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<h2>Short Summary</h2> | <h2>Short Summary</h2> | ||
<article> | <article> | ||
− | In our project, we | + | In our project, we introduced RNA interference (RNAi) and translation repression with small interfering RNAs (siRNAs) as an alternative to CRISPR/Cas. To use siRNA as silencing agents for the gene-of -interest, we proposed a two-step design process. At first, potential siRNAs for prokaryotic organisms must be designed. In the second step, the silencing effect of these siRNAs can be validated by our siRNA vector system <a href="https://2018.igem.org/Team:Bielefeld-CeBiTec/siRNA">TACE</a>. To facilitate the initial siRNA design step, we developed a siRNA construction tool which identifies possible siRNAs for a given gene sequence, calculates their probability to silence the target gene, and returns candidates ranked based on the calculated score. It consists of three modules: "siRNAs for RNAi", "siRNA", and "check siRNA". The siRNAs predicted by our software are perfectly compatible with our siRNA vector system. To the best of our knowledge, this is the first tool dedicated to predicting customized siRNA for application in prokaryotes. This Python tool comes in two versions: a command line application and an easy-to-use graphical interface. |
</article> | </article> | ||
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<article> | <article> | ||
− | siRNAs are small, non-coding single-stranded RNAs with an average length of 21-25 | + | siRNAs are small, non-coding single-stranded RNAs with an average length of 21-25 nucleotides which bind a specific complementary coding mRNA and silence its function. In eukaryotic RNAi, siRNAs are loaded to Argonaute proteins which carry out the repression, either by blocking mRNA translation or by degrading the mRNA (Siomi and Siomi, 2009). More detailed information on both possible siRNAs mechanisms is found <a href="https://2018.igem.org/Team:Bielefeld-CeBiTec/siRNA">here.</a> |
</article> | </article> | ||
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<article> | <article> | ||
− | In order to achieve effective gene silencing or | + | In order to achieve effective gene silencing or knock-down, the 19 nt binding sequence must be flanked by special, non-binding 5' and 3' extensions (Figure 1). To trigger mRNA degradation by RNase E, the 5’-terminal triphosphate of the siRNA needs to be converted to a monophosphate by RNA pyrophosphohydrolase (RppH). For the siRNA to be recognized by RppH, the 5’ end of the siRNA has to start with the tetranucleotide AGNN which is not allowed to match the targeted mRNA (Foley et al., 2015). At the 3’ end of the siRNA, the small MicC scaffold is added which facilitates the hybridization of siRNA and target mRNA and protects the siRNA from degradation (Na et al., 2013). |
</article> | </article> | ||
<figure role="group"> | <figure role="group"> | ||
− | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/ | + | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/4/46/T--Bielefeld-CeBiTec--RNAi_scaffolds_new2.png"> |
<figcaption> | <figcaption> | ||
− | <b>Figure 1:</b> Effects of siRNA design on RNAi effectiveness and siRNA stability. <b>A</b> If the siRNA does not carry suitable 5' or 3' extensions, it is quickly degraded. <b>B</b> siRNAs extended by the tetranucleotide AGNN are recognized and processed by the pyrophosphohydrolase RppH. This enzyme converts the 5' triphosphate to a monophosphate which greatly reduces siRNA degradation. This allows the siRNA to hybridize to its target mRNA which in turn is degraded by RNAse E, thus leading to effective mRNA silencing. <b>C</b> Extending siRNAs with | + | <b>Figure 1:</b> Effects of siRNA design on RNAi effectiveness and siRNA stability. <b>A</b> If the siRNA does not carry suitable 5' or 3' extensions, it is quickly degraded. <b>B</b> siRNAs extended by the tetranucleotide AGNN are recognized and processed by the pyrophosphohydrolase RppH. This enzyme converts the 5' triphosphate to a monophosphate which greatly reduces siRNA degradation. This allows the siRNA to hybridize to its target mRNA which in turn is degraded by RNAse E, thus leading to effective mRNA silencing. <b>C</b> Extending siRNAs with a 3' MicC scaffold in addition to the 5' tetranucleotide AGNN further enhances mRNA silencing. MicC facilitates the hybridization of siRNA and target mRNA and protects the siRNA from degradation. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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<article> | <article> | ||
