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Updated: Dec 7, 2025

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Published on: March 9, 2016
Two- and Three-Dimensional Tracking of MFA2 mRNA Molecules in Mating Yeast
Polina Geva1, Konstantin Komoshvili2, Stella Liberman-Aronov1
1Department of Molecular Biology, Ariel University, Ariel 40700, Israel.
Abstract:
Intracellular mRNA transport contributes to the spatio-temporal regulation of mRNA function and localized translation. In the budding yeast, Saccharomyces cerevisiae, asymmetric mRNA transport localizes ~30 specific mRNAs including those encoding polarity and secretion factors, to the bud tip. The underlying process involves RNA-binding proteins (RBPs), molecular motors, processing bodies (PBs), and the actin cytoskeleton. Recently, pheromone a-factor expression in mating yeast was discovered to depend on proper localization of its mRNA, MFA2 mRNAs in conjunction with PBs cluster at the shmoo tip to form "mating bodies", from which a-factor is locally expressed. The mechanism ensuring the correct targeting of mRNA to the shmoo tip is poorly understood. Here we analyzed the kinetics and trajectories of MFA2 mRNA transport in living, alpha-factor treated yeast. Two- (2D) and three-dimensional (3D) analyses allowed us to reconstruct the granule tracks and estimate granule velocities. Tracking analysis of single MFA2 mRNA granules, labeled using a fluorescent aptamer system, demonstrated three types movement: vibrational, oscillatory and translocational. The mRNA granule transport was complex; a granule could change its movement behavior and composition during its journey to the shmoo. Processing body assembly and the actin-based motor, Myo4p, were involved in movement of MFA2 mRNA to the shmoo, but neither was required, indicating that multiple mechanisms for translocation were at play. Our visualization studies present a dynamic view of the localization mechanism in shmoo-bearing cells.
Insights
mRNA granules move to the yeast shmoo tip via complex transport, involving processing bodies and motors, but not exclusively, revealing multiple localization mechanisms.
Area of Science:
- Cell Biology
- Molecular Biology
- Biophysics
Background:
- Intracellular mRNA transport regulates gene expression spatially and temporally.
- In yeast, mRNA localization to the bud tip is crucial for polarity and secretion.
- Mating factor mRNA (MFA2) localization to the shmoo tip is essential for mating, but the mechanism is unclear.
Purpose of the Study:
- To investigate the kinetics and trajectories of MFA2 mRNA transport in mating yeast.
- To understand the mechanisms underlying mRNA targeting to the shmoo tip.
- To visualize and analyze the dynamic behavior of mRNA granules during transport.
Main Methods:
- Live-cell imaging of fluorescently labeled MFA2 mRNA granules in alpha-factor treated yeast.
- Two-dimensional (2D) and three-dimensional (3D) tracking analysis to reconstruct granule trajectories.
- Estimation of granule velocities and analysis of movement patterns (vibrational, oscillatory, translocational).
Main Results:
- MFA2 mRNA granules exhibit complex transport dynamics, including vibrational, oscillatory, and translocational movements.
- Granule behavior and composition can change during transport to the shmoo.
- Processing body assembly and the Myo4p motor are involved but not essential for MFA2 mRNA translocation.
Conclusions:
- Multiple mechanisms contribute to MFA2 mRNA transport to the shmoo tip in yeast.
- The transport process is dynamic and adaptable, with granules potentially altering their movement strategies.
- This study provides a dynamic visualization of mRNA localization mechanisms in shmoo-bearing cells.

