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February 9, 20260 citations

Fluorescence Lifetime Microscopy Methods for Studying Dynamics of Fluorescent Proteins In Vivo and In Vitro.

BPBruno PannunzioLMLeonel Malacrida

Key Points

  • This research focuses on utilizing fluorescence lifetime imaging microscopy to study protein dynamics and interactions in living systems.
  • Utilized fluorescence lifetime imaging microscopy (FLIM) for detailed analysis of protein interactions.
  • Employed Förster resonance energy transfer (FRET) combined with FLIM for measuring energy transfer efficiency.
  • Integrated FLIM with stimulated emission depletion (FLIM-STED) for enhanced super-resolution imaging.
  • Applied phasor analysis to visualize fluorescence lifetime dynamics without complex fitting.
  • FLIM provided real-time insights into the microenvironment of fluorophores.
  • FRET-FLIM allowed for precise quantification of energy transfer efficiency.
  • FLIM-STED extended spatial resolution, facilitating nanoscale mapping of protein distributions.
  • The phasor approach simplified lifetime analysis and improved detection of microenvironmental changes.

Abstract

Fluorescence-based microscopy techniques are key tools for studying protein dynamics in vivo, enabling real-time tracking of molecular interactions with high specificity and subcellular resolution. Fluorescence lifetime imaging microscopy (FLIM) provides quantitative insights into the microenvironment of fluorophores by measuring their excited-state decay times, independent of intensity-based variations such as concentration and photobleaching. The phasor approach to FLIM simplifies lifetime analysis by mapping decay dynamics onto a two-dimensional plot, eliminating complex fitting procedures and allowing real-time visualization of heterogeneous fluorescence signals. This approach enhances the detection of subtle microenvironmental changes, facilitating the study of protein interactions. This chapter explores the application of FLIM in molecular interaction studies, with a focus on Förster resonance energy transfer (FRET). Combining FLIM with FRET (FRET-FLIM) enables precise quantification of energy transfer efficiency, overcoming the limitations of intensity-based FRET measurements. Additionally, integrating FLIM with stimulated emission depletion (FLIM-STED) super-resolution microscopy extends the spatial resolution beyond the diffraction limit, allowing for the nanoscale mapping of protein distributions and interactions. Together, these advanced techniques provide powerful tools for investigating dynamic cellular processes with high temporal and spatial resolution, offering new perspectives on protein function and biomolecular mechanisms in living systems.

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Cite This Study

Pannunzio et al. (2026) studied this question.

synapsesocial.com/papers/698979e9f0ec2af6756e7f5ehttps://doi.org/10.1007/978-3-032-07511-6_13
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