Difference between revisions of "Team:Bordeaux/Results"
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− | <h5 align="center"><b>LABORATORY WORK</b></h5> | + | <h5 align="center"><b>LABORATORY WORK</b></h5> |
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− | <h6 align="center">1.Cloning</h6> | + | <h6 align="center">1.Cloning</h6> |
− | <p align="justify">To achieve our Curdlan production by <i>Escherichia coli</i>, it was necessary to integrate our interest gene <i>crdS</i> controlled by the promoter <i>OsmY</i> in two types of plasmids: | + | <p align="justify">To achieve our Curdlan production by <i>Escherichia coli</i>, it was necessary to integrate our interest gene <i>crdS</i> controlled by the promoter <i>OsmY</i> in two types of plasmids: |
− | <br>✵ in pSB1C3 plasmid for the characterization of our biobricks | + | <br>✵ in pSB1C3 plasmid for the characterization of our biobricks |
− | + | <br>• <i>OsmY</i> promoter only | |
− | + | <br>• <i>crdS</i> gene only | |
− | + | <br>• promoter and gene | |
− | <br>✵ in pUC for production steps | + | <br>✵ in pUC for production steps |
− | + | <br>• promoter and gene</p> | |
− | <br> <br> | + | <br> <br> |
− | <h6 align="center">3.Curdlan production</h6> | + | <h6 align="center">3.Curdlan production</h6> |
− | <p align="justify"> </p> | + | <p align="justify"> </p> |
− | <img style="width:20vw;height:20vw" src="https://static.igem.org/mediawiki/2015/9/9f/Erlen_production.png"> | + | <img style="width:20vw;height:20vw" src="https://static.igem.org/mediawiki/2015/9/9f/Erlen_production.png"> |
− | <h6 align="center">4.Purification and Quantitative analysis</h6> | + | <h6 align="center">4.Purification and Quantitative analysis</h6> |
− | <p align="justify"> To obtain Curdlan, cells were chemically destroyed by NaOH and many centrifugations. | + | <p align="justify"> To obtain Curdlan, cells were chemically destroyed by NaOH and many centrifugations. |
− | <br> Curdlan purification was performed by neutralization after adding acetic acid. | + | <br> Curdlan purification was performed by neutralization after adding acetic acid. |
− | <br> Quantitative analysis was done before and after purification to compare and eliminate non significant measures (background signal). </p> | + | <br> Quantitative analysis was done before and after purification to compare and eliminate non significant measures (background signal). </p> |
− | <p align="justify">N.B. Also, we use a polarimeter to characterize our Curdlan molecule produced. </p> | + | <p align="justify">N.B. Also, we use a polarimeter to characterize our Curdlan molecule produced. </p> |
− | </div> | + | </div> |
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+ | <h6 align="center">2.Transformation</h6> | ||
+ | <p align="justify">These plasmids are then transferred into competent bacteria <i>E. coli DH5α</i> by transformation. The selection of transformed bacteria is done by chloramphenicol resistance for pSB1C3 plasmid and by ampicillin resistance for pUC plasmid. </p> | ||
+ | <br> | ||
+ | <p align="justify">To check that cloning work, plasmids are digested with EcoR1 and Pst1 restriction enzymes. </p> | ||
+ | <img style="width:15vw;height:20vw" src="https://static.igem.org/mediawiki/2015/4/44/Agarose_electrophoresis_gel_V2.png"> | ||
+ | <p class="reference" align ="center"> <b> Figure 3:Agarose electrophoresis gel </b> </p> | ||
+ | <br><p align="justify"><u>Figure 3.</u> As we can see, the band corresponding to the piece of linearized plasmid containing <i>OsmY</i> promoter and <i>crdS</i> gene is a bit higher than the band corresponding to the piece of linearized plasmid containing <i>crdS</i> gene only. </p> | ||
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− | <h5 align="center"> <b><i>E. coli</i> RESULTS </b></h5> | + | <h5 align="center"> <b><i>E. coli</i> RESULTS </b></h5> |
− | <br> | + | <br> |
− | <p align="justify">We produced some Curdlan compared to non transformed strain of <i>DH5α</i>. We analyzed data with a student test to prove our results are significant. The theoretical concentration obtained in the Control condition corresponds to the non significant measure (background signal). | + | <p align="justify">We produced some Curdlan compared to non transformed strain of <i>DH5α</i>. We analyzed data with a student test to prove our results are significant. The theoretical concentration obtained in the Control condition corresponds to the non significant measure (background signal). |
− | <br> | + | <br> |
N.B. We realized these figures by doing the average of all production results in each medium.</p> | N.B. We realized these figures by doing the average of all production results in each medium.</p> | ||
− | <br> | + | <br> |
