Difference between revisions of "Team:TPHS San Diego/Notebook"

Line 37: Line 37:
 
<p>
 
<p>
 
Miniprep bacteria with pBAD-D4 (name of the plasmid in which we will be inserting the Chitinase genes, tags, etc.) to isolate the pBAD backbone
 
Miniprep bacteria with pBAD-D4 (name of the plasmid in which we will be inserting the Chitinase genes, tags, etc.) to isolate the pBAD backbone
Final DNA concentration: 123.7 ng/μL<br>
+
Final DNA concentration: 123.7 ng/μL<br><br>
 
</p>
 
</p>
  
Line 52: Line 52:
 
</img>
 
</img>
 
<p>
 
<p>
Wells: 1. DNA Ladder. 2. Just EcoRI 3. Just BamHI. 4. No enzyme. 5. Both enzymes<br>
+
Wells: 1. DNA Ladder. 2. Just EcoRI 3. Just BamHI. 4. No enzyme. 5. Both enzymes<br><br>
 
</p>
 
</p>
 
</div>
 
</div>
Line 69: Line 69:
 
<li>Add 11.73 g of KH2PO4 to the solution.</li>
 
<li>Add 11.73 g of KH2PO4 to the solution.</li>
 
<li>Add distilled water until volume is 1 L.</li>
 
<li>Add distilled water until volume is 1 L.</li>
</ol><br>
+
</ol><br><br>
  
 
<h1 id = "heading1">
 
<h1 id = "heading1">
Line 82: Line 82:
  
 
Did the restriction digest portion, will do gel purification, ligation, and plating tomorrow
 
Did the restriction digest portion, will do gel purification, ligation, and plating tomorrow
For protocol click here<br>
+
For protocol click here<br><br>
 
</p>
 
</p>
  
Line 95: Line 95:
 
pBAD: 22 ng/μL
 
pBAD: 22 ng/μL
 
gBlock: 10.6 ng/μL
 
gBlock: 10.6 ng/μL
Did DNA ligation and plated BL21 competent cells cloned with GST-ChiA full construct (complete protocol is linked in yesterday’s log)<br>
+
Did DNA ligation and plated BL21 competent cells cloned with GST-ChiA full construct (complete protocol is linked in yesterday’s log)<br><br>
 
</p>
 
</p>
  
Line 115: Line 115:
 
Vector+Insert colony
 
Vector+Insert colony
 
</p>
 
</p>
</div><br>
+
</div><br><br>
  
 
<h1 id = "heading1">
 
<h1 id = "heading1">
Line 277: Line 277:
  
 
<p>
 
<p>
<br>Resolved: The issue was likely caused by the incompatibility of the enzymes in the buffer and poor primer design. When performing PCR, it is important to add restriction sites to the primers so that the product would include the restriction site: this was not done originally. Also, the enzymes used to perform the restriction digest, HindIII-HF and MluI, were not compatible in the same buffer. The HF stands for High Fidelity, indicating that the enzyme has reduced star activity, or reduced tendency to lose specificity, and can be used in a wider range of buffers.<br>
+
<br>Resolved: The issue was likely caused by the incompatibility of the enzymes in the buffer and poor primer design. When performing PCR, it is important to add restriction sites to the primers so that the product would include the restriction site: this was not done originally. Also, the enzymes used to perform the restriction digest, HindIII-HF and MluI, were not compatible in the same buffer. The HF stands for High Fidelity, indicating that the enzyme has reduced star activity, or reduced tendency to lose specificity, and can be used in a wider range of buffers.<br><br>
 
</p>
 
</p>
  
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<p>
 
<p>
Did restriction digest on pBAD-D4 vector using HindIII-HF and MluI-HF. Let incubate overnight.<br>
+
Did restriction digest on pBAD-D4 vector using HindIII-HF and MluI-HF. Let incubate overnight.<br><br>
 
</p>
 
</p>
  
Line 305: Line 305:
 
