Rapid Electrophoretic Staining and Destaining of Polyacrylamide Gels
Abstract
:1. Introduction
2. Experimental Design
2.1 Materials and Methods
2.1.1. Gel Electrophoresis
2.1.2. Conventional CBB Staining and Destaining
2.1.3. Quantification of CBB-Stained Bands
2.2 Experimental Setup
- A semi-dry transfer unit: The semi-dry transfer unit used in this study had an anode and cathode made of stainless and platinum-coated titanium, respectively (Bio craft, Tokyo, Japan, Cat. No.: BE-320). The carbon electrode may absorb CBB and affect the general use for western blotting.
- High current power supply: MP-3AP (Major science, Saratoga, CA, USA) was used in this study.
- Filter paper was cut to the size of a PAGE gel. In this study, 0.9 mm thick filter paper (ATTO, Tokyo, Japan, Cat. No.: CB-09A) was used.
- The cathode staining solution: 20% (v/v) ethanol, 10% (v/v) acetic acid, 0.1 M glycine, and 0.08% (w/v) CBB-R 250.
- The anode solution: 20% (v/v) ethanol, 10% (v/v) acetic acid, and 0.1 M glycine.
- The destaining solution: 20% (v/v) ethanol and 5% (v/v) acetic acid.
3. Procedure
3.1. Fixing Protein Bands by Boiling. Time for Completion: ~5 min
- Immerse a PAGE gel into 50 mL of deionized water in a plastic container, such as a ZipLoc® container (S. C. Johnson, Racine, WI, USA, Cat. No.: small square, 156 × 156 × 57 mm).
- The lid of the container should be opened to release the pressure from the boiled water.
- Heat the solution in a microwave oven at 600 W for 60 s to boil the solution and fix the proteins. Extend the heating time if the solution did not boil.
- Agitate it for more than 2 min to remove SDS and cool by adding water.
3.2. Electrophoretic-Staining/Destaining. Time for Completion: ~20 min
- Soak the filter paper in the cathode staining solution and spread the solution on the cathode of the semi-dry transfer unit with the filter paper, avoiding air bubbles at the interface.
- Place the soaked filter paper on the cathode.
- Immerse the fixed PAGE gel in the anode solution for a few seconds and place it on the filter paper. Avoid air bubbles between the filter paper and the gel.
- Soak a filter paper in the anode solution and place it on the PAGE gel.
- Spread the anode solution on the anode to avoid air bubbles.
- Place the anode on the filter paper.
- Place a weight of ~1 kg on the semi-dry transfer unit for close contact between the filter paper and electrodes.
- Run at a constant current of 1200 mA for 15 min by using a high current power supply. A higher current generates heat, resulting in bending of the gel and uneven destaining.
- If the CBB remained in the gel, change the arrangement of gel and the filter paper and run for an extra ~5 min.
- Wash the semi-dry transfer unit and cool down the electrode before the next staining.
3.3. Secondary Destaining. Time for Completion: 30–60 min
- Heat the gel in the destaining solution in a microwave oven for 40 s and subsequently agitate at room temperature (~25 °C) for 30–60 min for complete destaining. It takes 1–2 h without heating.
- OPTIONAL STEP: If the background level of CBB in the gel is high, replace the destaining solution containing 0.0001% (w/v) CBB R-250 to avoid excess destaining.
4. Expected Results and Discussion
5. Conclusions
6. Reagents Setup
Acknowledgments
Conflicts of Interest
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Motojima, F. Rapid Electrophoretic Staining and Destaining of Polyacrylamide Gels. Methods Protoc. 2018, 1, 13. https://doi.org/10.3390/mps1020013
Motojima F. Rapid Electrophoretic Staining and Destaining of Polyacrylamide Gels. Methods and Protocols. 2018; 1(2):13. https://doi.org/10.3390/mps1020013
Chicago/Turabian StyleMotojima, Fumihiro. 2018. "Rapid Electrophoretic Staining and Destaining of Polyacrylamide Gels" Methods and Protocols 1, no. 2: 13. https://doi.org/10.3390/mps1020013
APA StyleMotojima, F. (2018). Rapid Electrophoretic Staining and Destaining of Polyacrylamide Gels. Methods and Protocols, 1(2), 13. https://doi.org/10.3390/mps1020013