− | In addition to | + | In addition to degradation-based RNAi, siRNA can also be used to block mRNAs without degradation. This is achieved by adding the outer membrane protein A (OmpA) scaffold to the 5' end of the siRNA (Figure 2), enhancing its stability. In addition, the hybridization of the siRNA and the target mRNA can be facilitated by addition of MicC to the 3' terminus. |
</br> | </br> | ||
− | Both sequence extensions are also part of our vector system, enabling efficient design and construction of effective siRNAs. If our vector system is selected when using our tool, the fitting overlaps to our vectors are added automatically. More theoretical information about the overhangs and scaffolds can be found <a href="">here</a>. | + | Both sequence extensions are also part of our vector system, enabling efficient design and construction of effective siRNAs. If our vector system is selected when using our tool, the fitting overlaps to our vectors are added automatically. More theoretical information about the overhangs and scaffolds can be found <a href="https://2018.igem.org/Team:Bielefeld-CeBiTec/siRNA">here</a>. |
</article> | </article> | ||
<figure role="group"> | <figure role="group"> | ||
− | <img class="figure sixty" src="https://static.igem.org/mediawiki/2018/ | + | <img class="figure sixty" src="https://static.igem.org/mediawiki/2018/4/4c/T--Bielefeld-CeBiTec--siRNA_scaffolds_new_vk_2.png"> |
<figcaption> | <figcaption> | ||
<b>Figure 2:</b> siRNA design for silencing translation. <b>A</b> If the siRNA does not carry suitable 5' or 3' extensions, it is quickly degraded. <b>B</b> siRNAs supplemented with the outer membrane protein A (OmpA) scaffold are more stable and effectively silence the translation of target mRNAs. <b>C</b> If the siRNA is supplemented with the OmpA as well as the MicC scaffold the repression is enhanced further. </figcaption> | <b>Figure 2:</b> siRNA design for silencing translation. <b>A</b> If the siRNA does not carry suitable 5' or 3' extensions, it is quickly degraded. <b>B</b> siRNAs supplemented with the outer membrane protein A (OmpA) scaffold are more stable and effectively silence the translation of target mRNAs. <b>C</b> If the siRNA is supplemented with the OmpA as well as the MicC scaffold the repression is enhanced further. </figcaption> | ||
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<article> | <article> | ||
In 2012, the <a href="https://2012.igem.org/Team:SYSU-Software/Models#pp2">iGEM team SYSU-Software</a> integrated an siRNA cDNA designer as a small part of their project. siRNAs designed with this tool were applicable in eukaryotic organisms. They included two different design methods: Tom Tuschl’s method and Rational siRNA design. | In 2012, the <a href="https://2012.igem.org/Team:SYSU-Software/Models#pp2">iGEM team SYSU-Software</a> integrated an siRNA cDNA designer as a small part of their project. siRNAs designed with this tool were applicable in eukaryotic organisms. They included two different design methods: Tom Tuschl’s method and Rational siRNA design. | ||
+ | </br> | ||
+ | In the following as well as in our software tool siRCon, nucleotide sequences exclusively contain the letter 'T' for sake of simplicity. Please note that in the case of RNA, the corresponding base is uracil. | ||
</article> | </article> | ||
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<article> | <article> | ||
− | Tom Tuschl’s method focuses mainly on the existence of 5’ and 3’ ‘TT’ overhangs (Figure 3) (Elbashir <i>et al.</i>, 2001). These are not compatible with overhangs and scaffold sequences required by the prokaryotic mechanisms. Therefore, we decided to use the rules published by Ui-Tei as an alternative design method (Naito and Ui-Tei, 2012). Furthermore, we adapted the | + | Tom Tuschl’s method focuses mainly on the existence of 5’ and 3’ ‘TT’ overhangs (Figure 3) (Elbashir <i>et al.</i>, 2001). These are not compatible with overhangs and scaffold sequences required by the prokaryotic mechanisms. Therefore, we decided to use the rules published by Ui-Tei as an alternative design method (Naito and Ui-Tei, 2012). Furthermore, we adapted the rational siRNA design as it was more suitable for our application (Reynolds <i>et al.</i>, 2004). Both design rules apply only to the 19 nt long target binding sequence. |
</article> | </article> | ||
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<article> | <article> | ||
