Team:SDU-Denmark/protocols

From 2010.igem.org

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Protocols  
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Protocols <br>
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''''' Any deviation from these protocols will be noted in the [[https://2010.igem.org/Team:SDU-Denmark/labnotes Labnotes]]
''''' Any deviation from these protocols will be noted in the [[https://2010.igem.org/Team:SDU-Denmark/labnotes Labnotes]]
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<br><br>
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----
----
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<br><br>
__TOC__
__TOC__
=== Colony PCR ===
=== Colony PCR ===
-
 
+
<br>
-
How to amplify DNA from bacteria colonies and solutions
+
How to amplify DNA from bacteria colonies and solutions <br><br>
-
 
+
''Important remarks'' <br><br>
-
 
+
All solutions should be kept at ice until run of PCR <br><br>
-
''Important remarks''
+
-
 
+
-
All solutions should be kept at ice until run of PCR
+
-
 
+
-
 
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''Materials ''
''Materials ''
-
 
+
<br>
-
Premix Phu-PCR
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Premix Phu-PCR <br><br>
-
 
+
For 1 PCR reaction:<br><br>
-
For 1 PCR reaction:
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• 5 µL Phu-buffer <br><br>
-
 
+
• 1.5 µL 10mM dNTP mix <br><br>
-
 
+
• 1.5 µL 10pmol/µL forward primer <br><br>
-
• 5 µL Phu-buffer
+
• 1.5 µL 10pmol/µL reverse primer <br><br>
-
 
+
• 0.5 µL Pfu polymerase enzyme (add just before PCR run)<br><br>
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• 1.5 µL 10mM dNTP mix
+
• 40 µL H2O <br><br>
-
 
+
Total vol.: 5O µL <br><br>
-
• 1.5 µL 10pmol/µL forward primer
+
Premix TAQ-PCR (no proofreading): <br>
-
 
+
For 1 PCR reaction <br><br>
-
• 1.5 µL 10pmol/µL reverse primer  
+
• 2.5 µL 10x TAQ-buffer + MgCl2 <br><br>
-
 
+
• 0.5 µL 10mM dNTP mix <br><br>
-
• 0.5 µL Pfu polymerase enzyme (add just before PCR run)
+
• 1.25 µL 10pmol/µL forward primer <br><br>
-
 
+
• 1.25 µL 10pmol/µL reverse primer <br><br>
-
• 40 µL H2O
+
• 0.25 µL TAQ polymerase enzyme (add just before PCR run)<br><br>
-
 
+
• 19.25 µL H2O <br><br>
-
Total vol.: 5O µL
+
Total vol.: 25 µL <br><br>
-
 
+
-
 
+
-
Premix TAQ-PCR (no proofreading):
+
-
 
+
-
For 1 PCR reaction
+
-
 
+
-
• 2.5 µL 10x TAQ-buffer + MgCl2
+
-
 
+
-
• 0.5 µL 10mM dNTP mix
+
-
 
+
-
• 1.25 µL 10pmol/µL forward primer  
+
-
 
+
-
• 1.25 µL 10pmol/µL reverse primer  
+
-
 
+
-
• 0.25 µL TAQ polymerase enzyme (add just before PCR run)
+
-
 
+
-
• 19.25 µL H2O
+
-
 
+
-
Total vol.: 25 µL
+
-
 
+
-
 
+
The TAQ polymerase has no proofreading, and should therefore only be used for size determination of DNA fragments. When PCR-product is to be purified and used for further experiments always use Phu polymerase!!!
The TAQ polymerase has no proofreading, and should therefore only be used for size determination of DNA fragments. When PCR-product is to be purified and used for further experiments always use Phu polymerase!!!
-
Make enough premix for your number of colonies +3
+
Make enough premix for your number of colonies +3. <br><br>
-
 
+
''Protocol''
''Protocol''
-
 
+
<br>
-
Colony PCR:
+
Colony PCR: <br><br>
-
 
+
1. Select and transfer a single colony to a PCR tube with a pipette tip (afterwards use the same for plating out on plates)<br><br>
-
1. Select and transfer a single colony to a PCR tube with a pipette tip (afterwards use the same for plating out on plates)
+
2. Add all of the H2O used in the premix to the PCR tubes and place them in the microwave at full power for 2 min. with an open lid. <br><br>
-
 
+
3. Make the premix (without water). Do not add enzyme until just before premix is added to the PCR tubes. Mix the premix by pipetting up and down (do not vortex!)<br><br>
-
2. Add all of the H2O used in the premix to the PCR tubes and place them in the microwave at full power for 2 min. with an open lid.
+
4. Add premix to each PCR tube. <br><br>
-
 
+
5. Run PCR <br><br>
-
3. Make the premix (without water). Do not add enzyme until just before premix is added to the PCR tubes. Mix the premix by pipetting up and down (do not vortex!)
+
PCR of DNA in solutions: <br><br>
-
 
+
1. Transfer 1-2 µL of DNA to each PCR tube (to obtain the correct total volume adjust the volume of the H2O)<br><br>
-
4. Add premix to each PCR tube.
+
2. Make the premix(do not add enzyme until just before premix is added to the PCR tubes). Mix the premix by pipetting up and down (do not vortex!)<br><br>
-
 
