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Updated: Oct 15, 2025

Fluorescence Lifetime Macro Imager for Biomedical Applications
Published on: April 7, 2023
Fluorescence Lifetime Imaging Microscopy of Porphyrins in Helicobacter pylori Biofilms
Antonella Battisti1, Paola Morici1,2, Antonella Sgarbossa1
1Istituto Nanoscienze-CNR and NEST-Scuola Normale Superiore, Piazza S. Silvestro 12, I-56127 Pisa, Italy.
Abstract:
Bacterial biofilm constitutes a strong barrier against the penetration of drugs and against the action of the host immune system causing persistent infections hardly treatable by antibiotic therapy. Helicobacter pylori (Hp), the main causative agent for gastritis, peptic ulcer and gastric adenocarcinoma, can form a biofilm composed by an exopolysaccharide matrix layer covering the gastric surface where the bacterial cells become resistant and tolerant to the commonly used antibiotics clarithromycin, amoxicillin and metronidazole. Antimicrobial PhotoDynamic Therapy (aPDT) was proposed as an alternative treatment strategy for eradicating bacterial infections, particularly effective for Hp since this microorganism produces and stores up photosensitizing porphyrins. The knowledge of the photophysical characteristics of Hp porphyrins in their physiological biofilm microenvironment is crucial to implement and optimize the photodynamic treatment. Fluorescence lifetime imaging microscopy (FLIM) of intrinsic bacterial porphyrins was performed and data were analyzed by the 'fit-free' phasor approach in order to map the distribution of the different fluorescent species within Hp biofilm. Porphyrins inside bacteria were easily distinguished from those dispersed in the matrix suggesting FLIM-phasor technique as a sensitive and rapid tool to monitor the photosensitizer distribution inside bacterial biofilms and to better orientate the phototherapeutic strategy.
Insights
Bacterial biofilms, like those from Helicobacter pylori, resist antibiotics. Fluorescence imaging reveals porphyrin distribution in biofilms, aiding antimicrobial photodynamic therapy development.
Area of Science:
- Microbiology
- Biophysics
- Medical Science
Background:
- Bacterial biofilms present a significant challenge in treating persistent infections due to drug resistance.
- Helicobacter pylori (Hp) forms biofilms, contributing to gastritis, peptic ulcers, and gastric cancer, and exhibits resistance to standard antibiotics.
- Antimicrobial photodynamic therapy (aPDT) is a promising alternative, especially for Hp, which naturally produces photosensitizing porphyrins.
Purpose of the Study:
- To investigate the photophysical characteristics of Hp porphyrins within their native biofilm microenvironment.
- To assess the utility of Fluorescence Lifetime Imaging Microscopy (FLIM) with phasor analysis for mapping photosensitizer distribution in Hp biofilms.
Main Methods:
- Fluorescence Lifetime Imaging Microscopy (FLIM) was employed to analyze intrinsic bacterial porphyrins.
- The 'fit-free' phasor approach was used to analyze FLIM data and map porphyrin distribution within Hp biofilms.
Main Results:
- FLIM-phasor analysis successfully distinguished porphyrins located inside bacterial cells from those dispersed in the biofilm matrix.
- The technique provided a sensitive and rapid method for visualizing photosensitizer distribution within the Hp biofilm.
Conclusions:
- FLIM-phasor analysis is an effective tool for monitoring photosensitizer distribution in bacterial biofilms.
- This approach can guide and optimize photodynamic therapy strategies for treating Hp infections.