Used QiaGen gel purification kit to isolate pBAD
 
Used QiaGen gel purification kit to isolate pBAD
 
<pre>            1.  pBAD extract from 3,772 bp<br>
 
<pre>            1.  pBAD extract from 3,772 bp<br>
             GST-ChiA extract from ~2.7 kb</pre><br>
+
             GST-ChiA extract from ~2.7 kb</pre><br><br>
 
</p>
 
</p>
  
Line 325: Line 325:
 
<pre>     pBAD   23.0 ng/μL
 
<pre>     pBAD   23.0 ng/μL
 
    GST-ChiA   39.2 ng/μL</pre><br>
 
    GST-ChiA   39.2 ng/μL</pre><br>
Ligate the two pieces together.<br>Transform the bacteria. (repeated protocol from 7/30 except added primers before)<br>Plate 50 μL of cells on Amp-LB agar plate.<br>Incubate at 37C O/N<br>
+
Ligate the two pieces together.<br>Transform the bacteria. (repeated protocol from 7/30 except added primers before)<br>Plate 50 μL of cells on Amp-LB agar plate.<br>Incubate at 37C O/N<br><br>
 
</p>
 
</p>
  
Line 375: Line 375:
 
<li>This is digested using ChitO, generating hydrogen peroxide.</li>
 
<li>This is digested using ChitO, generating hydrogen peroxide.</li>
 
<li>HRP uses the hydrogen peroxide to convert AAP and DCHBS into a pink compound, which allows us to visually detect the presence of chitinase.</li>
 
<li>HRP uses the hydrogen peroxide to convert AAP and DCHBS into a pink compound, which allows us to visually detect the presence of chitinase.</li>
<li>To quantify the amount of chitinase present, a spectrophotometer will be used to detect the absorbance: higher means more concentrated. (absorbance = extinction coefficient * cuvette length * concentration) (chem stuff).</li>
+
<li>To quantify the amount of chitinase present, a spectrophotometer will be used to detect the absorbance: higher means more concentrated. (absorbance = extinction coefficient * cuvette length * concentration) (chem stuff).</li><br><br>
 
</ol>
 
</ol>
  
Line 513: Line 513:
  
 
<p>
 
<p>
<br>Based on these results, it shows that the assay protocol that we chose is sensitive enough. We performed this assay with commercially purchased chitinase in order to test the sensitivity of the assay protocol that we chose. Based on these results it seems that our protocol could be usable, however we would need to filter the colloidal chitin somehow so that there is less chunks floating around in the solution. Considering, that we now have a potent strain of GST-ChiA, we can soon use this DNA with the assay that we have to identify chitinase activity.<br>
+
<br>Based on these results, it shows that the assay protocol that we chose is sensitive enough. We performed this assay with commercially purchased chitinase in order to test the sensitivity of the assay protocol that we chose. Based on these results it seems that our protocol could be usable, however we would need to filter the colloidal chitin somehow so that there is less chunks floating around in the solution. Considering, that we now have a potent strain of GST-ChiA, we can soon use this DNA with the assay that we have to identify chitinase activity.<br><br>
 
</p>
 
</p>
  
Line 522: Line 522:
 
<p>
 
<p>
 
The colloidal chitinase particles used in the previous assay test were too large. Redid the assay test with smaller particles. We modified the protocol based on cross references from several other colloidal chitin protocol and decided to increase the volume and chitin to HCl ratio to 1:10. We also increased the incubation period for the 12M HCl and Chitin to 2.5 hrs instead of the original 1 hr. We covered the beaker with foil as it stirred but the vapor form the acid degraded the foil and caused flakes to fall into the foil. We had to scrap it and will remake tomorrow.
 