+
3. Add premix to each PCR tube. <br><br>
-
5. Run PCR
+
4. Run PCR. <br><br>
-
 
+
PCR program: <br><br>
-
PCR of DNA in solutions:
+
-
 
+
-
1. Transfer 1-2 µL of DNA to each PCR tube (to obtain the correct total volume adjust the volume of the H2O)
+
-
 
+
-
2. Make the premix(do not add enzyme until just before premix is added to the PCR tubes). Mix the premix by pipetting up and down (do not vortex!)
+
-
 
+
-
3. Add premix to each PCR tube.
+
-
 
+
-
4. Run PCR
+
-
 
+
-
 
+
-
PCR program:
+
-
 
+
''''' Other programs have been used as well '''''
''''' Other programs have been used as well '''''
-
 
+
<br>
[[Image:Team-SDU-Denmark-PCR_protocol.JPG]]
[[Image:Team-SDU-Denmark-PCR_protocol.JPG]]
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+
<br>
=== Making competent cells of E. coli for transformation ===
=== Making competent cells of E. coli for transformation ===
-
 
+
<br>
-
How to make competent cells for transformation
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How to make competent cells for transformation <br><br>
-
 
+
Compotent cells enough for 12 transformations <br><br>
-
 
+
-
Compotent cells enough for 12 transformations
+
-
 
+
-
 
+
''Important remarks''
''Important remarks''
-
 
+
<br>
-
Use 2 ml eppendorf tubes
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Use 2 ml eppendorf tubes <br><br>
-
 
+
Cool eppendorf tubes at 4°C prior to use <br><br>
-
Cool eppendorf tubes at 4°C prior to use
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Cool 50 ml 50 mM CaCl2 at 4°C prior to use <br><br>
-
 
+
-
Cool 50 ml 50 mM CaCl2 at 4°C prior to use
+
-
 
+
-
 
+
''Materials''
''Materials''
-
 
+
<br>
-
• ON culture of TOP10 cells in LB media
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• ON culture of TOP10 cells in LB media <br><br>
-
 
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• Ice cold 50mM CaCl2 <br><br>
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• Ice cold 50mM CaCl2
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• LB media (pre-heated to 37°C)<br><br>
-
 
+
-
• LB media (pre-heated to 37°C)
+
-
 
+
-
 
+
''Protocol''
''Protocol''
-
 
+
<br>
-
1. Dilute the culture to OD550 = 0,02 in 110 ml of LB. Incubate at 37°C with shaking until OD550 reaches 0.5
+
1. Dilute the culture to OD550 = 0,02 in 110 ml of LB. Incubate at 37°C with shaking until OD550 reaches 0.5 <br><br>
-
 
+
2. Divide the cells in 2x55 ml and transfer to Falcon tubes (the can hold only 55 ml). ''From now on proceed with the 2 tubes in parallel'' <br><br>
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2. Divide the cells in 2x55 ml and transfer to Falcon tubes (the can hold only 55 ml). ''From now on proceed with the 2 tubes in parallel''
+
3. move the CaCl2 to -20°C <br><br>
-
 
+
4. Harvest cells by centrifugation at 4100 rpm (2160 G) at 4°C for 10 min. <br><br>
-
3. move the CaCl2 to -20°C
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5. Discard the supernatant (keep the cells on ice!)<br><br>
-
 
+
6. Resuspend cells gently in 5 ml ice cold CaCl2 (50 mM) taken from -20°C and kept on ice. <br><br>
-
4. Harvest cells by centrifugation at 4100 rpm (2160 G) at 4°C for 10 min.
+
7. Repeat the centrifugation step. <br><br>
-
 
+
8. Discard the supernatant and resuspend cells in 1.2 ml of icecold CaCl2 (keep the cells on ice!)<br><br>
-
5. Discard the supernatant (keep the cells on ice!)
+
9. Leave the cells on ice for 30 min => now the cells are ready for transformation. <br><br>
-
 
+
-
6. Resuspend cells gently in 5 ml ice cold CaCl2 (50 mM) taken from -20°C and kept on ice.
+
-
 
+
-
7. Repeat the centrifugation step.
+
-
 
+
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8. Discard the supernatant and resuspend cells in 1.2 ml of icecold CaCl2 (keep the cells on ice!)
+
-
 
+
-
9. Leave the cells on ice for 30 min => now the cells are ready for transformation.
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-
 
+
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=== Transformation ===
=== Transformation ===
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<br>
How to transform compotent cells  
How to transform compotent cells  
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+
<br>
-
 
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''Important remarks''
''Important remarks''
-
 
+
<br>
-
Pre-heat LB media to 37°C
+
Pre-heat LB media to 37°C <br><br>
-
 
+
Pre-dry LA plates with the appropriate antibiotics. <br><br>
-
Pre-dry LA plates with the appropriate antibiotics.
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Pre-cool 2 mL eppendorf tubes. <br><br>
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+
Keep cells on ice at all times!! <br><br>
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Pre-cool 2 mL eppendorf tubes.
+
-
 
+
-
Keep cells on ice at all times!!
+
-
 
+
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'''Remember controls:'''
'''Remember controls:'''
-
 
+
<br>
-
'''Positive control with your uncut vector'''
+
'''Positive control with your uncut vector''' <br><br>
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+
'''Negative control with no DNA''' <br><br>
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'''Negative control with no DNA'''
+
''Materials''  
-
 
