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<ol> | <ol> | ||
<li>300 µl Silica beads (4.7 x 108 microspheres)</li> | <li>300 µl Silica beads (4.7 x 108 microspheres)</li> | ||
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<ol> | <ol> | ||
<li>Fluorescein</li> | <li>Fluorescein</li> | ||
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<li>96-well plate (black)</li> | <li>96-well plate (black)</li> | ||
</ol> | </ol> | ||
− | < | + | <br> |
− | + | <i> Methods </i> | |
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<br> | <br> | ||
− | < | + | <i> <u> (A) To prepare the fluorescein stock solution </u> </i> |
<ol> | <ol> | ||
<li>The fluorescein kit tube was spun down to make sure that the pellet was collected at the bottom of the tube. </li> | <li>The fluorescein kit tube was spun down to make sure that the pellet was collected at the bottom of the tube. </li> | ||
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<li> 10X fluorescein stock solution was diluted with 1X PBS to make a 1X fluorescein solution (10 µM): 100 µl of 10X fluorescein stock solution was mixed with 900 µl of 1X PBS. </li> | <li> 10X fluorescein stock solution was diluted with 1X PBS to make a 1X fluorescein solution (10 µM): 100 µl of 10X fluorescein stock solution was mixed with 900 µl of 1X PBS. </li> | ||
</ol> | </ol> | ||
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+ | </td> | ||
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− | < | + | <i> <u> (B) To prepare the serial dilution of fluorescein </u> </i> |
<ol> | <ol> | ||
<li>100 µl of PBS was added into wells A2, B2, C2, D2...A12, B12, C12, D12.</li> | <li>100 µl of PBS was added into wells A2, B2, C2, D2...A12, B12, C12, D12.</li> | ||
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<li>100 µl of 1X fluorescein stock solution was transferred from A1 to A2. </li> | <li>100 µl of 1X fluorescein stock solution was transferred from A1 to A2. </li> | ||
<li>Mix A2 by pipetting up and down 3 times and transfer 100 µl into A3. </li> | <li>Mix A2 by pipetting up and down 3 times and transfer 100 µl into A3. </li> | ||
− | <li>The subsequent dilutions were prepared as illustrated | + | <li>The subsequent dilutions were prepared as illustrated by Fig. 4. </li> |
− | <li>Fluorescence of all samples | + | <li>Fluorescence of all samples were measured, and our results are reflected by Fig. 5. </li> |
</ol> | </ol> | ||
+ | // add picture | ||
</td> | </td> | ||
</tr> | </tr> | ||
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</center> | </center> | ||
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<ol> | <ol> | ||
<li>Competent cells (Escherichia coli strain DH5α)</li> | <li>Competent cells (Escherichia coli strain DH5α)</li> | ||
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<li>96-well plate (black)</li> | <li>96-well plate (black)</li> | ||
</ol> | </ol> | ||
− | < | + | <br> |
− | < | + | <i> Methods </i> |
− | + | <i> <u> Day 1: Transforming Escherichia coli strain DH5α with devices provided in the Distribution Kit </u> </i> | |
− | + | <ol> | |
− | + | <li> Each device (powder form) was resuspended in 10 µl of ddH<sub>2</sub>O. </li> | |
− | + | <li> 1 µl of each respective plasmid was transformed into 50 µl <i> E. coli </i> DH5α via electroporation. </li> | |
− | + | <li> 500 µl of LB was immediately added into each tube for recovery of the transformed cells. </li> | |
− | + | <li> Each sample tube was incubated with shaking at 37 °C for 30 mins before 100 µl of each sample was plated onto LB + Chlor agar plates and grown overnight at 37 °C. </li> | |
− | + | </ol> | |
− | + | <br> | |
− | + | <i> <u> Day 2: Selecting Colonies and Growing Cells Overnight </u> </i> | |
− | + | <ol> | |
− | + | <li> 2 colonies were selected for being both relatively bigger and more separated from the other colonies. </li> | |
− | + | <li> The selected colonies were then inoculated into 5 ml of LB + Chlor and grown overnight at 37 °C at 220 rpm. </li> | |
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</td> | </td> | ||
<td> | <td> | ||
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<br> | <br> | ||
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+ | <i> <u> (B) Day 2: Selecting Colonies and Growing Cells Overnight. </u> </i> | ||
<ol> | <ol> | ||
<li>Two colonies were selected according to their size (bigger colonies were preferably selected) and to their proximity to one another (those more sparsely separated from other colonies were preferred). </li> | <li>Two colonies were selected according to their size (bigger colonies were preferably selected) and to their proximity to one another (those more sparsely separated from other colonies were preferred). </li> | ||
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<li>100 µl of 1X fluorescein stock solution was transferred from A1 to A2. </li> | <li>100 µl of 1X fluorescein stock solution was transferred from A1 to A2. </li> | ||
</ol> | </ol> | ||
+ | |||
<br> | <br> | ||
− | < | + | |
− | < | + | <i> <u> (C) Day 3: Cell Growth, Sampling and Assay. </u> </i> |
+ | <i> Part 1: Abs<sub>600nm</sub> and Fluorescence Measurement </i> | ||
<ol> | <ol> | ||
− | <li>A cell stock of each overnight culture was made in | + | <li>A cell stock of each overnight culture was made in glycerol for storage, in case there is a need to use them again. To make this stock, 850 µl of culture was added to 350 µl of glycerol.</li> |