The colloidal chitinase particles used in the previous assay test were too large. Redid the assay test with smaller particles. We modified the protocol based on cross references from several other colloidal chitin protocol and decided to increase the volume and chitin to HCl ratio to 1:10. We also increased the incubation period for the 12M HCl and Chitin to 2.5 hrs instead of the original 1 hr. We covered the beaker with foil as it stirred but the vapor form the acid degraded the foil and caused flakes to fall into the foil. We had to scrap it and will remake tomorrow.
Also transformed BL21 Cells with complete plasmid and plate 50 μL to LB-AMP plates. Incubate at 37C overnight. Will select colonies and put in shaker O/N.
+
Also transformed BL21 Cells with complete plasmid and plate 50 μL to LB-AMP plates. Incubate at 37C overnight. Will select colonies and put in shaker O/N.<br><br>
 
</p>
 
</p>
  
Line 530: Line 530:
  
 
<p>
 
<p>
Redid colloidal chitin, select colonies and put in 4 mL LB-AMP and put in shaking incubator (37C O/N)… prepared 10 aliquots: 4 tubes with 2 mL of LB per for clone 1 and 9 to be used for arabinose induction and WB. 2 tubes of 4 mL of LB for miniprep.
+
Redid colloidal chitin, select colonies and put in 4 mL LB-AMP and put in shaking incubator (37C O/N)… prepared 10 aliquots: 4 tubes with 2 mL of LB per for clone 1 and 9 to be used for arabinose induction and WB. 2 tubes of 4 mL of LB for miniprep.<br><br>
 
</p>
 
</p>
  
Line 564: Line 564:
  
 
<p>
 
<p>
In this experimentvv, we are checking for the expression of chitinase. After the proteins are separated by molecular weight, we will transfer them onto a different membrane that will be stained with two antibodies: one to bind to chitinase, the other to help us visualize its presence by binding to the first antibody. The second antibody has an HRP (horseradish peroxidase) tag which will produce light when reacted with luminol and hydrogen peroxide. We will capture this light on a film and develop the film to get a better image. This is possible because the FLAG tag, which is included in our DNA construct, attaches itself onto chitinase and is recognized by the first antibody (called anti-FLAG) with high specificity. The second antibody recognizes the first antibody and “Brings” the HRP.<br>  
+
In this experimentvv, we are checking for the expression of chitinase. After the proteins are separated by molecular weight, we will transfer them onto a different membrane that will be stained with two antibodies: one to bind to chitinase, the other to help us visualize its presence by binding to the first antibody. The second antibody has an HRP (horseradish peroxidase) tag which will produce light when reacted with luminol and hydrogen peroxide. We will capture this light on a film and develop the film to get a better image. This is possible because the FLAG tag, which is included in our DNA construct, attaches itself onto chitinase and is recognized by the first antibody (called anti-FLAG) with high specificity. The second antibody recognizes the first antibody and “Brings” the HRP.<br><br>  
We left the membrane in blocking buffer at 4C O/N
+
We left the membrane in blocking buffer at 4C O/N<br>
 
For a step by step protocol, click here (heads up this is a more general western blot protocol and we are using different antibodies)<br>
 
For a step by step protocol, click here (heads up this is a more general western blot protocol and we are using different antibodies)<br>
 
<pre>     Clone 1: Seems okay will need to sequence further to double check
 
<pre>     Clone 1: Seems okay will need to sequence further to double check
             Clone 9: There is a frameshift early in the GST sequence so the protein will not be expressed properly. (For now will use as negative control in western blot?)</pre><br>
+
             Clone 9: There is a frameshift early in the GST sequence so the protein will not be expressed properly. (For now will use as negative control in western blot?)</pre><br><br>
 
</p>
 
</p>
  

Revision as of 07:03, 15 October 2018

TPHS IGEM Wiki

Lab Notebook

Day 1

Miniprep bacteria with pBAD-D4 (name of the plasmid in which we will be inserting the Chitinase genes, tags, etc.) to isolate the pBAD backbone Final DNA concentration: 123.7 ng/μL

Day 2

Restriction digest using BamHI and EcoRI to check for bacterial transformation to check to make sure that the plasmid is the expected length (will also send samples for sequencing)

Wells: 1. DNA Ladder. 2. Just EcoRI 3. Just BamHI. 4. No enzyme. 5. Both enzymes

Day 3

Made KPi Buffer… (used in Chitinase Assay)

  1. Prepare 800 mL of dH2O in a suitable container.
  2. Add 2.405 g of K2HPO4 to the solution.
  3. Add 11.73 g of KH2PO4 to the solution.
  4. Add distilled water until volume is 1 L.