+
<br>
-
 
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• Freshly made compotent E. coli cells. <br><br>
-
''Materials''
+
• LA plates with appropriate antibiotics <br><br>
-
 
+
• LB media <br><br>
-
• Freshly made compotent E. coli cells
+
''Protocol''  
-
 
+
<br>
-
• LA plates with appropriate antibiotics
+
1. Transfer 5 µl DNA (plasmid or ligation mix) to precooled eppendorf tubes. <br><br>
-
 
+
2. Transfer 200 µl of cells with to the tube and mix by pipetting up and down '''(keep the cells on ice at all times)''' <br><br>
-
• LB media  
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3. Leave on ice for 30 min. <br><br>
-
 
+
4. Heat shock for 90 sec. at 42°C in a water bath, do not shake tubes. <br><br>
-
 
+
5. Place on ice for 2 min. <br><br>
-
''Protocol''
+
6. Add 1.5 mL of preheated LB media (37°C) <br><br>
-
 
+
7. Incubate at 37°C for 1 hour with gentle shaking.<br><br>
-
1. Transfer 5 µl DNA (plasmid or ligation mix) to precooled eppendorf tubes.
+
8. Plate 2 plates with 150 µl mixture on LA plates with the appropriate antibiotics. <br><br>
-
 
+
9. Pellet the remaining cells 5 min at 3500 rpm and discard approximately 900 µl of the supernatant. <br><br>
-
2. Transfer 200 µl of cells with to the tube and mix by pipetting up and down '''(keep the cells on ice at all times)'''  
+
10. Resuspend cells and plate out on LA plates with appropriate antibiotics. <br><br>
-
 
+
11. Incubate all plates ON at 37°C <br><br>
-
3. Leave on ice for 30 min.
+
-
 
+
-
4. Heat shock for 90 sec. at 42°C in a water bath, do not shake tubes.
+
-
 
+
-
5. Place on ice for 2 min.
+
-
 
+
-
6. Add 1.5 mL of preheated LB media (37°C)
+
-
+
-
7. Incubate at 37°C for 1 hour with gentle shaking.
+
-
 
+
-
8. Plate 2 plates with 150 µl mixture on LA plates with the appropriate antibiotics.
+
-
 
+
-
9. Pellet the remaining cells 5 min at 3500 rpm and discard approximately 900 µl of the supernatant.
+
-
 
+
-
10. Resuspend cells and plate out on LA plates with appropriate antibiotics.
+
-
 
+
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11. Incubate all plates ON at 37°C
+
-
 
+
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+
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+
=== Restriction digest ===
=== Restriction digest ===
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<br>
-
How to digest DNA using fast digest restriction enzymes
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How to digest DNA using fast digest restriction enzymes. <br><br>
-
 
+
''Important remarks''  
-
 
+
<br>
-
''Important remarks''
+
Remember to load a documentation slot next to the marker and take a picture of this for later documentation. <br><br>
-
 
+
''Materials''  
-
Remember to load a documentation slot next to the marker and take a picture of this for later documentation
+
<br>
-
 
+
Restriction mixture:<br><br>
-
 
+
For 1 digest reaction. <br><br>
-
''Materials''
+
• 24 µL H2O (or 26 µL if only one restriction enzyme is used) <br><br>
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+
• 2 µL enzyme A <br><br>
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+
• 2 µL enzyme B <br><br>
-
Restriction mixture:
+
• 4 µL Fast Digest green buffer <br><br>
-
 
+
• 10 µL PCR product <br><br>
-
For 1 digest reaction
+
''Protocols'' <br>
-
 
+
1. Prepare a purification gel <br><br>
-
• 24 µL H2O (or 26 µL if only one restriction enzyme is used)
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2. Mix the restriction mixture in en eppendorf tube by pipetting up and down <br><br>
-
 
+
3. Leave for 5 min. at 37°C (no shaking!)<br><br>
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• 2 µL enzyme A  
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4. Immidiately load the restriction mixture in the gel <br><br>
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+
5. Run the gel and perform a purification step <br><br>
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• 2 µL enzyme B
+
-
 
+
-
• 4 µL Fast Digest green buffer
+
-
 
+
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• 10 µL PCR product
+
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+
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+
-
''Protocols''
+
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+
-
1. Prepare a purification gel
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-
 
+
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2. Mix the restriction mixture in en eppendorf tube by pipetting up and down
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-
 
+
-
3. Leave for 5 min. at 37°C (no shaking!)
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-
 
+
-
4. Immidiately load the restriction mixture in the gel
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+
-
5. Run the gel and perform a purification step
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-
 
+
=== Ligation ===
=== Ligation ===
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How to assemble DNA biobricks  
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<br>
-
 
+
How to assemble DNA biobricks <br><br>
''Materials''
''Materials''
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+
<br>
-
Ligation mixture:
+
Ligation mixture: <br><br>
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+
For 1 ligation reaction <br><br>
-
For 1 ligation reaction
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• 2 µL 10x T4 ligase buffer <br><br>
-
 
+
• 1 µL T4 ligase (add last!)<br><br>
-
• 2 µL 10x T4 ligase buffer
+
• 5 µL PCR product (cut) of each brick which is to be ligated – or 1 part plasmid and 5 part bricks <br><br>
-
 
+
-
• 1 µL T4 ligase (add last!)
+
-
 
+
-
• 5 µL PCR product (cut) of each brick which is to be ligated – or 1 part plasmid and 5 part bricks
+
-
 
