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Updated: Mar 5, 2026

Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy
Published on: June 24, 2019
Sequential Immunofluorescent Light Microscopy and Electron Microscopy of Recombination Nodules During Meiotic
1Department of Biology, Colorado State University, 1878 Campus Delivery, Fort Collins, CO, 80523-1878, USA. lorinda.anderson@colostate.edu.
Insights
This study introduces a novel immunolocalization method combining light and electron microscopy to analyze recombination nodules during meiosis. The technique enhances protein localization accuracy and aids in understanding crossover markers like MLH1.
Area of Science:
- Cell Biology
- Genetics
- Microscopy
Background:
- Immunolocalization via light microscopy (LM) and electron microscopy (EM) is crucial for identifying proteins in meiotic prophase recombination.
- LM immunofluorescence offers ease and high throughput but lacks resolution for sub-LM structures.
- Immunogold EM provides higher resolution but suffers from lower signal-to-noise ratios and complex colocalization.
Purpose of the Study:
- To develop a hybrid immunolocalization method combining LM and EM.
- To analyze two classes of late recombination nodules (RNs), differentiating those associated with MLH1 protein.
Main Methods:
- A novel method integrating immunofluorescence LM and immunogold EM was developed.
- The technique leverages the strengths of both LM and EM for enhanced resolution and signal detection.
- Antibodies against MLH1 protein were used to identify crossover-associated recombination nodules.
Main Results:
- The method successfully differentiated two classes of late RNs based on MLH1 labeling.
- It allows for the analysis of structures below LM resolution while retaining LM's advantages.
- The technique is adaptable for studying other prophase I structures and early RNs.
Conclusions:
- The combined LM-EM immunolocalization method offers superior analysis of meiotic recombination structures.
- This approach overcomes limitations of individual LM and EM techniques.
- It provides a versatile tool for studying protein localization in various meiotic events.
Abstract:
Immunolocalization using either fluorescence for light microscopy (LM) or gold particles for electron microscopy (EM) has become a common tool to pinpoint proteins involved in recombination during meiotic prophase. Each method has its advantages and disadvantages. For example, LM immunofluorescence is comparatively easier and higher throughput compared to immunogold EM localization. In addition, immunofluorescence has the advantages that a faint signal can often be enhanced by longer exposure times and colocalization using two (or more) probes with different absorbance and emission spectra is straightforward. However, immunofluorescence is not useful if the object of interest does not label with an antibody probe and is below the resolution of the LM. In comparison, immunogold EM localization is higher resolution than immunofluorescent LM localization, and individual nuclear structures, such as recombination nodules, can be identified by EM regardless of whether they are labeled or not. However, immunogold localization has other disadvantages including comparatively low signal-to-noise ratios, more difficult colocalization using gold particles of different sizes, and the inability to evaluate labeling efficiency before examining the sample using EM (a more expensive and time-consuming technique than LM). Here we describe a method that takes advantage of the good points of both immunofluorescent LM and EM to analyze two classes of late recombination nodules (RNs), only one of which labels with antibodies to MLH1 protein, a marker of crossovers. The method can be used readily with other antibodies to analyze early recombination nodules or other prophase I structures.
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