Team:ITESM-CEM/Project/Materials
From 2014.igem.org
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<p style="text-align: justify; text-justify: inter-word;"> | <p style="text-align: justify; text-justify: inter-word;"> | ||
- | • 2 micro centrifuge tubes | + | • 2 micro centrifuge tubes <br> |
- | • 1 micropipettes set | + | • 1 micropipettes set<br> |
- | • 2 beakers (50 ml ) | + | • 2 beakers (50 ml )<br> |
- | • 1 Mini-Protean System | + | • 1 Mini-Protean System<br> |
- | • B-mercaptoethanol | + | • B-mercaptoethanol <br> |
- | • Running Buffer (1.5M Tris-HCl, pH 8.8) | + | • Running Buffer (1.5M Tris-HCl, pH 8.8) <br> |
- | • Stacking Buffer (0.5 M Tris-HCl pH 6.8) | + | • Stacking Buffer (0.5 M Tris-HCl pH 6.8) <br> |
- | • Running buffer 1X (Tris-Glycine) | + | • Running buffer 1X (Tris-Glycine)<br> |
- | • Laemmli buffer | + | • Laemmli buffer <br> |
- | • Blue Coomasie Solution | + | • Blue Coomasie Solution<br> |
- | • Deionized water | + | • Deionized water <br> |
- | • SDS 10% | + | • SDS 10% <br> |
- | • PSA 10% | + | • PSA 10%<br> |
- | • Molecular weight protein marker (Precision Plus Protein Dual Color Standard BIORAD) | + | • Molecular weight protein marker (Precision Plus Protein Dual Color Standard BIORAD)<br> |
</p> | </p> | ||
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• Use gloves at all times. Acrylamide and bis-acrylamide are extremely toxic. | • Use gloves at all times. Acrylamide and bis-acrylamide are extremely toxic. | ||
- | 1. Check that the glasses (with spacers 1.0 mm), comb and module assembly are clean and dry. | + | 1. Check that the glasses (with spacers 1.0 mm), comb and module assembly are clean and dry. <br> |
- | 2. Place the glasses on the module assembly. | + | 2. Place the glasses on the module assembly. <br> |
- | 3. Prepare the running gel solution as follows by combining the following components in the order they are shown. (mix gently to avoid bubble formation) | + | 3. Prepare the running gel solution as follows by combining the following components in the order they are shown. (mix gently to avoid bubble formation)<br> |
</p> | </p> | ||
- | Table 1. | + | <p><pie><b>Table 1.</b>Preparation of separating gel 15%</p></pie><br> |
+ | <p class="centeredImage"><img src="https://static.igem.org/mediawiki/2014/1/1e/TablaSDS.jpg | ||
+ | " width="500" height="105" hspace="20" BORDER=10></p><br> | ||
<p style="text-align: justify; text-justify: inter-word;"> | <p style="text-align: justify; text-justify: inter-word;"> | ||
- | * The TEMED has to be added until the end, and immediately proceed to the next step, because polymerization will be initiated.</p> | + | * The TEMED has to be added until the end, and immediately proceed to the next step, because polymerization will be initiated.</p><br> |
<p style="text-align: justify; text-justify: inter-word;"> | <p style="text-align: justify; text-justify: inter-word;"> | ||
- | 4. With a micropipette, slowly add the solution to the space between the panes to the mark previously made over the glass | + | 4. With a micropipette, slowly add the solution to the space between the panes to the mark previously made over the glass.<br> |
- | 5. Cover the separator gel solution with a little water and/or ethanol solution and add it slowly. It should avoid the presence of oxygen in the separating gel solution because not blocking free radicals inhibits polymerization. | + | 5. Cover the separator gel solution with a little water and/or ethanol solution and add it slowly. It should avoid the presence of oxygen in the separating gel solution because not blocking free radicals inhibits polymerization.<br> |
- | 6. Wait until the gel solidifies (10-20 min) | + | 6. Wait until the gel solidifies (10-20 min).<br> |
- | 7. Dry the water added in Step 5 with filter paper. Be careful not to damage the gel. | + | 7. Dry the water added in Step 5 with filter paper. Be careful not to damage the gel.<br> |
- | 8. Prepare the stacking gel monomer solution by combining the following components (mix gently to avoid bubble formation) | + | 8. Prepare the stacking gel monomer solution by combining the following components (mix gently to avoid bubble formation).<br> |
</p> | </p> | ||
- | Table 2. | + | <p><pie><b>Table 2.</b>Preparation of 1 stacking gel.</p></pie><br> |
+ | <p class="centeredImage"><img src="https://static.igem.org/mediawiki/2014/b/bb/SDS_PAGE-2.jpg | ||
+ | " width="600" height="210" hspace="20" BORDER=10></p><br> | ||
- | |||
- | 9. With a micropipette, slowly add the solution into the space between the panes, until getting to the edge. | + | <p style="text-align: justify; text-justify: inter-word;"> |
- | 10. Install the comb (10 teeth, thickness 1.0 mm), taking care not to trap any bubbles, because they can cause distortion in the surface of the gel. | + | <br><br> |
- | 11. Wait until the gel solidifies (10-20 min). | + | 9. With a micropipette, slowly add the solution into the space between the panes, until getting to the edge. <br> |
