This manuscript describes a method to visualize and quantify localized translation events in subcellular compartments. The approach proposed in this manuscript requires a basic confocal imaging system and reagents and is rapid and cost-effective.
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Method Article
This manuscript describes a method to visualize and quantify localized translation events in subcellular compartments. The approach proposed in this manuscript requires a basic confocal imaging system and reagents and is rapid and cost-effective.
The mechanisms regulating mRNA translation are involved in various biological processes, such as germ line development, cell differentiation, and organogenesis, as well as in multiple diseases. Numerous publications have convincingly shown that specific mechanisms tightly regulate mRNA translation. Increased interest in the translation-induced regulation of protein expression has led to the development of novel methods to study and follow de novo protein synthesis in cellulo. However, most of these methods are complex, making them costly and often limiting the number of mRNA targets that can be studied. This manuscript proposes a method that requires only basic reagents and a confocal fluorescence imaging system to measure and visualize the changes in mRNA translation that occur in any cell line under various conditions. This method was recently used to show localized translation in the subcellular structures of adherent cells over a short period of time, thus offering the possibility of visualizing de novo translation for a short period during a variety of biological processes or of validating changes in translational activity in response to specific stimuli.
The regulation of translation by different cellular functions has prompted many research teams to develop new tools and methods to determine the subcellular localization of mRNA translation and regulated protein synthesis1,2,3,4. These recent technological advances allow for an improved understanding of the mechanisms involving translation upregulation or the repression of specific mRNAs during biological processes, such as neuronal development, drug response, and metastasis5,6,....
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1. Determination of Puromycilation Conditions
NOTE: This technique describes the method used to assess localized translation during the MRC-5 cell adhesion process5. As puromycilation can be done in any cell, it is important to optimize the puromycilation conditions for the specific cell lines to be used, because the treatment conditions are not identical for each cell line in terms of the puromycin concentration and the desired incubation time. To show how these conditions are defined, three example cell lines (i.e., HeLa, MRC-5, and Huh-7) were treated with increasing concentrations of puromycin for differen....
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To accurately observe translation events using puromycin incorporation, it is critical to determine the optimal conditions for each cell line because each shows different puromycin incorporation kinetics (Figure 1)9,11,12,18. Hence, to validate puromycin incorporation, it is necessary to treat the desired cell line with a standardiz.......
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Recent technological advances have allowed for a better understanding of the mechanisms involved in translational upregulation or the repression of specific mRNAs in biological processes, such as neuronal development, drug response, and metastasis. The cost-effective methodology described here allows translation events to be visualized in cells to study how RNA-binding proteins regulate metastatic processes, such as cellular adhesion, migration, and invasion.
Although numerous methods to asses.......
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The authors have nothing to disclose.
We thank Dr. Rachid Mazroui (Université Laval, Québec, Canada) for the critical reading of the manuscript. We thank the Cell Imaging Unit of the Research Center for their technical assistance. M.-É. Huot is a Junior 1 Research Scholar of the Fonds de Recherche du Québec-Santé (FRQ-S). This work was supported by the Canadian Institutes of Health Research (grant number CIHR, MOP-286437 to M.-É. Huot).
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| DMEM | wisent | 319-005-CL | |
| Trypsine | wisent | 325-043 EL | |
| FBS | Thermo Fisher Scientific | 12483020 | |
| Puroycin antibody 12D10 | EMD millipore | MABE343 | western blot dilution 1:25,000 Immunofluoresence dilution 1:10,000 |
| Anti-mouse IgG, HRP-linked Antibody | cell signaling technology | 7076 | western blot dilution 1:8,000 |
| Western Lightning Plus-ECL | Perkin Elmer | NEL104001EA | |
| Anti-mouse IgG (H+L), F(ab')2 Fragment (Alexa Fluor 488 Conjugate) | cell signaling technology | 4408 | immunofluoresecence dilution 1:400 |
| CF568 Phalloidin | biotium | 00044 | immunofluoresecence dilution 1:400 |
| Cyclohexmide | Sigma | C1988-1G | 50µg/ml final concentration |
| DAPI (4',6-Diamidino-2-Phenylindole, Dihydrochloride) | Invitrogen | D1306 | final concentration 1µg/ml |
| Puromycin | bio-Basic | PJ593 | 2.5µg/ml to 10µg/ml |
| Ibidi µ-Dish 35 mm, high, ibiTreat | Ibidi | 81156 | |
| MRC-5 cells | ATCC | CCL-171 | |
| HeLa cells | ATCC | CCL-2 | |
| Huh-7 cells | from Dr. Mazroui (Université Laval) | ||
| Fv1000 | olympus | confocal imaging system | |
| Fiji software | http://fiji.sc | ||
| PBS (Phosphate BuffeRed Saline) | bio-Basic | PD8117 | |
| Formaldehyde 37% Solution | bio-Basic | C5300-1 | |
| Triton X-100 | bio-Basic | TB0198 | |
| BSA | Fisher Bioreagents | BP9702-100 | |
| Tween20 | Fisher Bioreagents | BP337-500 |
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