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LUDOX CL-X (45%colloidal silica suspension) was used as a single point reference to obtain a conversion factor to transform our absorbance (Abs600) data from our plate reader into a comparable OD600 measurement as would be obtained in a spectrophotometer. Such conversion is necessary because plate reader measurements of absorbance are volume dependent; the depth of the fluid in the well defines the path length of the light passing through the sample, which can vary slightly from well to well. In a standard spectrophotometer, the path length is fixed and is defined by the width of the cuvette, which is constant.Therefore this conversion calculation can transform Abs600 measurements from a plate reader (i.e., absorbance at 600nm, the basic output of most instruments) into comparable OD600 measurements.The LUDOX solution is only weakly scattering and so will give a low absorbance value. | LUDOX CL-X (45%colloidal silica suspension) was used as a single point reference to obtain a conversion factor to transform our absorbance (Abs600) data from our plate reader into a comparable OD600 measurement as would be obtained in a spectrophotometer. Such conversion is necessary because plate reader measurements of absorbance are volume dependent; the depth of the fluid in the well defines the path length of the light passing through the sample, which can vary slightly from well to well. In a standard spectrophotometer, the path length is fixed and is defined by the width of the cuvette, which is constant.Therefore this conversion calculation can transform Abs600 measurements from a plate reader (i.e., absorbance at 600nm, the basic output of most instruments) into comparable OD600 measurements.The LUDOX solution is only weakly scattering and so will give a low absorbance value. | ||
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[ IMPORTANT NOTE : many plate readers have an automatic path length correction feature. This adjustment compromises the accuracy of measurement in highly light scattering solutions, such as dense cultures of cells.YOU MUSTTHEREFORETURN OFF PATH LENGTH CORRECTION if it can be disabled on your instrument . Our Instrument did not have any path length correction]. | [ IMPORTANT NOTE : many plate readers have an automatic path length correction feature. This adjustment compromises the accuracy of measurement in highly light scattering solutions, such as dense cultures of cells.YOU MUSTTHEREFORETURN OFF PATH LENGTH CORRECTION if it can be disabled on your instrument . Our Instrument did not have any path length correction]. | ||
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1ml LUDOX CL-X (provided in kit) | 1ml LUDOX CL-X (provided in kit) | ||
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ddH2 0 (provided by team) | ddH2 0 (provided by team) | ||
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96 well plate, black with clear flat bottom preferred (provided by team) | 96 well plate, black with clear flat bottom preferred (provided by team) | ||
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<font size="5">Methods</font> | <font size="5">Methods</font> | ||
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Add 100 μl LUDOX into wells A1, B1, C1, D1 | Add 100 μl LUDOX into wells A1, B1, C1, D1 | ||
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Add 100 μl of ddH2 O into wells A2, B2, C2, D2 | Add 100 μl of ddH2 O into wells A2, B2, C2, D2 | ||
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Measure absorbance at 600nm of all samples in the measurement mode you plan to use for cell measurements | Measure absorbance at 600nm of all samples in the measurement mode you plan to use for cell measurements | ||
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Record the data in the table below or in your notebook | Record the data in the table below or in your notebook | ||
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Import data into Excel sheet provided ( OD600 reference point tab ) | Import data into Excel sheet provided ( OD600 reference point tab ) | ||
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<font size="5">Results</font> | <font size="5">Results</font> | ||
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<img src="https://static.igem.org/mediawiki/2018/9/9a/T--Mingdao--Modeling--Chart%28img45%29.jpg"> | <img src="https://static.igem.org/mediawiki/2018/9/9a/T--Mingdao--Modeling--Chart%28img45%29.jpg"> | ||
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<font size="5">Calibration 2: Particle Standard Curve - Microsphere Protocol | <font size="5">Calibration 2: Particle Standard Curve - Microsphere Protocol | ||
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We prepared a dilution series of mono disperse silica microspheres and measured the Abs600 in our plate reader.The size and optical characteristics of these microspheres are similar to cells, and there is a known amount of particles per volume.This measurement allows us to construct a standard curve of particle concentration which can be used to convert Abs600 measurements to an estimated number of cells. | We prepared a dilution series of mono disperse silica microspheres and measured the Abs600 in our plate reader.The size and optical characteristics of these microspheres are similar to cells, and there is a known amount of particles per volume.This measurement allows us to construct a standard curve of particle concentration which can be used to convert Abs600 measurements to an estimated number of cells. | ||
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<font size="5">Materials</font> | <font size="5">Materials</font> | ||
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300 μL silica beads Microsphere suspension (provided in kit, 4.7*108 microspheres) | 300 μL silica beads Microsphere suspension (provided in kit, 4.7*108 microspheres) | ||
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ddH2O (provided byEPFL) | ddH2O (provided byEPFL) | ||
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96 well plates, black with clear flat bottom(provided by team) | 96 well plates, black with clear flat bottom(provided by team) | ||
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<font size="5">Preparation of the Microsphere stock solution: </font> | <font size="5">Preparation of the Microsphere stock solution: </font> | ||
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Obtain the tube labeled “Silica Beads” from the InterLab test kit and vortex 4 vigorously for30 seconds. NOTE: Microspheres should NOT be stored at 0 ° C or below, as freezing affects the properties of the microspheres. If you believe your microspheres may have been frozen, please contact the iGEM Measurement Committee for a replacement (measurement at igem dot org). | Obtain the tube labeled “Silica Beads” from the InterLab test kit and vortex 4 vigorously for30 seconds. NOTE: Microspheres should NOT be stored at 0 ° C or below, as freezing affects the properties of the microspheres. If you believe your microspheres may have been frozen, please contact the iGEM Measurement Committee for a replacement (measurement at igem dot org). | ||
