Team:LMU-Munich/Spore Coat Proteins

From 2012.igem.org

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<font color="#000000"; size="2"><p align="justify">Fig. 5: Section of the genome of ''B. subtilis'' with the various integrated constructs and the deletion of ''cotZ''</p></font>
 
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<p align="justify">Because of the low but distinct fluorescence of wild type spores, we measured and compared the fluorescence intensity of 100 spores per construct (see [https://2012.igem.org/Team:LMU-Munich/Data/gfp_spore data]). We obtained significant differences between wild type spores and all of our '''Sporo'''beads (see [https://2012.igem.org/Team:LMU-Munich/Data/gfp_spore Data]). The intensity bar charts shown in Fig. 6 below the fluorescence difference between wild type (W168) and B53-/ B70-'''Sporo'''beads (B70 = B53 ''cotZ'' deletion). To demonstrate the distribution of the fusion proteins we created 3D graphs, which show the fluorescence intensity AUSTAUSCHEN VON DATENspread across the spore surface. For analysis we measured the fluorescence intensity of an area of 750px per spore by using ImageJ and evaluated it with the statistical software '''R'''. The following graph (Fig. 6) shows the results of microscopy and ImageJ analysis of the strongest construct integrated into wildtype W168 (B53) and the clean deletion mutant of ''cotZ'' (B 70).</p>   
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<p align="justify">Because of the low but distinct fluorescence of wildtype spores, we measured and compared the fluorescence intensity of 100 spores per construct (see [https://2012.igem.org/Team:LMU-Munich/Data/gfp_spore data]). The '''Sporo'''beads were investigated by fluorescence microscopy and analysed. We obtained significant differences between wildtype spores and all our '''Sporo'''beads (see [https://2012.igem.org/Team:LMU-Munich/Data/gfp_spore Data]). The intensity bar charts should thereby show the fluorescence difference between wildtype (W168), B53- and B70-'''Sporo'''beads (B53 strain with native ''cotZ'' deletion). To demonstrate the distribution of the fusion proteins we created 3D graphs, which show the fluorescence intensity spread across the spore surface. For analysis we measured the fluorescence intensity of an area of 750px per spore by using ImageJ and evaluated it with the statistical software '''R'''. The following graph (Fig. 6) shows the results of microscopy and ImageJ analysis of the strongest construct integrated into wildtype W168 (B53) and the clean deletion mutant of ''cotZ'' (B 70).</p>   
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<font color="#000000"; size="2">Fig. 6: Result of fluorescence evaluation of the three strains: W168, B53 and B70.</font>
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<font color="#000000"; size="2">Fig. 6: Result of fluorescence evaluation of the three strains W168, B53 and B70.</font>
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<p align="justify">In fig. 6 it is noticable that the wildtype spore has hardly any fluorescence output whereas both spores with the integrated construct  pSB<sub>''Bs''</sub>1C-P<sub>''cotYZ''</sub>-''cotZ''-2aa-gfp-terminator give a distinct fluorescence signal. Furthermore it is shown that the strain B 70 has the highest fluorescence intesity.</p>
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<p align="justify">As shown in Fig. 6, the wild type spore has hardly any fluorescence, whereas both''' Sporo'''beads with the integrated construct  pSB<sub>''Bs''</sub>1C-P<sub>''cotYZ''</sub>-''cotZ''-2aa-gfp-terminator give a distinct fluorescence signal around the edge of the spore. Furthermore, it demonstrates that strain B 70 has the highest fluorescence intensity.</p>
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In summary we successfully developed functional sporobeads that are capable of displaying any protien of choice on the surface of modified  ''B. subtilis'' endospores.

Revision as of 00:27, 27 September 2012

iGEM Ludwig-Maximilians-Universität München Beadzillus

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The LMU-Munich team is exuberantly happy about the great success at the World Championship Jamboree in Boston. Our project Beadzillus finished 4th and won the prize for the "Best Wiki" (with Slovenia) and "Best New Application Project".

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