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Real-time Imaging of Single Engineered RNA Transcripts in Living Cells Using Ratiometric Bimolecular Beacons
Published on: August 6, 2014
Simultaneous transport of different localized mRNA species revealed by live-cell imaging
Susanne Lange1, Yoshihiko Katayama, Maria Schmid
1Gene Center, Ludwig-Maximilians-Universität München, Feodor-Lynen-Str 25, D-81377 Munich, Germany.
Abstract:
Intracellular mRNA localization is a common mechanism to achieve asymmetric distributions of proteins. Previous studies have revealed that in a number of cell types, different mRNA species are localized by the same transport machinery. However, it has been unclear if these individual mRNA species are specifically sorted into separate or common ribonucleoprotein (RNP) particles before or during transport. Using budding yeast as a model system, we analyzed the intracellular movement of individual pairs of localized mRNA in live cells. Yeast cells localize more than 20 different mRNAs to the bud with the help of the Myo4p/She3p/She2p protein complex. For live cell imaging, mRNA pairs were tagged with tandem repeats of either bacteriophage MS2 or lambda boxB RNA sequences and fluorescently labeled by fusion protein constructs that bind to the RNA tag sequences. Using three-dimensional, single-particle tracking with dual-color detection, we have tracked the transport of two different localized mRNA species in real time. Our observations show that different localized mRNAs are coassembled into common RNP particles and cotransported in a directional manner to the target site. Nonlocalized mRNAs or mutant mRNAs that lack functional localization signals form separate particles that are not transported to the bud. This study reveals a high degree of co-ordination of mRNA trafficking in budding yeast.
Insights
Localized messenger RNAs (mRNAs) in budding yeast are packaged into common ribonucleoprotein (RNP) particles. These particles are then co-transported to specific cellular destinations, revealing coordinated mRNA trafficking.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Intracellular mRNA localization is crucial for asymmetric protein distribution in cells.
- While the machinery for mRNA transport is known, the specific organization of different mRNAs into transport particles remains unclear.
Purpose of the Study:
- To investigate whether different localized mRNAs are sorted into separate or common ribonucleoprotein (RNP) particles before or during transport.
- To elucidate the coordination of mRNA trafficking in live budding yeast cells.
Main Methods:
- Utilized budding yeast as a model system for live cell imaging.
- Tagged individual mRNA pairs with MS2 or lambda boxB RNA sequences for fluorescent labeling.
- Employed three-dimensional, single-particle tracking with dual-color detection to monitor mRNA movement in real time.
Main Results:
- Observed that different localized mRNAs are coassembled into common RNP particles.
- Demonstrated directional cotransport of these common RNP particles to the bud site.
- Showed that nonlocalized or mutant mRNAs form separate particles and are not bud-localized.
Conclusions:
- Different localized mRNAs in budding yeast are packaged together into common RNP particles for transport.
- This study reveals a high degree of coordination in mRNA trafficking, with specific sorting mechanisms ensuring delivery to the correct cellular location.
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