+
-
 
+
''Protocol''
''Protocol''
-
 
+
<br>
-
1. Prepare the ligation mixture and mix by pipetting up and down
+
1. Prepare the ligation mixture and mix by pipetting up and down <br><br>
-
 
+
2. Leave the mixture over-night at 17°C <br><br>
-
2. Leave the mixture over-night at 17°C
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3. Test ligation using TAQ-PCR and run test gel afterwards in order to check that the PCR product has the right size <br><br>
-
 
+
-
3. Test ligation using TAQ-PCR and run test gel afterwards in order to check that the PCR product has the right size
+
-
 
+
=== DNA extraction from gel (fermentas) ===
=== DNA extraction from gel (fermentas) ===
-
 
+
<br>
-
How to extract and purify DNA from gel
+
How to extract and purify DNA from gel <br><br>
-
 
+
''Important remarks''
''Important remarks''
-
 
+
<br>
-
All steps should be carried out at room temperature.
+
All steps should be carried out at room temperature. <br><br>
-
All centrifugations should be carried out in a table-top microcentrifuge at >12000x g  
+
All centrifugations should be carried out in a table-top microcentrifuge at >12000x g <br><br>
-
 
+
-
 
+
''Materials''
''Materials''
-
 
+
<br>
-
• Binding buffer  
+
• Binding buffer <br><br>
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+
• Wash buffer (diluted with ethanol)<br><br>
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• Wash buffer (diluted with ethanol)
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• Elution buffer <br><br>
-
 
+
-
• Elution buffer
+
-
 
+
-
 
+
''Protocol''
''Protocol''
-
 
+
<br>
-
1. Weigh a 1.5 µL tube
+
1. Weigh a 1.5 µL tube <br><br>
-
 
+
2. Excise gel slice containing the DNA fragment using a clean scalpel (cut as close to the DNA as possible)<br><br>
-
2. Excise gel slice containing the DNA fragment using a clean scalpel (cut as close to the DNA as possible)
+
3. Place the gel slice into the pre-weighed tube and record the weight of the gel slice <br><br>
-
 
+
4. Add 1:1 volume of binding buffer to the gel slice (e.g. add 100 µL of binding buffer for every 100 mg of agarose gel)<br><br>
-
3. Place the gel slice into the pre-weighed tube and record the weight of the gel slice
+
5. Incubate the gel mixture at 50-60°C for 10 min. or until the gel slice is completely dissolved. Mix the tube by inversion every few minutes. ''The color of the solution should be yellow. If the color of the solution is orange or violet add 10 µL 3M sodium acetate , pH 5.2 and mix. The color will then turn yellow.'' <br><br>
-
 
+
6. Transfer up to 800 µL of the solubilized gel solution to the GeneJET purification column. Centrifuge for 1 min. Discard the flow-through and place column back into the same collection tube. <br><br>
-
4. Add 1:1 volume of binding buffer to the gel slice (e.g. add 100 µL of binding buffer for every 100 mg of agarose gel)
+
7. Add 700 µL of Wash buffer to the column. Centrifuge for 1 min. Discard flow-through and place the column back into the collection tube. <br><br>
-
 
+
8. Centrifuge the empty column for an additional 1 min. to completely remove residual Wash buffer ''This step is essential to avoid residual ethanol in the purified DNA solution'' <br><br>
-
5. Incubate the gel mixture at 50-60°C for 10 min. or until the gel slice is completely dissolved. Mix the tube by inversion every few minutes. ''The color of the solution should be yellow. If the color of the solution is orange or violet add 10 µL 3M sodium acetate , pH 5.2 and mix. The color will then turn yellow.''
+
9. Transfer the column into a clean 1.5 mL microcentrifuge tube. Add 50 µL of Elution buffer to the center of the column membrane. Centrifuge for 1 min. <br><br>
-
 
+
10. Discard the column and store the purified DNA at -20°C. <br><br>
-
6. Transfer up to 800 µL of the solubilized gel solution to the GeneJET purification column. Centrifuge for 1 min. Discard the flow-through and place column back into the same collection tube
+
-
 
+
-
7. Add 700 µL of Wash buffer to the column. Centrifuge for 1 min. Discard flow-through and place the column back into the collection tube
+
-
 
+
-
8. Centrifuge the empty column for an additional 1 min. to completely remove residual Wash buffer ''This step is essential to avoid residual ethanol in the purified DNA solution''
+
-
+
-
9. Transfer the column into a clean 1.5 mL microcentrifuge tube. Add 50 µL of Elution buffer to the center of the column membrane. Centrifuge for 1 min.
+
-
 
+
-
10. Discard the column and store the purified DNA at -20°C
+
-
 
+
-
 
+
=== Genomic DNA purification ===
=== Genomic DNA purification ===
-
 
+
<br>
-
How to extract and purify genomic DNA
+
How to extract and purify genomic DNA <br><br>
-
 
+
''Important remarks''
''Important remarks''
-
 
+
<br>
-
All steps should be carried out at room temperature
+
All steps should be carried out at room temperature. <br><br>
-
 
+
Be sure to mix thoroughly when adding the solutions. <br><br>
-
Be sure to mix thoroughly when adding the solutions
+
Addition and removal of chloroform should be carried out in fume hood. <br><br>
-
 