− | By a systematic analysis of 180 eukaryotic siRNAs, Reynolds <i>et al.</i> identified eight criteria that are important for their functionality (Reynolds et al., 2004). Each criterion gets a score that is either positive or negative, corresponding to its effect on the siRNA. All siRNA candidates with a score above six are potential highly functional siRNAs. | + | By a systematic analysis of 180 eukaryotic siRNAs, Reynolds <i>et al.</i> identified eight criteria that are important for their functionality (Reynolds <i>et al.</i>, 2004). Each criterion gets a score that is either positive or negative, corresponding to its effect on the siRNA. All siRNA candidates with a score above six are potential highly functional siRNAs. |
</article> | </article> | ||
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$$ P(eff|X) = \frac{P^{eff} P(X|eff)}{P^{eff} P(X|eff) + P^{inf} P(X|inf)} \qquad (1)$$ | $$ P(eff|X) = \frac{P^{eff} P(X|eff)}{P^{eff} P(X|eff) + P^{inf} P(X|inf)} \qquad (1)$$ | ||
− | The 19 nt siRNA binding sequence is represented by X, where \(x_i^n\) corresponds to the bases adenine, guanine, cytosine or | + | The 19 nt siRNA binding sequence is represented by X, where \(x_i^n\) corresponds to the bases adenine, guanine, cytosine or uracil (indexes 1≤n≤4) at sequence position i. The probabilities P(X|eff) and P(X|inf) are calculated based on prior knowledge about siRNA sequences that were shown to be effective respectively ineffective in silencing their target mRNAs. Based on the analysis of 833 effective and 847 ineffective siRNAs, Takasaki et al. determined the likelyhood with which base n occures at position i in an effective/ineffective siRNA sequences, represented by the coefficients \(q_{x_i^n}^{eff}\) and \(q_{x_i^n}^{inf}\) respectively (Takasaki, 2009). These coeffecients are often referred to as frequency ratios of n at position i. |
</article> | </article> | ||
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<article> | <article> | ||
− | Both probabilities are weighted with their prior probabilities, \(P^{eff}\) and \(P^{inf} = 1-P^{eff}\), where \(P^{eff}\) is set to 0.1 as mentioned previously. With all defined formulas (1),(2) and (3), the gene silencing probability \(P(eff|X)\) is calculated as follows: | + | Both probabilities are weighted with their prior probabilities, \(P^{eff}\) and \(P^{inf} = 1-P^{eff}\), where \(P^{eff}\) is set to 0.1 as mentioned previously. With all defined formulas (1), (2) and (3), the gene silencing probability \(P(eff|X)\) is calculated as follows: |
$$P(eff|X) = \frac{P^{eff} P(X|eff)}{P^{eff} P(X|eff)+P^{inf} P(X|inf)} \\\\= \frac{P^{eff} \prod_{i=1}^{19} q_{x_i^n}^{eff}}{P^{eff} \prod_{i=1}^{19} q_{x_i^n}^{eff}+P^{inf} \prod_{i=1}^{19} q_{x_i^n}^{inf}} $$ | $$P(eff|X) = \frac{P^{eff} P(X|eff)}{P^{eff} P(X|eff)+P^{inf} P(X|inf)} \\\\= \frac{P^{eff} \prod_{i=1}^{19} q_{x_i^n}^{eff}}{P^{eff} \prod_{i=1}^{19} q_{x_i^n}^{eff}+P^{inf} \prod_{i=1}^{19} q_{x_i^n}^{inf}} $$ | ||
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<article> | <article> | ||
− | In order to actually calculate the silencing probability, only the frequency ratios \(q_{x_i^n}^{eff}\) and \(q_{x_i^n}^{inf}\) of the individual nucleotides at positions 1 to 19 are missing. These could be taken from the same publication from Takasaki as the calculations. | + | In order to actually calculate the silencing probability, only the frequency ratios \(q_{x_i^n}^{eff}\) and \(q_{x_i^n}^{inf}\) of the individual nucleotides at positions 1 to 19 are missing. These could be taken from the same publication from Takasaki as the calculations (Takasaki, 2009). |
</article> | </article> | ||
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<a name="srnai" id="srnai" class="shifted-anchor"></a> | <a name="srnai" id="srnai" class="shifted-anchor"></a> | ||
− | <h2>siRNA | + | <h2>siRNA selection for RNAi and repression of translation</h2> |
<article> | <article> | ||
− | The procedures of siRNA | + | The procedures of siRNA selection for both mechanisms, RNAi and repression of translation, are very similar. Thus the first two modules, RNAi and siRNA, are similar. First the mRNA binding sequence is determined using the rational design and the Ui-Tei rules. In the next step, the silencing probability is determined. At the end, the corresponding overhangs and scaffolds are added to the 19 nt long binding sequence to form the mature siRNA. |
</article> | </article> | ||
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<h2>Check siRNA</h2> | <h2>Check siRNA</h2> | ||
<article> | <article> | ||
