Optimizing immuno-labeling for correlative fluorescence and electron microscopy on a single specimen

Matthia A Karreman1, Alexandra V Agronskaia, Elly G van Donselaar

  • 1Molecular Biophysics, Department of Physics and Astronomy, Utrecht University, Princetonplein 1, Utrecht, The Netherlands. M.A.Karreman@uu.nl

Insights

Correlative microscopy requires careful sample preparation. This study compares fluorescent probe performance and presents a novel protocol for combined fluorescence and electron microscopy.

Area of Science:

  • Cell biology
  • Microscopy techniques

Background:

  • Correlative fluorescence and electron microscopy (iLEM) integrates FM and TEM for high-resolution imaging.
  • Sample preparation is critical for dual FM and TEM imaging of single specimens.
  • Fluorescent probe performance can be affected by the TEM's vacuum environment.

Purpose of the Study:

  • To compare the fluorescence intensity of six probes in dry, oxygen-free conditions versus aqueous environments.
  • To develop and validate a single specimen preparation protocol for iLEM.

Main Methods:

  • Comparative analysis of six fluorescent probes under varying environmental conditions (dry/oxygen-free vs. water).
  • Development of a freeze-substitution and Lowicryl resin embedding protocol.
  • Evaluation of the protocol's suitability for both fluorescence microscopy (FM) and transmission electron microscopy (TEM).

Main Results:

  • Fluorescence intensity of certain probes is significantly influenced by their surrounding environment.
  • The developed freeze-substitution and Lowicryl embedding protocol preserves fluorescent immuno-labeling.
  • The protocol provides excellent membrane contrast for TEM imaging.

Conclusions:

  • Environmental factors critically impact fluorophore performance in correlative microscopy.
  • The presented single-specimen preparation protocol is effective for iLEM, ensuring good FM and TEM results.
  • This protocol is valuable for various correlative microscopy applications.

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