- | 12. Place the gel in the electrophoresis chamber. | + | 10. Install the comb (10 teeth, thickness 1.0 mm), taking care not to trap any bubbles, because they can cause distortion in the surface of the gel. <br> |
- | 13. Fill the upper chamber with running buffer 1X until covering the gel (3 mm above the gel) and the lower chamber to the marked signal. | + | 11. Wait until the gel solidifies (10-20 min).<br> |
+ | 12. Place the gel in the electrophoresis chamber. <br> | ||
+ | 13. Fill the upper chamber with running buffer 1X until covering the gel (3 mm above the gel) and the lower chamber to the marked signal. <br> | ||
14. Using a micropipette, slowly charge the molecular weight marker in the corresponding first well of the gel (10 ul). | 14. Using a micropipette, slowly charge the molecular weight marker in the corresponding first well of the gel (10 ul). | ||
- | 15. Then, load 15 uL of each of the protein samples previously mixed with Laemmli buffer. | + | 15. Then, load 15 uL of each of the protein samples previously mixed with Laemmli buffer. <br> |
- | 16. Close the electrophoresis chamber and connect it to the power source. The program would be, first; 20minutes at 90Volts and then 90 minutes at 130 Volts. | + | 16. Close the electrophoresis chamber and connect it to the power source. The program would be, first; 20minutes at 90Volts and then 90 minutes at 130 Volts.<br> |
- | 17. When the power source program finishes; check that the front of glycine elecrophoretic front is at the end of the gel. Turn power source off and remove the gel from the camera. | + | 17. When the power source program finishes; check that the front of glycine elecrophoretic front is at the end of the gel. Turn power source off and remove the gel from the camera. <br> |
- | 18. Stain the gel with Coomassie solution overnight. Use the volume enough to cover the gel and cover with aluminium. | + | 18. Stain the gel with Coomassie solution overnight. Use the volume enough to cover the gel and cover with aluminium.<br> |
- | 19. Remove the Coomassie solution and now cover the gel with fading solution. After 30 min stirring, remove the solution and then recover it with more solution. Let stirr for another 30 min, until the protein bands have been clearly defined. | + | 19. Remove the Coomassie solution and now cover the gel with fading solution. After 30 min stirring, remove the solution and then recover it with more solution. Let stirr for another 30 min, until the protein bands have been clearly defined. <br> |
- | 20. Visualize the proteins in the gel equipment Quantity One 1-D Analysis Software Bio-Rad. | + | 20. Visualize the proteins in the gel equipment Quantity One 1-D Analysis Software Bio-Rad.<br> |
</p> | </p> | ||
- | |||
<gotop><a href="#top">Back to top ↑</a></gotop><br><br> | <gotop><a href="#top">Back to top ↑</a></gotop><br><br> | ||
+ | |||
+ | <a name="Seven"><h2>Expression of Recombinant Protein Protocol</h2></a> | ||
+ | |||
+ | <h4>Materials and Reagents</h4> | ||
+ | <p style="text-align: justify; text-justify: inter-word;"> | ||
+ | -LB broth<br> | ||
+ | -IPTG solution (1 M)<br> | ||
+ | -Sterile microtubes (1.5 ml)<br> | ||
+ | -Sterile test tubes (15 ml)<br> | ||
+ | -Sterile Erlenmeyer Flasks (250 ml)<br> | ||
+ | -Micopipettes (200 ul and 1000 ul)<br> | ||
+ | -Sterile pipette tips<br> | ||
+ | -Laminar flow hood<br> | ||
+ | -Incubation chamber (or Shaker) at 37ºC<br> | ||
+ | -Centrifuge<br></p> | ||
+ | |||
+ | <h4>Experimental Procedure</h4> | ||
+ | <p style="text-align: justify; text-justify: inter-word;">Firstly, 40ml of LB broth is poured into an Erlenmeyer flask; then a defined volume of ampicillin solution (100 mg/ml) is added until concentration of 100 ug/ml is reached. | ||
+ | Once the antibiotic concentration is adjusted, the required bacterial strain is inoculated into the LB broth-containing flask. The Erlenmeyer flasks are incubated for 16 hours at 37°C and 150 rpm. | ||
+ | With this 16h culture, another LB broth/Amp+ containing flask is inoculated until it reaches OD 0.5-0.6 in aproximately 3-4 hours. <br></p> | ||
+ | <p style="text-align: justify; text-justify: inter-word;"> | ||
+ | Then, a defined volume of IPTG solution (1 M) is added to the 40 ml Erlenmeyer flask until the liquid reaches a concentration of 1 mM IPTG. Immediately, a 1 ml sample is taken from the flask in order to perform an SDS-PAGE analysis. The flask is then returned to the incubating conditions: 37°C and 150 rpm, where it remains for 6 hours. | ||
+ | Each hour, the OD has to be measured and a sample has to be taken for an SDS-analysis of expression induction. | ||
+ | After taking all samples, each one has to be centrifuged and the biomass has to be recovered. According to the different OD of each sample, the volume of laemmli Buffer for the SDS-analysis is defined. The SDS PAGE analysis is then performed. | ||
+ | </p> | ||
+ | |||
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Revision as of 03:12, 18 October 2014
ITESM-CEM | Enzy7-K me |
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