Team:ESBS-Strasbourg/Project/Application
From 2010.igem.org
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<a target="_blank" href="https://static.igem.org/mediawiki/2010/4/4b/ESBS-Strasbourg-Appfig1.jpg"> | <a target="_blank" href="https://static.igem.org/mediawiki/2010/4/4b/ESBS-Strasbourg-Appfig1.jpg"> | ||
- | <i><font color="#E9AF03" size="1">Figure 1 An example of how protein levels can be adjusted by alternating light impulses. | + | <i><font color="#E9AF03" size="1">Figure 1 An example of how protein levels can be adjusted by alternating light impulses. In the beginning, the protein levels are at native concentration. After a light impulse the degradation system is on and will degrade the protein very fast and efficient. These first two steps are like a gene knock out with an on and off switch. After this an alternation of light impulses turn the system on and off in certain time periods. So the protease is turned between active and inactive. This allows the fine tuned adjustment of protein concentration in the cells.</font></i></a></div> |
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<p><b>Flip Flop</b></p> | <p><b>Flip Flop</b></p> | ||
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<a target="_blank" href="https://static.igem.org/mediawiki/2010/e/e0/ESBS-Strasbourg-Appfig2.jpg"> | <a target="_blank" href="https://static.igem.org/mediawiki/2010/e/e0/ESBS-Strasbourg-Appfig2.jpg"> | ||
- | <i><font color="#E9AF03" size="1">Figure 2 The flip flop mechanism. This mechanism shows how to change from the expression of a | + | <i><font color="#E9AF03" size="1" >Figure 2 The flip flop mechanism. This mechanism shows how to change from the expression of a gene in the first cassette to a gene in the second cassette. P is the promoter, CR is a cross repressor, the symbol besides the cross repressor symbolize that this protein is tagged with the DAS degradation sequence, CA is a cross activator and C is the gene cassette. At start condition P1 expresses all the proteins of gene cassette one (C1). The cross repressor for promoter P2 (CR2) represses P2 stronger than the cross activator for P2 (CA2) activates it. This results in an expression of the GFP protein. After light induction with 660nm, the ClpXP protease will degrade the tagged CR2. After the degradation of the repressor, the cross activator will activate the promoter P2 which will lead to an complete expression of gene cassette two (C2). The CR1 of the C2 will now repress P1 which will terminate the expression of gene cassette one. So a switch from C1 to C2 is achieved. An light impulse of 730nm will switch of the ClpXP protease. With another light impulse of 660nm the ClpXP system will be turned on and a switch from C2 to C1 will occur. A detailed analysis of this mechanism can be seen in the modeling part.</font></i></a></div> |
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<a target="_blank" href="https://static.igem.org/mediawiki/2010/2/2a/ESBS-Strasbourg-Appfig3.jpg"> | <a target="_blank" href="https://static.igem.org/mediawiki/2010/2/2a/ESBS-Strasbourg-Appfig3.jpg"> | ||
- | <i><font color="#E9AF03" size="1">Figure 3 The three step oscillator. The principle is the same as with the flip flop mechanism. In the beginning | + | <i><font color="#E9AF03" size="1">Figure 3 The three step oscillator. The principle is the same as with the flip flop mechanism. In the beginning gene cassette C1 with GFP is expressed and CR2 and CR3 represses P2 and P3. After a light impulse of 660nm, CR2 and CR3 are degraded and CA2 can activate P2. The ClpXP system will be switch off by a light impulse with 730nm. Due to the absence of CR2 and CR3 gene cassette C2 and C3 will be no longer repressed. But as just an CA for the P2 was expressed from C1, C2 will be far stronger expressed than C3. So the CR3 on the C2 will terminate gene expression of P3 and thus will terminate the whole expression of C3. CR1 will also repress the expression of P1 and thus the whole expression of C1. After another light impulse of 660nm, the switch from gene cassette two (C1) to gene cassette three (C3) will occur with the same mechanism as from C1 to C2. </font></i></a>.</font></i></a></div> |
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Revision as of 16:13, 26 October 2010
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