Day 4

Started Cloning of pBAD-GST-ChiA-FLAG construct. (Function of GST and FLAG: these are protein tags (onto chitinase) to purify and detect chitinase respectively) Did the restriction digest portion, will do gel purification, ligation, and plating tomorrow For protocol click here

Day 5

Ran gel of restriction digest of pBAD only and did Gel Purification (very straightforward after PCR, you want only the copied DNA) of restriction digest of GST/gBlock as we want to preserve the amount of DNA gBlock that we have and will lose less sample via PCR purification. Final concentrations: pBAD: 22 ng/μL gBlock: 10.6 ng/μL Did DNA ligation and plated BL21 competent cells cloned with GST-ChiA full construct (complete protocol is linked in yesterday’s log)

Day 6

Selected 10 colonies from Vector+Insert plate and put in 4 mL of LB+Ampicillin (LB is nutrients for bacterial growth, Ampicillin assists selection of transformed bacteria) media. Incubate in 37 ºC shaker for 24 hrs. Also, did restriction digest and gel on pBAD-D4 vector using MluI and HindIII to check and make sure the enzymes are cutting properly. (If DNA length match expected length, then enzymes are working properly) There is a chance we will have to do ligation and stuff again because there aren’t that many colonies. We will most likely use primers to enhance the gBlock/insert DNA and then try again. Depending on how these colonies turn out after we sequence them.

Vector+Insert colony



Day 7

Did Miniprep of the 10 bacteria colonies that we selected from Wednesday. Used NanoDrop machine to find DNA concentrations of all 10 samples.

Substitute Table name

Sample 1: 97.1 ng/μL Sample 2: 39.6 ng/μL Sample 3: 47.3 ng/μL
Sample 4: 47.0 ng/μL Sample 5: 41.8 ng/μL Sample 6: 57.8 ng/μL
Sample 7: 33.6 ng/μL Sample 8: 51.7 ng/μL Sample 9: 41.5 ng/μL
Sample 10: 23.0 ng/μL Sample pBAD-D4: 123.7 ng/μL


Then we chose a specific restriction enzyme to cut both the original pBAD-D4 plasmid and our constructed plasmid such that we can distinguish between the two based on the length of their base pairs and the number of cuts that are made. We chose EcoRI-HF. This is in order to check that the plasmids that we are using are what we think they actually are. We want to have 250 ng per restriction digest reaction. Add 2 μL of buffer, 1 μL of enzyme, and fill to 20 μL with water. (Always add enzyme last). Then incubate at 37 ºC for 30 mins-1hr.

Table of Samples

Sample Amount of DNA Amount of Cut Smart Buffer Amount of Water Amount of Enzyme (EcoRI)
pBAD-D4 2.02 μL 2 μL 14.98 μL 1 μL
Sample 1: 2.57 μL 2 μL 14.43 μL 1 μL
Sample 2: 6.31 μL 2 μL 10.69 μL 1 μL
Sample 3: 5.29 μL 2 μL 11.71 μL 1 μL
Sample 4: 5.32 μL 2 μL 11.68 μL 1 μL
Sample 5: 5.98 μL 2 μL 11.02 μL 1 μL
Sample 6: 4.33 μL 2 μL 12.7 μL 1 μL
Sample 7: 7.44 μL 2 μL 9.56 μL 1 μL
Sample 8: 4.84 μL 2 μL 12.16 μL 1 μL
Sample 9: 6.02 μL 2 μL 10.98 μL 1 μL
Sample 10: 10.87 μL 2 μL 6.13 μL 1 μL


Make a 1.0% agarose gel with 150 mL 1x TAE buffer and 15 μL of Ethidium Bromide in a medium sized gel frame. Load 10 μL of DNA Ladder and put 4 μL of 6x loading dye into each sample.Run the gel at 175 V for 45 mins-1 hr.


Here is a picture of the gel simulated on a computer
program called SnapGene.

Here is a picture of the actual gel.