+
-
Addition and removal of chloroform should be carried out in fume hood
+
-
 
+
''Materials''
''Materials''
-
 
+
<br>
-
• Lysis solution
+
• Lysis solution <br><br>
-
 
+
• Chloroform <br><br>
-
• Chloroform
+
• Precipitation solution (80 µL is diluted in 720 µL of H2O just prior to use) <br><br>
-
 
+
• 1.2M NaCl solution <br><br>
-
• Precipitation solution (80 µL is diluted in 720 µL of H2O just prior to use)
+
• Ice cold ethanol (70%) <br><br>
-
 
+
• H2O <br><br>
-
• 1.2M NaCl solution
+
-
 
+
-
• Ice cold ethanol (70%)
+
-
 
+
-
• H2O
+
-
 
+
''Protocol''
''Protocol''
-
 
+
<br>
-
1. Mix 200 µL of sample (ON culture) with 400 µL of Lysis solution and incubate at 65°C for 5 min.''If a frozen sample is used lysis solution should be added before thawing and incubated at 65°Cfor 10 min. with occasional inverting the tube.''
+
1. Mix 200 µL of sample (ON culture) with 400 µL of Lysis solution and incubate at 65°C for 5 min.''If a frozen sample is used lysis solution should be added before thawing and incubated at 65°Cfor 10 min. with occasional inverting the tube.'' <br><br>
-
 
+
2. Immediately add 600 µL of chloroform, gently emulsify by inversion (3-5 times) and centrifuge the sample at 10.000 rpm for 2 min. <br><br>
-
2. Immediately add 600 µL of chloroform, gently emulsify by inversion (3-5 times) and centrifuge the sample at 10.000 rpm for 2 min.
+
3. Prepare precipitation solution. <br><br>
-
 
+
4. Transfer the upper aqueous phase containing DNA to a new tube and add 800 µL of freshly prepared precipitation solution, mix gently by several inversions at room temperature for 1-2 min. and centrifuge at 10.000 rpm for 2 min. <br><br>
-
3. Prepare precipitation solution
+
5. Remove supernatant completely  (do not dry) and dissolve DNA pellet in 100 µL of 1.2M NaCl solution by gentle vortexing (make sure that the pellet is completely dissolved) ''To avoid loosening the pellet, keep the tube in the same angle as when placed in the centrifuge!'' <br><br>
-
 
+
6. Add 300 µL of cold ethanol, let the DNA precipitate (10 min. at -20°C) and spin down (10.00 rpm, 3-4 min.).''Pour off the ethanol and dissolve DNA in 15 µL of sterile dH2O by gentle vortexing.'' <br><br>
-
4. Transfer the upper aqueous phase containing DNA to a new tube and add 800 µL of freshly prepared precipitation solution, mix gently by several inversions at room temperature for 1-2 min. and centrifuge at 10.000 rpm for 2 min.
+
7. Measure DNA concentration on nanodrop. <br><br>
-
 
+
8. Store DNA at -20°C <br><br>
-
5. Remove supernatant completely  (do not dry) and dissolve DNA pellet in 100 µL of 1.2M NaCl solution by gentle vortexing (make sure that the pellet is completely dissolved) ''To avoid loosening the pellet, keep the tube in the same angle as when placed in the centrifuge!''
+
-
 
+
-
6. Add 300 µL of cold ethanol, let the DNA precipitate (10 min. at -20°C) and spin down (10.00 rpm, 3-4 min.).''Pour off the ethanol and dissolve DNA in 15 µL of sterile dH2O by gentle vortexing.''
+
-
 
+
-
7. Measure DNA concentration on nanodrop.
+
-
 
+
-
8. Store DNA at -20°C
+
-
 
+
-
 
+
-
 
+
=== Plasmid miniprep kit (Fermentas) ===
=== Plasmid miniprep kit (Fermentas) ===
-
 
