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Localizing MEN Components by Indirect Immunofluorescence Analysis of Budding Yeast
Francesca Senic-Matuglia1, Rosella Visintin2
1Department of Experimental Oncology, European Institute of Oncology, via Adamello 16, Milan, 20139, Italy.
Methods in Molecular Biology (Clifton, N.J.)
|November 10, 2016
Summary
This study presents a detailed protocol for indirect immunofluorescence in budding yeast (Saccharomyces cerevisiae). This method enables precise visualization of endogenous proteins, including Mitotic Exit Network components, aiding cell cycle research.
Area of Science:
- Cell Biology
- Microscopy
- Yeast Genetics
Background:
- Budding yeast (Saccharomyces cerevisiae) is a key model organism for cell cycle studies.
- The small size of yeast cells presents imaging challenges, nearing optical microscope resolution limits.
- Advancements in imaging techniques allow visualization of cellular components in yeast.
Purpose of the Study:
- To describe a detailed protocol for indirect immunofluorescence in fixed yeast cells.
- To enable the localization of endogenously expressed yeast proteins, including Mitotic Exit Network (MEN) components.
- To provide insights into the regulation and distribution of MEN components during the cell cycle.
Main Methods:
- Indirect immunofluorescence staining of fixed Saccharomyces cerevisiae cells.
- Optimization of fixation strategies and cell wall digestion.
- Utilizing primary and secondary antibodies conjugated to fluorescent labels for protein detection.
Main Results:
- Successful localization of endogenously expressed yeast proteins, including MEN components.
- Demonstration of the protocol's efficacy despite the small size of yeast cells.
- Provides a robust method for studying protein distribution in synchronized cell cycles.
Conclusions:
- The described immunofluorescence protocol is effective for visualizing endogenous proteins in budding yeast.
- This technique is crucial for understanding the spatial organization and regulation of key cellular processes like the Mitotic Exit Network.
- Facilitates advanced cell cycle research using Saccharomyces cerevisiae as a model organism.