Wells 3-12 were extracted from bacterial colonies that all have the same DNA inserted. BUT! When we run a gel or a restriction digest in which all the samples were cut with ECORI the results are not the same. For some samples it is probably due to the enzyme not cutting the DNA, but for the rest it is unknown. We will have to do further testing to figure out what the issue is.


Resolved: The issue was likely caused by the incompatibility of the enzymes in the buffer and poor primer design. When performing PCR, it is important to add restriction sites to the primers so that the product would include the restriction site: this was not done originally. Also, the enzymes used to perform the restriction digest, HindIII-HF and MluI, were not compatible in the same buffer. The HF stands for High Fidelity, indicating that the enzyme has reduced star activity, or reduced tendency to lose specificity, and can be used in a wider range of buffers.

Day 8

Did restriction digest on pBAD-D4 vector using HindIII-HF and MluI-HF. Let incubate overnight.

Day 9

Did PCR on GST-ChiA with MluI forward primers and HindIII reverse primers. (these primers attach restriction sites onto the insert along with a buffer region in case of exonuclease action)

 	     PCR cycle: 66ºC  10 seconds (phusion)        72ºC 1.5 mins
20 cycles

Then did PCR clean up using Qiagen kit (eluted with 50 μL H2O)
Performed restriction digest on PCR product
  	     50 μL DNA+6 μL CutSmart Buffer+2 μL HindIII-HF+ 2 μL MluI-HF
Incubate at 37ºC ~3-4hrs

Made 1% gel and ran pBAD digest and GST-ChiA digest (from above)
 	     GST-ChiA: 60 μL = 12 μL 6x loading dye (36 μL into each well)
pBAD: 50.4 μL = 10 μL 6x loading dye (30 μL into each well)

Used QiaGen gel purification kit to isolate pBAD
             1.  pBAD extract from 3,772 bp
GST-ChiA extract from ~2.7 kb


Day 10

Also made 5 g of colloidal chitin.
Redid PCR reaction for GST-ChiA. Ran Gel. Cut and purified ~2.7 kb

Used Qubits to find DNA concentrations.

 	     pBAD	  23.0 ng/μL
	     GST-ChiA	  39.2 ng/μL

Ligate the two pieces together.
Transform the bacteria. (repeated protocol from 7/30 except added primers before)
Plate 50 μL of cells on Amp-LB agar plate.
Incubate at 37C O/N

Day 11

Transformation attempt 2

Substitute Table name

Results with Chitinase+Chitin incubation period of 2.5 hrs

We made colloids (a type of mixture between a solution and suspension, meaning that particles are small but larger than those in a solution) of chitin, which we used in a Chitinase Assay to test the viability of using the assay for the experiment. For the assay, the Chitinase concentration was diluted in a series while the amount of chitin colloid was kept constant.


This is how the assay works:vv

  1. When chitinase digests chitin, chito-oligosaccharides are generated as a product.
  2. This is digested using ChitO, generating hydrogen peroxide.
  3. HRP uses the hydrogen peroxide to convert AAP and DCHBS into a pink compound, which allows us to visually detect the presence of chitinase.
  4. To quantify the amount of chitinase present, a spectrophotometer will be used to detect the absorbance: higher means more concentrated. (absorbance = extinction coefficient * cuvette length * concentration) (chem stuff).


Day 12

Mini-prep colonies that we picked yesterday. Ran a gel and sent the purified DNA for sequencing. Selected 9 colonies:

Sub table name

Sample DNA Buffer Enzyme Water
General 250 ng 2 μL 1 μL To 20 μL
1 132.1 ng/μL 2 μL 1 μL 15.11 μL
2 95.8 ng/μL 2 μL 1 μL 14.39 μL
3 70.4 ng/μL 2 μL 1 μL 13.45 μL
4 111.4 ng/μL 2 μL 1 μL 14.76 μL
5 76.9 ng/μL 2 μL 1 μL 13.75 μL
6 105.5 ng/μL 2 μL 1 μL 14.63 μL
7 83.6 ng/μL 2 μL 1 μL 14.01 μL
8 120.4 ng/μL 2 μL 1 μL 14.92 μL
8 132.9 ng/μL 2 μL 1 μL 15.12 μL


Ran gel using EcoRI, the expected results are the same as above. The first well is 1kb DNA ladder, wells 2-10 are GST-ChiA, and the last well is pBAD-D4 vector cut with EcoRI as a control.vv

This gel is just to check that he plasmid was transformed correctly as we know the restriction sites for the cloned construct. Based on this gel, 7/9 of the clones successfully received the plasmid and we can use all of those clones (except clone 3 and 7) in experimentation.