+
<br>
-
How to isolate plasmids from cultures
+
How to isolate plasmids from cultures <br><br>
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''Important remarks''
''Important remarks''
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<br>
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All steps should be carried out at room temperature
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All steps should be carried out at room temperature. <br><br>
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Step 1 and 2 must be carried out in the micro lab. <br><br>
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Step 1 and 2 must be carried out in the micro lab
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''Materials''
''Materials''
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<br>
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• Resuspension solution (with RNase A)
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• Resuspension solution (with RNase A) <br><br>
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• Lysis solution <br><br>
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• Lysis solution
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• Neutralization solution <br><br>
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• Wash solution (diluted with ethanol)<br><br>
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• Neutralization solution
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• Elution solution <br><br>
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• Wash solution (diluted with ethanol)
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• Elution solution
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''Protocol''
''Protocol''
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<br>
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1. Resuspend pelleted cells in 250 µL Resuspension solution. Resuspend completely by vortexing. Transfer the cell suspension to microcentrifuge tubes.
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1. Resuspend pelleted cells in 250 µL Resuspension solution. Resuspend completely by vortexing. Transfer the cell suspension to microcentrifuge tubes. <br><br>
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2. Add 250 µL Lysis solution and mix thoroughly by inverting the tube 4-6 times until the solution is viscous and slighty clear. (Do not vortex!)<br><br>
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2. Add 250 µL Lysis solution and mix thoroughly by inverting the tube 4-6 times until the solution is viscous and slighty clear. (Do not vortex!)
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3. Add 350 µL Neutralization buffer and mix immediately and thoroughly by inverting the tube 4-6 times. (It is important to mix gently to avoid localized precipitation)<br><br>
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4. Centrifuge for 5 min. to pellet cell debris and chromosomal DNA. <br><br>
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3. Add 350 µL Neutralization buffer and mix immediately and thoroughly by inverting the tube 4-6 times. (It is important to mix gently to avoid localized precipitation)
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5. Transfer supernatant to the supplied GeneJet spin column, without disturbing or transferring the white precipitate. <br><br>
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6. Cenntrifuge for 1 min. Discard flow-through and place column back into the same collection tube. <br><br>
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4. Centrifuge for 5 min. to pellet cell debris and chromosomal DNA.
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7. Add 500 µL Wash solution to the column. Centrifuge for 30-60 s. and discard the flow-through. Place column back into the same tube. <br><br>
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8. Repeat step 7. <br><br>
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5. Transfer supernatant to the supplied GeneJet spin column, without disturbing or transferring the white precipitate.
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9. Discard the flow-through and centrifuge for an additional 1 min. to remove residual wash solution. (This step is essential to avoid residual ethanol in plasmid preps) <br><br>
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10. Transfer the column into a fresh 1.5 mL microcentrifuge tube. Add 50 µL of Elution buffer to the center of the column membrane to elute the plasmid DNA (do not touch the membrane with the pipette tip!). Incubate for 2 min. at room temperature and centrifuge for 2 min. <br>
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6. Cenntrifuge for 1 min. Discard flow-through and place column back into the same collection tube.
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Optional: repeat elution step to increase the overall yield by 10-20%. <br><br>
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11. Discard the column and store the purified plasmid DNA at -20°C. <br><br>
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7. Add 500 µL Wash solution to the column. Centrifuge for 30-60 s. and discard the flow-through. Place column back into the same tube.
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8. Repeat step 7.
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9. Discard the flow-through and centrifuge for an additional 1 min. to remove residual wash solution. (This step is essential to avoid residual ethanol in plasmid preps)
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10. Transfer the column into a fresh 1.5 mL microcentrifuge tube. Add 50 µL of Elution buffer to the center of the column membrane to elute the plasmid DNA (do not touch the membrane with the pipette tip!). Incubate for 2 min. at room temperature and centrifuge for 2 min.  
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Optional: repeat elution step to increase the overall yield by 10-20%.
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11. Discard the column and store the purified plasmid DNA at -20°C.
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=== Preparation of Agarose for gel electrophoresis ===
=== Preparation of Agarose for gel electrophoresis ===
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<br>
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How to prepare Agarose for gel electrophoresis.
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How to prepare Agarose for gel electrophoresis.<br><br>
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''Important remarks''
''Important remarks''
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<br>
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Agarose concentration is dependent on the size of the DNA fragment that needs to be seperated (see the door of the incubator in the gel room)  
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Agarose concentration is dependent on the size of the DNA fragment that needs to be seperated (see the door of the incubator in the gel room) <br><br>
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Addition of EtBr is carried out in fume hood. <br><br>
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Addition of EtBr is carried out in fume hood
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''Materials''
''Materials''
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<br>
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• Seachem Agarose
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• Seachem Agarose <br><br>
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• TAE buffer <br><br>
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• TAE buffer
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• EtBr <br><br>
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• EtBr
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''Protocol''
''Protocol''
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<br>
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1. For a 1% agarose gel mix 3 g agarose and 300 mL TAE buffer in a 500 mL flask.
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1. For a 1% agarose gel mix 3 g agarose and 300 mL TAE buffer in a 500 mL flask. <br><br>
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2. The mixture is heated for 5 min. at max temperature in micro-wave. ''Remember to note name, date and –EtBr on the flask.'' <br><br>
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2. The mixture is heated for 5 min. at max temperature in micro-wave. ''Remember to note name, date and –EtBr on the flask.''
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3. Place flask in the incubator for 20 min or at room temperature until cooled to 60°C. <br><br>
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4. Add 5 droplets of EtBr. <br><br>
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3. Place flask in the incubator for 20 min or at room temperature until cooled to 60°C.
