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| <p>The bacterial cultures were split and then placed in the anodic chamber of a small Microbial Fuel Cell (borrowed from one of our instructor Martin Hanczyc) and exposed to the light of a blue LED. The experiment was repeated for 3 days, keeping the same experimental conditions. </p> | | <p>The bacterial cultures were split and then placed in the anodic chamber of a small Microbial Fuel Cell (borrowed from one of our instructor Martin Hanczyc) and exposed to the light of a blue LED. The experiment was repeated for 3 days, keeping the same experimental conditions. </p> |
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− | <a class="fancybox" rel="group" href=""><img src="" alt="" style="width:100%; "/></a> | + | <a class="fancybox" rel="group" title="Small Microbial Fuel Cell with bacteria expressing BBa_K731201 and the negative control in the light" href="https://static.igem.org/mediawiki/2015/4/40/Unitn_pics_mfc_ima1.jpg"><img src="https://static.igem.org/mediawiki/2015/2/22/Unitn_pics_mfc_ima1_thumb.jpg" alt="" style="width:100%; "/></a> |
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| <p class="image_caption"><span>Small Microbial Fuel Cell with bacteria expressing BBa_K731201 and the negative control in the light.</span> Bacteria were placed in the anode covered with a layer of mineral oil to keep anaerobic conditions. The anode was exposed to blue light LED. Chemical mediators were added in the anode (Methylene blue, 100 μM) and in the cathode (Ferricyanide, 10 mM)</p> | | <p class="image_caption"><span>Small Microbial Fuel Cell with bacteria expressing BBa_K731201 and the negative control in the light.</span> Bacteria were placed in the anode covered with a layer of mineral oil to keep anaerobic conditions. The anode was exposed to blue light LED. Chemical mediators were added in the anode (Methylene blue, 100 μM) and in the cathode (Ferricyanide, 10 mM)</p> |
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− | <a class="fancybox" rel="group" href=""><img src="" alt="" style="width:100%; "/></a> | + | <a class="fancybox" rel="group" title="More electricity with proteorhodopsin!" href="https://static.igem.org/mediawiki/2015/2/2f/Unitn_pics_mfc_graph1.png"><img src="https://static.igem.org/mediawiki/2015/d/d3/Unitn_pics_mfc_graph1_thumb.png" alt="" style="width:100%; "/></a> |
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− | <p class="image_caption"><span>More electricity with proteorhodopsin. </span>BBa_K1604010 and BBa_K731201 cells were grown and induced as described before. For each construct one MFC was placed in the light. The cells were connected to a data logging millimeter connected to an external variable resistor to register the voltage parameter of our system. Every hour the resistance was changed starting from 10MΩ to 1 KΩ Panel A: Polarization curve for BBa_K1604010 and BBa_K731201; for each data point the voltage was measured, while current and power were calculated with the Ohm law. Panel B: Power curve for BBa_K1604010 and BBa_K731201. The calculated power is plotted against the current to estimate the maximum power produced. </p> | + | <p class="image_caption"><span>. </span>BBa_K1604010 and BBa_K731201 cells were grown and induced as described before. For each construct one MFC was placed in the light. The cells were connected to a data logging millimeter connected to an external variable resistor to register the voltage parameter of our system. Every hour the resistance was changed starting from 10MΩ to 1 KΩ Panel A: Polarization curve for BBa_K1604010 and BBa_K731201; for each data point the voltage was measured, while current and power were calculated with the Ohm law. Panel B: Power curve for BBa_K1604010 and BBa_K731201. The calculated power is plotted against the current to estimate the maximum power produced. </p> |
| </div> | | </div> |
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− | <a class="fancybox" rel="group" href=""><img src="" alt="" style="width:100%; "/></a> | + | <a class="fancybox" rel="group" href="https://static.igem.org/mediawiki/2015/b/b3/Unitn_pics_mfc_graph3.png" title="BBa_K1604010 polarization curve: light versus dark."><img src="https://static.igem.org/mediawiki/2015/7/70/Unitn_pics_mfc_graph3_thumb.png" alt="" style="width:100%; "/></a> |
− | <p class="image_caption"><span>BBa_K1604010 polarization curve: light versus dark.</span>The experiment was performed with the same experimental details described before. This time MFC with BBa_K1604010 was placed in the dark and one was exposed to the light of a blue LED.</p>
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| + | <p class="image_caption"><span>BBa_K1604010 polarization curve: light versus dark.</span>The experiment was performed with the same experimental details described before. This time MFC with BBa_K1604010 was placed in the dark and one was exposed to the light of a blue LED.</p> |
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− | <h3 class="wow fadeInDown">Electrons thieves </h3> | + | <h3 class="wow fadeInDown">Electrons thieves</h3> |
