Looking Inside Non-Destructively: Label-Free, Raman-Based Visualization of Intracellular Coxiella burnetii

Nancy Unger1,2, Simone Eiserloh1,2, Frauke Nowak3

  • 1Center for Sepsis Control and Care, Jena University Hospital, 07747 Jena, Germany.

Analytical Chemistry
|March 18, 2022
PubMed

Insights

This study introduces a novel Raman spectroscopy method to visualize and quantify intracellular bacteria like Coxiella burnetii within host cells without labels. This technique offers detailed insights into pathogen metabolism and life cycle stages, aiding infection research.

Area of Science:

  • Microbiology
  • Cell Biology
  • Spectroscopy

Background:

  • Intracellular pathogens present complex life cycles and challenges for study and treatment.
  • Visualizing and quantifying pathogens within host cells non-invasively is crucial for understanding infection dynamics.

Purpose of the Study:

  • To develop and validate a label-free, non-invasive Raman spectroscopy method for 3D imaging and quantification of intracellular bacteria.
  • To analyze the metabolic state and life cycle progression of Coxiella burnetii within host cells.

Main Methods:

  • Raman spectroscopy for label-free, non-destructive imaging of intact host cells.
  • 3D image reconstruction and statistical data analysis.
  • Comparative analysis with transmission electron microscopy.

Main Results:

  • Successful localization, visualization, and quantification of intracellular Coxiella burnetii in 3D.
  • Demonstrated agreement between Raman imaging and transmission electron microscopy.
  • Observed transition from large cell variant (LCV) to small cell variant (SCV) and changes in lipid composition during infection progression.
  • Identified spectral differences indicating higher lipid content in metabolically active LCV.

Conclusions:

  • Raman spectroscopy provides a powerful tool for studying intracellular pathogens in their native environment.
  • The method allows for detailed analysis of pathogen morpho-transitions and metabolic states without cell isolation.
  • This technique advances the study of obligate intracellular bacteria and infection models like Q fever.