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5. Cast gel and leave for 20 min until the gel is set. ''Remaining agarose solution is placed in incubater for later use.'' <br><br>
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6. Load gel and run gel. ''Load only 5 µL of DNA marker'' <br><br>
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4. Add 5 droplets of EtBr.
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5. Cast gel and leave for 20 min until the gel is set. ''Remaining agarose solution is placed in incubater for later use.''
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6. Load gel and run gel. ''Load only 5 µL of DNA marker''
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=== Preparation of SOB and SOC media ===
=== Preparation of SOB and SOC media ===
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<br>
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How to prepare SOB and SOC media for transformation.
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How to prepare SOB and SOC media for transformation. <br><br>
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'''SOB medium'''
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''SOB medium''
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<br>
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Used in growing bacteria for preparing chemically compotent cells. <br><br>
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Used in growing bacteria for preparing chemically compotent cells.
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''Materials''
''Materials''
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<br>
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For 1 L:
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For 1 L:<br>
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• 20 g tryptone <br><br>
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• 20 g tryptone  
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• 5 g yeast extract <br><br>
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• 0.5g NaCl <br><br>
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• 5 g yeast extract
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• dH2O to 1 L <br><br>
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• KCl (is made by dissolving 1.86 g of KCl in 100 mL of deionized H2O)<br><br>
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• 0.5g NaCl
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• 2M MgCl2 (is made by dissolving 19g MgCl2 in 90 mL dH2O =>adjust to obtain a volume of 100 mL using dH2O => autoclavate)<br><br>
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• dH2O to 1 L
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• KCl (is made by dissolving 1.86 g of KCl in 100 mL of deionized H2O)
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• 2M MgCl2 (is made by dissolving 19g MgCl2 in 90 mL dH2O =>adjust to obtain a volume of 100 mL using dH2O => autoclavate)
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''Protocol''
''Protocol''
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<br>
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1. Add tryptone, yeast extract and NaCl to 950 mL of dH2O and shake until solute has dissolved.
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1. Add tryptone, yeast extract and NaCl to 950 mL of dH2O and shake until solute has dissolved. <br><br>
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2. Add 10 mL of 250 mM solution of KCl <br><br>
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2. Add 10 mL of 250 mM solution of KCl
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3. Adjust volume to 1 L using dH2O <br><br>
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4. Autoclavate for 20 min. <br><br>
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3. Adjust volume to 1 L using dH2O
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5. Just before use add 5 mL of sterile solution of 2M MgCl2 <br><br>
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'''SOC medium:'''
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4. Autoclavate for 20 min.
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<br>
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5. Just before use add 5 mL of sterile solution of 2M MgCl2
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SOC medium:
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''Materials''
''Materials''
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<br>
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• SOB medium.
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• SOB medium. <br><br>
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• 1M glucose (is made by dissolving 18g of glucose in 90 mL of dH2O => adjust to obtain a volume of 100 mL using dH2O)<br><br>
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• 1M glucose (is made by dissolving 18g of glucose in 90 mL of dH2O => adjust to obtain a volume of 100 mL using dH2O)
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''Protocol''
''Protocol''
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<br>
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1. Cool SOB medium to 60°C
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1. Cool SOB medium to 60°C <br><br>
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2. Add 20mL of 1M glucose. <br><br>
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2. Add 20mL of 1M glucose.
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=== Making competent cells ===
=== Making competent cells ===
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<br>
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How to make competent cells for transformation – the iGem way
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How to make competent cells for transformation – the iGem way <br><br>
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''Important remarks''
''Important remarks''
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<br>
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All of the experiment needs to be carried out in the micro lab
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All of the experiment needs to be carried out in the micro lab <br><br>
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''Materials''
''Materials''
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<br>
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• SOB media (see separate protocol)
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• SOB media (see separate protocol) <br><br>
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• Ice cold CCMB80 buffer <br><br>
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• Ice cold CCMB80 buffer
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10 mM KOAc pH 7.0 (10 ml of a 1M stock/L) <br><br>
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80 mM CaCl2 .2H2O (11.8g/L)<br><br>
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10 mM KOAc pH 7.0 (10 ml of a 1M stock/L)
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20 mM MnCl2.4H2O (4.0 g/L)<br><br>
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10 mM MgCl2.6H2O (2.0 g/L)<br><br>
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80 mM CaCl2 .2H2O (11.8g/L)
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10% glycerol (100 mL/L)<br><br>
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Adjust pH down to 6.4 with 0.1 M HCl if nessessary. <br><br>
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20 mM MnCl2.4H2O (4.0 g/L)
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Adjusting pH down will precipitate manganese dioxide from Mn containing solutions. <br><br>
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Sterile filter and store at 4°C. Slight dark precipitate appears not to affect its function. <br><br>
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10 mM MgCl2.6H2O (2.0 g/L)
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• Top10 cells grown on SOB plate <br><br>
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• Glycerol <br><br>
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10% glycerol (100 mL/L)
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• SOC (see separate protocol)<br><br>
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Adjust pH down to 6.4 with 0.1 M HCl if nessessary.  
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Adjusting pH down will precipitate manganese dioxide from Mn containing solutions.
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Sterile filter and store at 4°C. Slight dark precipitate appears not to affect its function.
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• Top10 cells grown on SOB plate
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• Glycerol
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• SOC (see separate protocol)
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''Protocol''