− | <img style="width:55vw;height:20vw"src="https://static.igem.org/mediawiki/2015/thumb/4/49/BordeauxTeam_Mix_LB_and_M63_resultsV3.png/800px-BordeauxTeam_Mix_LB_and_M63_resultsV3.png"> | + | <img style="width:55vw;height:20vw"src="https://static.igem.org/mediawiki/2015/thumb/4/49/BordeauxTeam_Mix_LB_and_M63_resultsV3.png/800px-BordeauxTeam_Mix_LB_and_M63_resultsV3.png"> |
− | <p class="reference" align ="center"> <b> Figure 5: Quantitative analysis of purified Curdlan with aniline blue</b> </p> | + | <p class="reference" align ="center"> <b> Figure 5: Quantitative analysis of purified Curdlan with aniline blue</b> </p> |
− | <p align="justify"> → Each medium can be used for the Curdlan production. But, we can’t compare these two results and say that produced Curdlan quantity is higher in LB than in M63 medium because productions are not realized at the same time in these cases.</p> | + | <p align="justify"> → Each medium can be used for the Curdlan production. But, we can’t compare these two results and say that produced Curdlan quantity is higher in LB than in M63 medium because productions are not realized at the same time in these cases.</p> |
− | <p align="justify"> In following results, we have studied production in M63 and LB media started at the same time. </p> | + | <p align="justify"> In following results, we have studied production in M63 and LB media started at the same time. </p> |
− | <br> | + | <br> |
− | <img style="width:32vw;height:20vw" src="https://static.igem.org/mediawiki/2015/2/23/Bordeaux_Team_LB_and_M63_resultsV2.png"> | + | <img style="width:32vw;height:20vw" src="https://static.igem.org/mediawiki/2015/2/23/Bordeaux_Team_LB_and_M63_resultsV2.png"> |
− | <p class="reference" align ="center"> <b> Figure 6: Quantitative analysis of purified Curdlan with aniline blue</b> </p> | + | <p class="reference" align ="center"> <b> Figure 6: Quantitative analysis of purified Curdlan with aniline blue</b> </p> |
− | <p align="justify"> → Now, thanks to a statistic test, we can conclude that Curdlan production is doubled in LB medium compared to M63 medium. </p> | + | <p align="justify"> → Now, thanks to a statistic test, we can conclude that Curdlan production is doubled in LB medium compared to M63 medium. </p> |
− | <p align="justify"> LB medium has an unknown glucose concentration contained in yeast extract whereas in M63 medium we have controled this parameter. We suppose that LB glucose concentration is higher than in the second medium. That will be explain the difference between these two conditions. </p> | + | <p align="justify"> LB medium has an unknown glucose concentration contained in yeast extract whereas in M63 medium we have controled this parameter. We suppose that LB glucose concentration is higher than in the second medium. That will be explain the difference between these two conditions. </p> |
− | <p align="justify"> However, compared to <i>Saccharomyces cerevisiae</i>, our results are very low: about 10 to 20µg/mL for Bacteria to 100µg/mL for Yeast. </p> | + | <p align="justify"> However, compared to <i>Saccharomyces cerevisiae</i>, our results are very low: about 10 to 20µg/mL for Bacteria to 100µg/mL for Yeast. </p> |
− | <p align="justify"> We have tried some optimization protocols but without success. | + | <p align="justify"> We have tried some optimization protocols but without success. |
− | <br>XXX à finir XXX </p> | + | <br>XXX à finir XXX </p> |
− | <br> | + | <br> |
− | <h6 align="center"> Characterization </h6> | + | <h6 align="center"> Characterization </h6> |
− | <p align="justify"> Part 1. To verify <i>OsmY</i> promoter is only active in the stationary phase, we realized Curdlan quantitative analysis every hour of a culture in LB medium. The switch of temperature for the culture is linked to the transition in stationary phase. | + | <p align="justify"> Part 1. To verify <i>OsmY</i> promoter is only active in the stationary phase, we realized Curdlan quantitative analysis every hour of a culture in LB medium. The switch of temperature for the culture is linked to the transition in stationary phase. |
− | <br>→ As we can see, Curdlan appears after the switch at 27°C. So, <i>OsmY</i> promoter is active in stationary phase only. <b>(Fig.7)<b></p> | + | <br>→ As we can see, Curdlan appears after the switch at 27°C. So, <i>OsmY</i> promoter is active in stationary phase only. <b>(Fig.7)<b></p> |
− | <img style="width:45vw;height:30vw" src="https://static.igem.org/mediawiki/2015/thumb/1/16/Bordeaux_Team_promoter_characterizationV4.png/800px-Bordeaux_Team_promoter_characterizationV4.png"> | + | <img style="width:45vw;height:30vw" src="https://static.igem.org/mediawiki/2015/thumb/1/16/Bordeaux_Team_promoter_characterizationV4.png/800px-Bordeaux_Team_promoter_characterizationV4.png"> |
− | <p class="reference" align ="center"> <b> Figure 7: <i>OsmY</i> promoter characterization <br> </p> | + | <p class="reference" align ="center"> <b> Figure 7: <i>OsmY</i> promoter characterization <br> </p> |
