, and provided a pipeline using FACS for isolation of different sub-populations and subsequent characterization to understand their physiological states.
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.
More Related Videos
10:03Investigating the Detrimental Effects of Low Pressure Plasma Sterilization on the Survival of Bacillus subtilis Spores Using Live Cell Microscopy
Published on: November 30, 2017
13:28Single-cell Analysis of Bacillus subtilis Biofilms Using Fluorescence Microscopy and Flow Cytometry
Published on: February 15, 2012