Difference between revisions of "Team:Arizona State/Experiments"

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<h2> <ins> Amber Mani </ins> </h2>
 
<h2> <ins> Amber Mani </ins> </h2>
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<h2>Plate reader protocol with Data Analysis for Liquid Culture Inductions </h2>
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<p>How to set up and run the plate reader for overnight growth curves. </p>
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<h3>Materials:</h3>
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<ul>
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<li> (Your unique set of senders, receivers etc. that you want for testing) In this example set up, Lux I, Esa I, and RpaI were all used in BL21 and are shown to produce AHL </li>
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<li>(Controls) Negative sender- missing the gene for synthase that produces AHL, used for
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control purposes </li>
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<li>Receiver</li>
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<li>GFP (+)</li>
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<li>(-) Receiver </li>
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</ul>
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<h4>Procedure:</h4>
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<h3>Done over 2 days and plate reader protocol at the end: </h3>
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<p>You will want to know the concentrations of the samples you use so that you can see, based on the growth curves, which concentrations will yield the best results. In one example of the growth curve tests, we used concentrations of .05, .1, .2, .3, .5. after determining the OD600 concentrations. the actual growth reader will be on total volumes. We want our final OD600 to be 0.4.</p>
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<h3>Day 1</h3>
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<p>Make liquid cultures of Lux I, EsaI, RpaI, (-)sender in LB/Amp
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3- 5 mL of LB with plated senders
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<ins>want bacteria in the stationary phase of bacterial growth to maximize AHL</ins>
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Make liquid culture of 3 receivers: F2620, GFP(+), and (-) receiver
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3-5 mL of LB with plated senders </p>
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<h3>Day 2</h3>
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<p>Make another culture using the starter cultures and reseed them
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get 5 mL of fresh LB/Amp media and make a 10% seed culture
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5mL of LB with 600 uL of grown start
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<ins>grow for 5 hours
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wanting receivers at exponential phase of growth
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can check this by checking their OD reading </ins>
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between 0.4 and 0.6
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GEN5>protocol of OD600> choose H8-11, H8 being LB well
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Filter senders: (18, 19, 20 & 21:)
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put in Big centrifuge
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start 1 min at 1 RPM, then 2nd minute at 2 RPM, then 8 minutes at 3.6 RPM
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extract the supernatant and put in syringe with a filter on the bottom, filer it into a tube with a
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screw tab on it and label it
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AHL stable at room temperature or in the freezer in the back room with all the plates
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</p>
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<h3><ins>Plate Reader Protocol - check settings as these are examples from a previous experiment</ins><h3>
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<p>measures relative GFP fluorescence in unit of RFU
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ReneRynaJiagi, overnight, OD GFP
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save experiment to your folder
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fix layout to say what rows you want to work with
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go to side tab
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protocol>procedure> make sure at 37C, A(600), F( 485,515), click on fluroescence > Gain >
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options > make sure setup at Automatic gain adjustment > scale to low wells > scale wells A1A3
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> scale value 200 </p>
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<h3>To analyze the data collected from the plate reader</h3>
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<ol type="1">
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<li> Export the data to Excel from the plate reader, graph the data to view the OD and GFP expression curves and pick out the data that stands out. </li>
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<li> Take the triplicates and use excel to get averages for each triplicate of data. </li>
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<li>Use the averaged OD and GFP figures to graph GFP over OD to get the normalization
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curves. </li>
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<li>Compare the graphs to see what data stands out, searching for orthogonality in
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combinations of senders (low GFP expression) meaning low interference and possible
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orthogonality. </li>
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<li>Once you select the 'interesting' data, add error bars (standard deviations) to see the
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success of the samples. </li>
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<li>Use the Hill equation to re-graph the data in a more professional display. </li>
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</ol>
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<h2>Plasmid transformation</h2>
 
<h2>Plasmid transformation</h2>

Revision as of 01:06, 29 September 2017