''Protocol''
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<br>
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Preparing seed stocks.
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Preparing seed stocks. <br><br>
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1. Streak Top10 cells on an SOB plate and grow for single colonies at 23°C. (room temperature)<br><br>
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1. Streak Top10 cells on an SOB plate and grow for single colonies at 23°C. (room temperature)
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2. Pick single colonies into 2 mL of SOB medium and shake overnight at 23°C. <br><br>
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3. Add glycerol to 15% <br><br>
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2. Pick single colonies into 2 mL of SOB medium and shake overnight at 23°C.
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4. Aliquot 1mL samples to Nunc cryotubes <br><br>
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5. Place tubes into a zip lock bag, immerse bag into a dry ice/ethanol bath for 5 min. (this step may not be necessary)<br><br>
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3. Add glycerol to 15%
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6. Place in -80°C freezer indefinetly <br><br>
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4. Aliquot 1mL samples to Nunc cryotubes
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5. Place tubes into a zip lock bag, immerse bag into a dry ice/ethanol bath for 5 min. (this step may not be necessary)
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6. Place in -80°C freezer indefinetly
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''Preparing competent cells''
''Preparing competent cells''
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<br>
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1. Inoculate 250 mL of SOB medium with 1 mL vial of seed stock and grow at 20°C to an OD600nm of 0.3. (This takes approximately 16 h.) You can adjust this temperature somewhat to fit your schedule aim for lower, not higher OD if you cannot hit this mark.
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1. Inoculate 250 mL of SOB medium with 1 mL vial of seed stock and grow at 20°C to an OD600nm of 0.3. (This takes approximately 16 h.) You can adjust this temperature somewhat to fit your schedule aim for lower, not higher OD if you cannot hit this mark. <br><br>
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2. Cebtrifuge at 3000g at 4°C for 10 min. in a flat bottom centrifuge bottle (flat bottom centrifuge tubes make the fragile cells easier to resuspend pellets by mixing before adding large amounts of buffer). <br><br>
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2. Cebtrifuge at 3000g at 4°C for 10 min. in a flat bottom centrifuge bottle (flat bottom centrifuge tubes make the fragile cells easier to resuspend pellets by mixing before adding large amounts of buffer).
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3. Gently resuspend in 80 mL of ice cold CCMB80 buffer. (sometimes this is less than completely gentle. It still works). <br><br>
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4. Incubate on ice for 20 min. <br><br>
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3. Gently resuspend in 80 mL of ice cold CCMB80 buffer. (sometimes this is less than completely gentle. It still works).
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5. Centrifuge again at 4°C and resuspend in 10 mL of ice cold CCMB80 buffer.<br><br>
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6. Test OD of a mixture of 200 µL SOC and 50 µL of the resuspended cells. <br><br>
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4. Incubate on ice for 20 min.
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7. Add chilled CCMB80 to yield a final OD of 1.0-1.5 in this test. <br><br>
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8. Incubate on ice for 20 min. <br><br>
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5. Centrifuge again at 4°C and resuspend in 10 mL of ice cold CCMB80 buffer.
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9. Aliquot to chilled screw top 2 mL vials or 50 µL into chilled microtiter plates. <br><br>
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10. Store at -80°C indefinitely.<br><br>
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6. Test OD of a mixture of 200 µL SOC and 50 µL of the resuspended cells.
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11. '''Optional:''' Test competence.<br><br>
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7. Add chilled CCMB80 to yield a final OD of 1.0-1.5 in this test.
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8. Incubate on ice for 20 min.
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9. Aliquot to chilled screw top 2 mL vials or 50 µL into chilled microtiter plates.
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10. Store at -80°C indefinitely.
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11. '''Optional:''' Test competence.
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=== Measurement of competence ===
=== Measurement of competence ===
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<br>
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How to test transformation efficiency of competent cells – the iGEM way
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How to test transformation efficiency of competent cells – the iGEM way <br><br>
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''Materials''
''Materials''
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<br>
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• pUC19 plasmid (Invitrogen)
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• pUC19 plasmid (Invitrogen)<br><br>
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• SOC medium (see separate protocol)<br><br>
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• SOC medium (see separate protocol)
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''Protocol''
''Protocol''
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<br>
-
1. Transform 50 µL of competent cells with 1 µL of standard pUC19 plasmid. This is at 10 pg/µL or 10-5 µg/µL (This can be done by diluting 1 µL of NEB pUC19 plasmid (1 µg/µL, NEB part number NS3401S) into 100 mL of TE))
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1. Transform 50 µL of competent cells with 1 µL of standard pUC19 plasmid. This is at 10 pg/µL or 10-5 µg/µL (This can be done by diluting 1 µL of NEB pUC19 plasmid (1 µg/µL, NEB part number NS3401S) into 100 mL of TE))<br><br>
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2. Keep on ice for 30 min. <br><br>
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2. Keep on ice for 30 min.
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3. Heat shock 60 s. at 42°C '''(Very important)''' <br><br>
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4. Add 250 µL SOC medium <br><br>
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3. Heat shock 60 s. at 42°C '''(Very important)'''
+
5. Incubate at 37°C for 1 h. in 2 mL centrifuge tubes. (these tubes works well with transformation)<br>
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- Transformation with plasmids pSB1AC3 and pSB1AT3, which are chloramphenicol and tetracycline resistant, incubating for 2 h. yields many more colonies. <br><br>
-
4. Add 250 µL SOC medium
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6. Plate 20 µL on AMP plates and spread. <br><br>
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7. Incabate plates at 37°C over night. <br><br>
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5. Incubate at 37°C for 1 h. in 2 mL centrifuge tubes. (these tubes works well with transformation)
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-
- Transformation with plasmids pSB1AC3 and pSB1AT3, which are chloramphenicol and tetracycline resistant, incubating for 2 h. yields many more colonies.  
+
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6. Plate 20 µL on AMP plates and spread.
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+
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7. Incabate plates at 37°C over night.  
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8. Count the colonies (good cells should yield around 100-400 colonies)
8. Count the colonies (good cells should yield around 100-400 colonies)
-
Transformation efficiency is (dilution factor = 15) x colony x 105/µg DNA
+
Transformation efficiency is (dilution factor = 15) x colony x 105/µg DNA <br><br>
-
 
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We expect that the transformation efficiency should be between 5x108 and 5x109 cfu/µgDNA  
-
We expect that the transformation efficiency should be between 5x108 and 5x109 cfu/µgDNA
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Revision as of 16:10, 12 July 2010