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| <p>All previous tests were operated by adding exogenous mediators to the anodic medium (<i>i.e.</i> Methylene blue, Neutral red). However this does not represent a valid method for future applications of the MFC. Related to our main project, we also characterized a <b>mediatorless MFC</b> by expressing <i>Shewanella oneidensis</i> electron export system in an engineered <i>E.coli</i> strain from Ajo-Franklin Lab in Berkley). We characterized this strain in the MFC because we wanted to use it later in our Solar pMFC prototype. It should be noted that the parts used here were not BioBricks. </p> | | <p>All previous tests were operated by adding exogenous mediators to the anodic medium (<i>i.e.</i> Methylene blue, Neutral red). However this does not represent a valid method for future applications of the MFC. Related to our main project, we also characterized a <b>mediatorless MFC</b> by expressing <i>Shewanella oneidensis</i> electron export system in an engineered <i>E.coli</i> strain from Ajo-Franklin Lab in Berkley). We characterized this strain in the MFC because we wanted to use it later in our Solar pMFC prototype. It should be noted that the parts used here were not BioBricks. </p> |
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− | <a class="fancybox" rel="group" href=""><img src="" alt="" style="width:100%; "/></a> | + | <a class="fancybox" rel="group" title="E. coli Mtr electron transport system polarization and power curve." href="https://static.igem.org/mediawiki/2015/c/c9/Unitn_pics_mfc_graph2.png"><img src="https://static.igem.org/mediawiki/2015/7/7e/Unitn_pics_mfc_graph2_thumb.png" alt="" style="width:100%; "/></a> |
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| <p class="image_caption"><span><i> E.coli</i> Mtr electron transport system polarization and power curve.</span>C43(DE3) cotransformed with a IPTG inducible plasmid carrying the <i>cymAmtrCAB</i> operon and a plasmid with <i>ccmA-H</i> under pTet constitutive promoter, were grown in LB and induced with IPTG (0.5 mM). The induced cells were placed in a MFC without mediators. The data were acquired as described earlier. </p> | | <p class="image_caption"><span><i> E.coli</i> Mtr electron transport system polarization and power curve.</span>C43(DE3) cotransformed with a IPTG inducible plasmid carrying the <i>cymAmtrCAB</i> operon and a plasmid with <i>ccmA-H</i> under pTet constitutive promoter, were grown in LB and induced with IPTG (0.5 mM). The induced cells were placed in a MFC without mediators. The data were acquired as described earlier. </p> |
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− | <p> Proteorhodopsin can power the blue-light LED used by UniTN iGEM Trento 2013 to produce ethylene!</p> | + | <p class="image_caption"> Proteorhodopsin can power the blue-light LED used by UniTN iGEM Trento 2013 to produce ethylene! We used small MFCs filled with proteorhodopsin-expressing bacteria (BBa_K1604010), connected in series, to light up a few electronic apparatus, including a calculator, a blue-light LED and a lab timer.</p> |
− | <p>We used small MFCs filled with proteorhodopsin-expressing bacteria (BBa_K1604010), connected in series, to light up a few electronic apparatus, including a calculator, a blue-light LED and a lab timer.</p>
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− | <p class="image_caption"><span><i> E.coli</i> engineered with Proteorhodopsin light activated can power up electrical devices with MFCs connected in series. </span> 3 MFCs can start a lab timer, while 12 MFCs can start a functioning calculator and a blue-light LED. </p> | + | <a class="fancybox" rel="group" href="https://static.igem.org/mediawiki/2015/c/c0/Unitn_pics_mfc_twoexamples2.jpg"><img src="https://static.igem.org/mediawiki/2015/4/4e/Unitn_pics_mfc_twoexamples2_thumb.jpg" alt="" style="width:100%; max-width:600px; "/></a> |
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| + | <p class="image_caption"><span><i>E.coli</i> engineered with Proteorhodopsin light activated can power up electrical devices with MFCs connected in series. </span> 3 MFCs can start a lab timer, while 12 MFCs can start a functioning calculator and a blue-light LED. </p> |
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| <p>Watch this video to see our MFC in action:</p> | | <p>Watch this video to see our MFC in action:</p> |
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− | <div class="row"> | + | <p>We saw an increase of electricity production both with bacteria engineered with proteorhodopsin and bacteria expressing mtrCAB. Although the electrochemical effects are comparable, the biological causes are different. We saw an increase in the viability of the bacteria in the anode chamber, thank to the activity of proteorhodopsin and a more efficient electrons transport with mtrCAB part. Next, we should combine the two biological parts for a better MFC performance.</p> |
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− | <p>We saw an increase of electricity production both with bacteria engineered with proteorhodopsin and bacteria expressing mtrCAB. Although the electrochemical effects are comparable, the biological causes are different. We saw an increase in the viability of the bacteria in the anode chamber, thank to the activity of proteorhodopsin and a more efficient electrons transport with mtrCAB part. Next, we should combine the two biological parts for a better MFC performance.</p>
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