Team:SDU-Denmark/project-p

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When played at real time speed these videos seem slow and not showing any tendency, though when played at 4 times the normal speed, the photosensor will seem to show slightly increased motility when exposed to blue light. Even though the bacteria displayed disappointing motility, we went on and did computer analysis on the videos by the help of the open source software "CellTrack" (Link!). The paths that were mapped showed a longer distance traveling for the photosensor exposed to blue light, when compared with the rest of the samples. This could indicated a decreased tumbling frequency, but since the bacteria's motility was very low, the results were stamped as unreliable and a new protocol had to be devised.<br><br>
When played at real time speed these videos seem slow and not showing any tendency, though when played at 4 times the normal speed, the photosensor will seem to show slightly increased motility when exposed to blue light. Even though the bacteria displayed disappointing motility, we went on and did computer analysis on the videos by the help of the open source software "CellTrack" (Link!). The paths that were mapped showed a longer distance traveling for the photosensor exposed to blue light, when compared with the rest of the samples. This could indicated a decreased tumbling frequency, but since the bacteria's motility was very low, the results were stamped as unreliable and a new protocol had to be devised.<br><br>
'''Computerized analysis of the bacterial motility with the Thor prototype by Unisensor A/S and the Unify software:'''<br>
'''Computerized analysis of the bacterial motility with the Thor prototype by Unisensor A/S and the Unify software:'''<br>
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For this experiment we changed our protocol for cultivating swimming bacteria.<br>
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After a series of experiments we settled on a pipette tip from a freezing culture inoculated in 5 ml LB media. The culture was then incubated for 12 hours at 22° C and 160 RPM. Afterwards the unmodified cultures are ready for microscopy. At this point retinal is added to the strain containing the photosensor and it continues to grow for another two hours in darkness, at which point these bacteria also are ready for analysis.<br>
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The machine and software used for the analysis are prototypes and still under heavy development. Because of trade secrets it is impossible for us to explain how the machine works or give a detailed explanation of it's mechanism until the Thor has reached production status. Simplistically said it is a very advanced video microscope, with which it is possible to analyse liquids and the particles inside in both 2D and 3D, while also tracking them over time.
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The data collection and preparation of microscopy slides, was basically done like explained above, except that instead of light filters we used diodes that already sent out light at the correct wavelengths.<br>
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The results look like these:<br>
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<br>
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(YOUTUBE)<br>
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<br>
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The data analysis is still ongoing.
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Revision as of 13:17, 24 October 2010