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− | <a class="fancybox" rel="group" href="https://static.igem.org/mediawiki/2015/1/12/Unitn_pics_results_prfalcons.jpg" title="Purification of Proteorhodopsin. "><img src="https://static.igem.org/mediawiki/2015/2/2c/Unitn_pics_results_prfalcons_thumb.jpg" alt="" style="width:100%; max-width:800px;"/></a> | + | <a class="fancybox" rel="group" href="https://static.igem.org/mediawiki/2015/3/37/Unitn_pics_project_prpellets.png" title="Purification of Proteorhodopsin. "><img src="https://static.igem.org/mediawiki/2015/3/3f/Unitn_pics_project_prpellets_thumb.jpg" alt="" style="width:100%; max-width:1500px;"/></a> |
| <p class="image_caption"><span>Purification of Proteorhodopsin. </span>NEB10β cells transformed with <a href="http://parts.igem.org/Part:BBa_K1604010" target="_blank">BBa_K1604010</a> and <a href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a> were induced in LB at 37°C in the presence of retinal. The cell pellets were resuspended in 50 mM Tris-Cl pH 8 with 5 mM MgCl2 and sonicated. The lysate was centrifuged at 10,000 rpm for 20 min at 4C. The supernatant was ultracentrifuged for 100,000 g for 3 hours at 4C. The three tubes in front contain proteorhodopsin purified fractions and the three tubes in the back are negative controls treated in the same conditions</p> | | <p class="image_caption"><span>Purification of Proteorhodopsin. </span>NEB10β cells transformed with <a href="http://parts.igem.org/Part:BBa_K1604010" target="_blank">BBa_K1604010</a> and <a href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a> were induced in LB at 37°C in the presence of retinal. The cell pellets were resuspended in 50 mM Tris-Cl pH 8 with 5 mM MgCl2 and sonicated. The lysate was centrifuged at 10,000 rpm for 20 min at 4C. The supernatant was ultracentrifuged for 100,000 g for 3 hours at 4C. The three tubes in front contain proteorhodopsin purified fractions and the three tubes in the back are negative controls treated in the same conditions</p> |
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| + | <p class="image_caption" style="margin-top:1.5em !important;"><span>Proteorhodopsin expression in M9</span>Cells transformed with <a href="http://parts.igem.org/Part:BBa_K1604010" target="_blank">BBa_K1604010</a> and <a href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a> were grown in LB and transferred in M9 at an OD of 0.6 and induced with arabinose with the presence of 10 µM of retinal. After 6 hours of induction the cells were centrifuged and the supernatant was discarded. From left to right: araC-pBAD induced with retinal (A), proteorhodopsin induced with retinal (B), proteorhodopsin induced (C) and not induced (D) both without retinal.</p> |
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− | <a class="fancybox" rel="group" href="https://static.igem.org/mediawiki/2015/2/26/Unitn_pics_results_prfalcons2.jpg" title="Proteorhodopsin expression in M9"><img src="https://static.igem.org/mediawiki/2015/0/01/Unitn_pics_results_prfalcons2_thumb.jpg" alt="" style="width:100%; max-width:600px;"/></a>
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− | <p class="image_caption" style="margin-top:1.5em !important;"><span>Proteorhodopsin expression in M9</span>Cells transformed with <a href="http://parts.igem.org/Part:BBa_K1604010" target="_blank">BBa_K1604010</a> and <a href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a> were grown in LB and transferred in M9 at an OD of 0.6 and induced with arabinose with the presence of 10 µM of retinal. After 6 hours of induction the cells were centrifuged and the supernatant was discarded. From left to right: araC-pBAD induced with retinal (A), proteorhodopsin induced with retinal (B), proteorhodopsin induced (C) and not induced (D) both without retinal.</p>
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− | <p class="image_caption" style="margin-top:0;"><span>Anaerobioc growth of BBa_K1600410</span> E. coli transformed with <a href="http://parts.igem.org/Part:BBa_K1604010" target="_blank">BBa_K1604010</a> (blue line) and <a class="i_linker" href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a> (green line) were grown in LB at 37°C untilan OD of 0.6 and induced in M9 minimal medium with 5 mM arabinose and 10 uM retinal in the dark. After 5 hours of induction the culture were transferred in sealed bottles in the anaerobic chamber and placed again in the thermoshaker. Sample in the dark were kept in aluminum foil. Light exposed samples were excited with a 160W halogen light bulb placed outside the incubator. The blue line (proteorhodopsin) is the result of the average of 6 different samples (3 in the dark and 3 in the light) while the green line (araC-pBAD) is the average of 1 sample in the dark and 1 in the light.</p> | + | <p class="image_caption" style="margin-top:0;"><span>Anaerobioc growth of BBa_K1600410</span> E. coli transformed with <a href="http://parts.igem.org/Part:BBa_K1604010" class="i_linker" target="_blank">BBa_K1604010</a> (blue line) and <a href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a> (green line) were grown in LB at 37°C untilan OD of 0.6 and induced in M9 minimal medium with 5 mM arabinose and 10 uM retinal in the dark. After 5 hours of induction the culture were transferred in sealed bottles in the anaerobic chamber and placed again in the thermoshaker. Sample in the dark were kept in aluminum foil. Light exposed samples were excited with a 160W halogen light bulb placed outside the incubator. The blue line (proteorhodopsin) is the result of the average of 6 different samples (3 in the dark and 3 in the light) while the green line (araC-pBAD) is the average of 1 sample in the dark and 1 in the light.</p> |
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| <p>After five hours of induction in the dark (i.e. the samples were wrapped in aluminum foils) the cultures were split in the anaerobic chamber in light and dark conditions. The cultures were placed in the thermoshaker that was illuminated from the outside. Half of the cultures were kept in the dark and the other half were exposed to the light. <br /> The OD<sub>600</sub> was constantly monitored because E. coli’s growth is slowed down in stressful conditions such as the lack of oxygen.</p> | | <p>After five hours of induction in the dark (i.e. the samples were wrapped in aluminum foils) the cultures were split in the anaerobic chamber in light and dark conditions. The cultures were placed in the thermoshaker that was illuminated from the outside. Half of the cultures were kept in the dark and the other half were exposed to the light. <br /> The OD<sub>600</sub> was constantly monitored because E. coli’s growth is slowed down in stressful conditions such as the lack of oxygen.</p> |
− | <p>The bacteria expressing proteorhodopsin have an increased lifetime when compared to a negative control with araC-pBAD (<a class="i_linker" href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a>). However we did not observe significant changes between light and dark with this test. The explanations could be several. Most likely we were not exciting properly the system. However it seems that there is a basal functionality even in the absence of light, probably due to activation of the proton pump independently from light exposure.</p> | + | <p>The bacteria expressing proteorhodopsin have an increased lifetime when compared to a negative control with araC-pBAD (<a href="http://parts.igem.org/Part:BBa_K731201" target="_blank">BBa_K731201</a>). However we did not observe significant changes between light and dark with this test. The explanations could be several. Most likely we were not exciting properly the system. However it seems that there is a basal functionality even in the absence of light, probably due to activation of the proton pump independently from light exposure.</p> |
| <p>While we decided to explore different light sources, we built a solar mimicking apparatus, that would allow us to directly illuminate the samples without the glass of the thermoshaker.</p> | | <p>While we decided to explore different light sources, we built a solar mimicking apparatus, that would allow us to directly illuminate the samples without the glass of the thermoshaker.</p> |
| </section> | | </section> |