Chitinase Assay

Assay (take.1) Assay (supernatant only) Results (take.1) Results (supernatant only)
t


Based on these results, it shows that the assay protocol that we chose is sensitive enough. We performed this assay with commercially purchased chitinase in order to test the sensitivity of the assay protocol that we chose. Based on these results it seems that our protocol could be usable, however we would need to filter the colloidal chitin somehow so that there is less chunks floating around in the solution. Considering, that we now have a potent strain of GST-ChiA, we can soon use this DNA with the assay that we have to identify chitinase activity.

Day 13

The colloidal chitinase particles used in the previous assay test were too large. Redid the assay test with smaller particles. We modified the protocol based on cross references from several other colloidal chitin protocol and decided to increase the volume and chitin to HCl ratio to 1:10. We also increased the incubation period for the 12M HCl and Chitin to 2.5 hrs instead of the original 1 hr. We covered the beaker with foil as it stirred but the vapor form the acid degraded the foil and caused flakes to fall into the foil. We had to scrap it and will remake tomorrow. Also transformed BL21 Cells with complete plasmid and plate 50 μL to LB-AMP plates. Incubate at 37C overnight. Will select colonies and put in shaker O/N.

Day 14

Redid colloidal chitin, select colonies and put in 4 mL LB-AMP and put in shaking incubator (37C O/N)… prepared 10 aliquots: 4 tubes with 2 mL of LB per for clone 1 and 9 to be used for arabinose induction and WB. 2 tubes of 4 mL of LB for miniprep.

Day 15

Performed Arabinose Induction:

  1. Take 100 uL of cell culture (from yesterday) and put in 10 mL of LB-AMP and put in shaking incubator for 2 hrs
  2. Perform serial dilution of Arabinose
     	     a. 20% to 2% to 0.2% and do one with 0% (just H2O)

  3. Add 100 uL of each dilution to one tube samples (there are 4 dilutions and 4 tubes per clone. Do this for each clone)
  4. Grow at shaking incubator for 4 hrs
  5. Take 1 mL of each sample, spin at max speed for 1 minute, and aspirate supernatant

Prepared samples for western blot (SDS page): Gel electrophoresis for proteins

  1. Centrifuge samples and aspirate supernatant
  2. Resuspend pellet in 100 uL SDS page buffer.
  3. Boil 5 min and centrifuge
  4. Load 12 uL of protein ladder into the first well and 10 uL of each sample and a negative control into the other wells.
  5. Record position of samples.
  6. Adjust to desired voltage and run for 1 hr

In this experimentvv, we are checking for the expression of chitinase. After the proteins are separated by molecular weight, we will transfer them onto a different membrane that will be stained with two antibodies: one to bind to chitinase, the other to help us visualize its presence by binding to the first antibody. The second antibody has an HRP (horseradish peroxidase) tag which will produce light when reacted with luminol and hydrogen peroxide. We will capture this light on a film and develop the film to get a better image. This is possible because the FLAG tag, which is included in our DNA construct, attaches itself onto chitinase and is recognized by the first antibody (called anti-FLAG) with high specificity. The second antibody recognizes the first antibody and “Brings” the HRP.

We left the membrane in blocking buffer at 4C O/N
For a step by step protocol, click here (heads up this is a more general western blot protocol and we are using different antibodies)

 	     Clone 1: Seems okay will need to sequence further to double check
             Clone 9: There is a frameshift early in the GST sequence so the protein will not be expressed properly. (For now will use as negative control in western blot?)