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Immediately pipette 96 μL eppendorf | Immediately pipette 96 μL eppendorf | ||
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Add 904 μL of ddH2O to the microspheres | Add 904 μL of ddH2O to the microspheres | ||
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Vortex well to obtain stock Microsphere Solution. | Vortex well to obtain stock Microsphere Solution. | ||
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<font size="5">Preparation of microsphere serial dilutions:</font> | <font size="5">Preparation of microsphere serial dilutions:</font> | ||
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Accurate pipetting is essential. Serial dilutions will be performed across columns 1-11. COLUMN 12 MUST CONTAIN ddH2O ONLY.Initially you will setup the plate with the microsphere stock solution in column 1 and an equal volume of 1x ddH2O in columns 2 to 12. You will perform a serial dilution by consecutively transferring 100 μL from column to column with good mixing. | Accurate pipetting is essential. Serial dilutions will be performed across columns 1-11. COLUMN 12 MUST CONTAIN ddH2O ONLY.Initially you will setup the plate with the microsphere stock solution in column 1 and an equal volume of 1x ddH2O in columns 2 to 12. You will perform a serial dilution by consecutively transferring 100 μL from column to column with good mixing. | ||
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<img src="https://static.igem.org/mediawiki/2018/b/b0/T--Mingdao--Modeling--SerialDelution%28img47%29.jpg> | <img src="https://static.igem.org/mediawiki/2018/b/b0/T--Mingdao--Modeling--SerialDelution%28img47%29.jpg> | ||
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1. Add 100 μl of ddH2O into wells A2, B2, C2, D2....A12, B12, C12, D12 | 1. Add 100 μl of ddH2O into wells A2, B2, C2, D2....A12, B12, C12, D12 | ||
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2. Vortex the tube containing the stock solution of microspheres vigorously for 10 seconds | 2. Vortex the tube containing the stock solution of microspheres vigorously for 10 seconds | ||
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3. Immediately add 200 μl of microspheres stock solution into A1 | 3. Immediately add 200 μl of microspheres stock solution into A1 | ||
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4. Transfer 100 μl of microsphere stock solution from A1 into A2. | 4. Transfer 100 μl of microsphere stock solution from A1 into A2. | ||
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5. Mix A2 by pipetting up and down 3x and transfer 100 μl into A3 | 5. Mix A2 by pipetting up and down 3x and transfer 100 μl into A3 | ||
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6. Mix A3 by pipetting up and down 3x and transfer 100 μl into A4... | 6. Mix A3 by pipetting up and down 3x and transfer 100 μl into A4... | ||
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7. Mix A4 by pipetting up and down 3x and transfer 100 μl into A5... | 7. Mix A4 by pipetting up and down 3x and transfer 100 μl into A5... | ||
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8. Mix A5 by pipetting up and down 3x and transfer 100 μl into A6... | 8. Mix A5 by pipetting up and down 3x and transfer 100 μl into A6... | ||
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9. Mix A6 by pipetting up and down 3x and transfer 100 μl into A7... | 9. Mix A6 by pipetting up and down 3x and transfer 100 μl into A7... | ||
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10. Mix A7 by pipetting up and down 3x and transfer 100 μl into A8... | 10. Mix A7 by pipetting up and down 3x and transfer 100 μl into A8... | ||
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11. Mix A8 by pipetting up and down 3x and transfer 100 μl into A9… | 11. Mix A8 by pipetting up and down 3x and transfer 100 μl into A9… | ||
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12. Mix A9 by pipetting up and down 3x and transfer 100 μl into A10... | 12. Mix A9 by pipetting up and down 3x and transfer 100 μl into A10... | ||
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13. Mix A10 by pipetting up and down 3x and transfer 100μl into A11... | 13. Mix A10 by pipetting up and down 3x and transfer 100μl into A11... | ||
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14. Mix A11 by pipetting up and down 3x and transfer 100 μl into liquid waste | 14. Mix A11 by pipetting up and down 3x and transfer 100 μl into liquid waste | ||
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TAKE CARE NOT TO CONTINUE SERIAL DILUTION INTO COLUMN 12. | TAKE CARE NOT TO CONTINUE SERIAL DILUTION INTO COLUMN 12. | ||
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15. IMPORTANT! Re-Mix (Pipette up and down) each row of your plate immediately before putting in the plate reader! (This is important because the beads begin to settle to the bottom of the wells within about 10 minutes, which will affect the measurements.)Take care to mix gently and avoid creating bubbles on the surface of the liquid. | 15. IMPORTANT! Re-Mix (Pipette up and down) each row of your plate immediately before putting in the plate reader! (This is important because the beads begin to settle to the bottom of the wells within about 10 minutes, which will affect the measurements.)Take care to mix gently and avoid creating bubbles on the surface of the liquid. | ||
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16. Measure Abs600 of all samples in instrument | 16. Measure Abs600 of all samples in instrument | ||
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− | 17. Record the data in your notebook | + | <br> |
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18. Import data into Excel sheet provided ( particle standard curve tab ) | 18. Import data into Excel sheet provided ( particle standard curve tab ) | ||
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<font size="5">Results</font> | <font size="5">Results</font> | ||
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<font size="5">Raw Data</font> | <font size="5">Raw Data</font> | ||
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<img src="https://static.igem.org/mediawiki/2018/5/56/T--Mingdao--Modeling--RawData%28img50%29.jpg> | <img src="https://static.igem.org/mediawiki/2018/5/56/T--Mingdao--Modeling--RawData%28img50%29.jpg> | ||
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Revision as of 15:06, 9 September 2018