<li>A 1:10 dilution of each overnight culture was made in LB + Chlor (0.5 mL culture + 4.5 mL media).</li> | <li>A 1:10 dilution of each overnight culture was made in LB + Chlor (0.5 mL culture + 4.5 mL media).</li> | ||
<li>Abs<sub>600nm</sub> of the 1:10 diluted cultures were measured.</li> | <li>Abs<sub>600nm</sub> of the 1:10 diluted cultures were measured.</li> | ||
− | <li>Cultures were diluted further to a target Abs<sub> | + | <li>Cultures were diluted further to a target Abs<sub>600</sub>nm of 0.02 in a final volume of 12 ml LB + Chlor in a 50 ml falcon tube that was covered with tissue paper. </li> |
− | <li>500 µl of samples of the diluted cultures at 0 h were transferred into 1.5 ml eppendorf tubes | + | <li>500 µl of samples of the diluted cultures at 0 h were transferred into 1.5 ml eppendorf tubes labelled A and B. The tubes were placed on ice until they were ready to be laid out according to the plate diagram to measure fluorescence and Abs<sub>600</sub>. Fluorescence readings at T = 0 h are shown in Fig. 6. </li> |
− | <li>The | + | <li>The rest of the cultures were incubated at 37 °C and 220 rpm for 6 hours.</li> |
− | <li>After the 6-hour-incubation, 500 µl of these cultures were transferred into 1.5 ml eppendorf tubes before being laid out according to the plate diagram below. The | + | <li>After the 6-hour-incubation, 500 µl of these cultures were transferred into 1.5 ml eppendorf tubes before being laid out according to the plate diagram below. The samples’ fluorescence and Abs600nm were measured again. Fluorescence readings at T = 6 h are shown in Fig. 7. </li> |
</ol> | </ol> | ||
<br> | <br> |
Revision as of 09:48, 26 June 2018
Interlab Study
OVERVIEW
This year, the Committee aims to discover if it is possible to reduce lab-to-lab variability in fluorescence measurements by normalizing to absolute cell count or colony-forming units (CFUs) instead of optical density (OD). For this, we were required to measure the cell density of Escherichia coli ( E.Coli ) DH5⍺ cells using the methods below. |
Method 1: Converting between absorbance of cells to absorbance of a known concentration of beads In the first method, silica beads are used to estimate the actual amount of cells during fluorescence measurement. These beads are modeled after a typical E. coli cell and are thus expected to scatter light in a similar way to E. Coli cells. As a sample of these silica beads gives a consistent and known absorbance measurement at 600 nm, absorbance measurements from a sample’s cell density can be converted into an “equivalent concentration of beads” measurement that should be more universal and comparable between different labs. Method 2: Counting colony-forming units (CFUs) from the sample In the second method, cell concentration is approximated is by plating a known volume of the sample and letting bacterial colonies grow. As each bacterial colony is assumed to represent a single cell (for cells that do not stick together), the cell concentration in the sample is then directly proportional to the number of CFUs. Using a scaling factor computed from negative and positive control CFUs, a conversion factor from absorbance to CFU can be computed. |
PARTS RECEVIED
Device | Part Number | Usage |
---|---|---|
Negative control | BBa_R0040 | TetR repressible promoter, medium strength promoter |
Positive Control | BBa_I20270 | Promoter MeasKit (J23151) |
Test Device 1 | BBa_J364000 | GFP expressing constitutive device |
Test Device 2 | BBa_J364001 | GFP expressing constitutive device |
Test Device 3 | BBa_J364002 | GFP expressing constitutive device |
Test Device 4 | BBa_J364007 | Expresses GFP under the control of a constitutive promoter |
Test Device 5 | BBa_J364008 | Expresses GFP under the control of a constitutive promoter |
Test Device 6 | BBa_J364009 | Expresses GFP under the control of a constitutive promoter |
MATERIALS & METHODS
Plate Reader
BioTek Synergy H1 Abs 600
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Fluorescence
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Materials
Methods
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Materials
Methods (A) To prepare the Microsphere Stock Solution
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(B) To prepare the serial dilution of microsphere
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Materials
Methods (A) To prepare the fluorescein stock solution
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(B) To prepare the serial dilution of fluorescein
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Materials
Methods Day 1: Transforming Escherichia coli strain DH5α with devices provided in the Distribution Kit
Day 2: Selecting Colonies and Growing Cells Overnight
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Methods
(A) Day 1: Transform Escherichia coli strain DH5α with devices provided in the Distribution Kit.
(B) Day 2: Selecting Colonies and Growing Cells Overnight.
(C) Day 3: Cell Growth, Sampling and Assay. Part 1: Abs600nm and Fluorescence Measurement
Part 2: Colony Forming Units per 0.1 OD600 E. coli Cultures (only Positive Control (BBa_I20270) cultures and Negative Control (BBa_R0040) was involved in this experiment)
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Materials
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Methods
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Results
★ ALERT!
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InterLab
Bronze Medal Criterion #4
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