− | <br> | + | <br> |
− | <p align="justify"> Part 2. To verify produced molecule is Curdlan, we analysed samples with a polarimeter. The reference used was Curdlan bought to do standard range for the quantitative analysis with aniline blue.</p> | + | <p align="justify"> Part 2. To verify produced molecule is Curdlan, we analysed samples with a polarimeter. The reference used was Curdlan bought to do standard range for the quantitative analysis with aniline blue.</p> |
− | <p align="justify">A substance is optically active or has a rotatory power when it deflects polarization plane of light from an <i>α</i> angle. This rotatory power is related to the presence of one or more asymmetric carbon within the molecule. All sugars (except dihydroxyacetone) are chiral molecules, so they all have a rotatory power. This property allows the polarimetric determination of sugars in pure solution thanks to the law of Biot. </p> | + | <p align="justify">A substance is optically active or has a rotatory power when it deflects polarization plane of light from an <i>α</i> angle. This rotatory power is related to the presence of one or more asymmetric carbon within the molecule. All sugars (except dihydroxyacetone) are chiral molecules, so they all have a rotatory power. This property allows the polarimetric determination of sugars in pure solution thanks to the law of Biot. </p> |
− | <p align="justify"> There are two types of optically active substances: | + | <p align="justify"> There are two types of optically active substances: |
− | <br>✵Those which deflect polarization plane of light from an <i>α</i> angle to the right. The measured angle is positive and the substance is in dextrorotatory form. | + | <br>✵Those which deflect polarization plane of light from an <i>α</i> angle to the right. The measured angle is positive and the substance is in dextrorotatory form. |
− | <br>✵Those which deflect polarization plane of light from an <i>α</i> angle to the left. The measured angle is negative and the substance is in levorotatory form. </p> | + | <br>✵Those which deflect polarization plane of light from an <i>α</i> angle to the left. The measured angle is negative and the substance is in levorotatory form. </p> |
− | <p align="justify"> <u>Results</u> | + | <p align="justify"> <u>Results</u> |
− | <br>– Results were obtained with a Jasco P-2000 polarimeter. | + | <br>– Results were obtained with a Jasco P-2000 polarimeter. |
− | <br>– Measures are done at 25°C. </p> | + | <br>– Measures are done at 25°C. </p> |
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− | <h6 align="center"> At the end... </h6> | + | <h6 align="center"> At the end... </h6> |
− | <p align="center"> <b> We have obtained 3.44g of Curdlan in one month of production and with one single gene! </p> | + | <p align="center"> <b> We have obtained 3.44g of Curdlan in one month of production and with one single gene! </p> |
− | <p align="center"> photo à mettre </p> | + | <p align="center"> photo à mettre </p> |
− | <br> | + | <br> |
− | <h6 align="center">Perspectives</h6> | + | <h6 align="center">Perspectives</h6> |
− | <p align="justify">Despite amplification problems of two genes, we performed cloning with the <i>crdA</i> and <i>crdC</i> sequences. Each gene was placed into plasmids possessing resistance to a different antiobiotic: | + | <p align="justify">Despite amplification problems of two genes, we performed cloning with the <i>crdA</i> and <i>crdC</i> sequences. Each gene was placed into plasmids possessing resistance to a different antiobiotic: |
− | <br>✵pUC-OsmY-crdS (Ampicillin resistance) | + | <br>✵pUC-OsmY-crdS (Ampicillin resistance) |
− | <br>✵pSB1C3-OsmY-crdA (Chloramphenicol resistance) | + | <br>✵pSB1C3-OsmY-crdA (Chloramphenicol resistance) |
− | <br>✵pSB3T5-OsmY-crdC (Tetracycline resistance) | + | <br>✵pSB3T5-OsmY-crdC (Tetracycline resistance) |
− | <br> We have tried without success a triple transformation. </p> | + | <br> We have tried without success a triple transformation. </p> |
− | <p align="justify"> We hope that production yield of Curdlan would be higher if the three genes were present. </p> | + | <p align="justify"> We hope that production yield of Curdlan would be higher if the three genes were present. </p> |
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− | <h6> <a href= "https://2015.igem.org/Team:Bordeaux/Description" style=" color: #FF5E00;"> Description ☚ </a> Previous Page . Next Page <a href= "https://2015.igem.org/Team:Bordeaux/Team" style=" color: #FF5E00;"> ☛ About our Team</h6> | + | <h6> <a href= "https://2015.igem.org/Team:Bordeaux/Description" style=" color: #FF5E00;"> Description ☚ </a> Previous Page . Next Page <a href= "https://2015.igem.org/Team:Bordeaux/Team" style=" color: #FF5E00;"> ☛ About our Team</h6> |
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Revision as of 18:45, 12 September 2015