Team:ULB-Brussels/Project/Results
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<h1>Activity of phoA+P on its N-terminal extremity</h1> | <h1>Activity of phoA+P on its N-terminal extremity</h1> | ||
- | In order to test the functionality of the alcaline phosphatase (PhoA) with a proline (P) on its N-terminal extremity, we constructed different plasmids by restriction-ligation : pBAD33-phoA (wild-type phoA under a galactose-inducible promoter) and pBAD33-P-phoA (phoA with a N-terminal proline, under a galactose-inducible promoter). | + | <p>In order to test the functionality of the alcaline phosphatase (PhoA) with a proline (P) on its N-terminal extremity, we constructed different plasmids by restriction-ligation : pBAD33-phoA (wild-type phoA under a galactose-inducible promoter) and pBAD33-P-phoA (phoA with a N-terminal proline, under a galactose-inducible promoter). |
- | Plasmids were chemoporated into ΔphoA cells and streaked on LB medium containing 1 % glucose, 1 % arabinose or neither | + | Plasmids were chemoporated into ΔphoA cells and streaked on LB medium containing 1 % glucose, 1 % arabinose or neither. We also added X-Phos (5-bromo-4-chloro-3-indolyl phosphate), a translucid compound that becomes blue when dephosphorylated, to detect phosphatase activity.</p> |
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<center><img src="https://static.igem.org/mediawiki/2014/7/76/PhoA.png"> | <center><img src="https://static.igem.org/mediawiki/2014/7/76/PhoA.png"> | ||
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<section style="margin: -50px"></section> | <section style="margin: -50px"></section> | ||
<section style="margin: 50px"> | <section style="margin: 50px"> | ||
- | <br><font size="1"><b>Figure | + | <br><font size="1"><b>Figure 1 </b> : PhoA activity assay. ΔphoA cells were transformed with an empty pBAD33 vector, pBAD33-P-PhoA or pBAD33-PhoA and streaked on LB medium containing glucose (1 %) or arabinose (1 %). Phosphatase activity was detected by adding 90 µg/µl X-Phos to the medium. |
</font></section> | </font></section> | ||
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- | + | <p>We observed that ΔphoA cells grown on glucose showed constitutive phosphatase activity, whether they were transformed or not. We think that the production of phosphatases (that we didn’t characterize) has been induced by glucose because each strain shows the same degree of blue.</p> | |
- | We | + | <p>Untransformed cells grown neither on glucose nor arabinose showed no phosphatase activity while transformed cells showed some activity. We think this is probably due to a small expression of PhoA, as it is not repressed by glucose.</p> |
- | + | Finally looking at the arabinose media, we observed a strong blue color for the colonies transformed with phoA and P-phoA,while the control colony did not show any color.</p> | |
- | + | In conclusion, a proline on the N-terminal extremity of the alkaline phosphatase does not inhibit its activity <b>[Fig. 1]</b>.</p> | |
- | Finally looking at the arabinose media, we observed a strong blue color | + | |
- | In conclusion, a proline on the N-terminal extremity of the alkaline phosphatase does not inhibit its activity.</p> | + | |
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The ccdA gene encoded for a protein acts as a ccdB anti-toxin and so allows the bacteria which express it to survive.</p> | The ccdA gene encoded for a protein acts as a ccdB anti-toxin and so allows the bacteria which express it to survive.</p> | ||
- | <p>The <b>[Fig. | + | <p>The <b>[Fig. 2]</b> shows our results of the ccdB killing assay on two different media. To interpret them, one should know that IPTG induces the expression of pKK233, glucose represses the expression of pBAD33 and arabinose activates its expression.</p> |
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<center> <img src="https://static.igem.org/mediawiki/2014/f/fc/ULB-Brussels_ccdB-legend.png"> | <center> <img src="https://static.igem.org/mediawiki/2014/f/fc/ULB-Brussels_ccdB-legend.png"> |
Revision as of 18:57, 11 October 2014
$~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ \newcommand{\MyColi}{{\small Mighty\hspace{0.12cm}Coli}} \newcommand{\Stabi}{\small Stabi}$ $\newcommand{\EColi}{\small E.coli} \newcommand{\SCere}{\small S.cerevisae}\\[0cm] ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ \newcommand{\PI}{\small PI}$ $\newcommand{\Igo}{\Large\mathcal{I}} \newcommand{\Tgo}{\Large\mathcal{T}} \newcommand{\Ogo}{\Large\mathcal{O}} ~$
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