Difference between revisions of "Team:Uppsala/Transcriptomics/Bioinformatics"

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                           <img src="https://static.igem.org/mediawiki/2018/3/3b/T--Uppsala--Transcriptomics-Demultiplexing.png">  
 
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                             <p><b>Figure 1:</b> Running demultiplexing and barcode trimming from the terminal. The programme first separates the reads according to barcode and then searches for available possible barcodes to be trimmed off.</p>
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                             <p><b>Figure 1.</b> Running demultiplexing and barcode trimming from the terminal. The programme first separates the reads according to barcode and then searches for available possible barcodes to be trimmed off.</p>
 
                              
 
                              
 
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                             <p><b>Figure 2:</b> Results of a differential gene expression analysis using Deseq2 on test files. The genes (shown with their gene ID) as well as their mean base length and several statistical results can be seen.</p>
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                             <p><b>Figure 2.</b> Results of a differential gene expression analysis using Deseq2 on test files. The genes (shown with their gene ID) as well as their mean base length and several statistical results can be seen.</p>
 
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                                 <p><b>Figure 3:</b> Results of the differential gene expression analysis using Deseq2 on test files. The genes (shown with their gene ID) as well as their mean base length and several statistical results can be seen.</p>
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                                 <p><b>Figure 3.</b> Results of the differential gene expression analysis using Deseq2 on test files. The genes (shown with their gene ID) as well as their mean base length and several statistical results can be seen.</p>
 
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                                 <p><b>Figure 4:</b> Results of the differential gene expression after filtering for statistical significance and fold change.</p>
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                                 <p><b>Figure 4.</b> Results of the differential gene expression after filtering for statistical significance and fold change.</p>
 
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                                 <p><b>Figure 5:</b> Highly expressed gene produced from the pipeline matching a glucose specific gene.</p>
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                                 <p><b>Figure 5.</b> Highly expressed gene produced from the pipeline matching a glucose specific gene.</p>
 
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                                 <p><b>Figure 6:</b> Results of the differential gene expression done on our own data.</p>
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                                 <p><b>Figure 6.</b> Results of the differential gene expression done on our own data.</p>
 
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             <h3>Analyzing Our Own Sequencing Data</h3>
 
             <h3>Analyzing Our Own Sequencing Data</h3>
             <p><b>Table 1</b>: The first few genes as a result of the differential gene expression analysis seen in <b>Figure 6</b>
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             <p><b>Table 1</b>: The first few genes as a result of the differential gene expression analysis seen in Figure 6
 
                 together with their promotor sequence and function in the organism.</p>
 
                 together with their promotor sequence and function in the organism.</p>
 
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           <p>The resuts from our runs unfortunately did not produce as good results as seen above. Due to the major issues with sequencing and actually generating enough data, it can be seen in <b>figure 6</b> what kind of effects it had. Judging by the adjusted p-values it is clear that even though the genes can indeed be identified as seen in <b>Table 1</b> the statistical significance is extremely uncertain (the minimal accepted threshold is an adjusted p-value of &#60;&#61; 0.05). Any up-or down regulation of fold-change of interest was not able to be identified either. Looking at these errors it can be assumed that no major change in fold-change as well as low significancy is due to simply not enough data being generated from the prior sequencing step. Because of these facts no gene could be identified as a possible candidate for our reporter system.</p>
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           <p>The resuts from our runs unfortunately did not produce as good results as seen above. Due to the major issues with sequencing and actually generating enough data, it can be seen in figure 6 what kind of effects it had. Judging by the adjusted p-values it is clear that even though the genes can indeed be identified as seen in <b>Table 1</b> the statistical significance is extremely uncertain (the minimal accepted threshold is an adjusted p-value of &#60;&#61; 0.05). Any up-or down regulation of fold-change of interest was not able to be identified either. Looking at these errors it can be assumed that no major change in fold-change as well as low significancy is due to simply not enough data being generated from the prior sequencing step. Because of these facts no gene could be identified as a possible candidate for our reporter system.</p>
 
                      
 
                      
 
                     <h1>References</h1>
 
                     <h1>References</h1>

Revision as of 21:11, 17 October 2018