− | Beside the | + | Beside the selection of siRNAs, we also implemented a functionality to check siRNAs derived by other methods. For a given target sequence and a corresponding siRNA it is checked whether the siRNA might bind to its target and how well it fulfills the described criteria. Furthermore, its silencing efficiency is calculated. |
</article> | </article> | ||
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<div class="article"> | <div class="article"> | ||
− | The command line application can be obtained directly <a href="https://static.igem.org/mediawiki/2018/9/9a/T--Bielefeld-CeBiTec--siRCon_1_1_all_versions.zip" style="padding-right:0;">here</a> or downloaded from our <a href="https://github.com/iGEMBielefeldCeBiTec/iGEM_Bielefeld_CeBiTec_2018/releases" style="padding-right:0;">GitHub repository.</a> | + | The command line application can be obtained directly <a href="https://static.igem.org/mediawiki/2018/9/9a/T--Bielefeld-CeBiTec--siRCon_1_1_all_versions.zip" style="padding-right:0;">here</a> or downloaded from our <a href="https://github.com/iGEMBielefeldCeBiTec/iGEM_Bielefeld_CeBiTec_2018/releases" style="padding-right:0;">GitHub repository.</a> To run the command line application, Python 2.7 needs to be installed. |
</div> | </div> | ||
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<img class="figure seventy" src="https://static.igem.org/mediawiki/2018/c/c5/T--Bielefeld-CeBiTec--help_commandline_vk.png" style="width:100%"> | <img class="figure seventy" src="https://static.igem.org/mediawiki/2018/c/c5/T--Bielefeld-CeBiTec--help_commandline_vk.png" style="width:100%"> | ||
<figcaption style="padding-top:10px;"> | <figcaption style="padding-top:10px;"> | ||
− | <b>Figure 4:</b> | + | <b>Figure 4:</b> Help message on how to use the command line application. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
<article> | <article> | ||
− | + | Used without input, a help message is displayed listing the mandatory and optional input parameters (Figure 4). For more information a README is available in our repository. | |
− | All resulting siRNAs are saved in one FASTA file. This simplifies the integration into different workflows. For example, it is possible to test the siRNAs on off-target bindings site using | + | All resulting siRNAs are saved in one FASTA file. This simplifies the integration into different workflows. For example, it is possible to test the siRNAs on off-target bindings site using BLAST. An exemplary call of the application as well as the results returned can be seen in Figure 5. |
</article> | </article> | ||
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<img class="figure seventy" src="https://static.igem.org/mediawiki/2018/5/58/T--Bielefeld-CeBiTec--siRCon_ausgabe_vk.svg" style="width:100%"> | <img class="figure seventy" src="https://static.igem.org/mediawiki/2018/5/58/T--Bielefeld-CeBiTec--siRCon_ausgabe_vk.svg" style="width:100%"> | ||
<figcaption style="padding-top:10px;"> | <figcaption style="padding-top:10px;"> | ||
− | <b>Figure 5:</b> | + | <b>Figure 5:</b> Exemplary call and results of the command line application using a GFP gene sequence as input. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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<div class="article"> | <div class="article"> | ||
− | + | Like the command line application, the graphical interface version can either be downloaded directly <a href="https://static.igem.org/mediawiki/2018/9/9a/T--Bielefeld-CeBiTec--siRCon_1_1_all_versions.zip" style="padding-right:0;">here</a>, or via our <a href="https://github.com/iGEMBielefeldCeBiTec/iGEM_Bielefeld_CeBiTec_2018/releases" style="padding-right:0; margin-right:0;">GitHub repository.</a> | |
− | In the graphical interface, the modules are | + | In the graphical interface, the modules are accessible via tabs (Figure 6). The last tab contains usage and copyright information. |
</div> | </div> | ||
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<img class="figure sixty" src="https://static.igem.org/mediawiki/2018/1/1f/T--Bielefeld-CeBiTec--tabs_siRCon_vk.png" style="width:100%"> | <img class="figure sixty" src="https://static.igem.org/mediawiki/2018/1/1f/T--Bielefeld-CeBiTec--tabs_siRCon_vk.png" style="width:100%"> | ||
<figcaption style="padding-top_10px;"> | <figcaption style="padding-top_10px;"> | ||
− | <b>Figure 6:</b> The different modules are | + | <b>Figure 6:</b> The different modules are accessible via tabs. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
− | < | + | <h3>Tab 1: siRNA for RNAi</h3> |
<ol style="font-size:16px; line-height:1.5em; padding-left:5%; padding-bottom:10px;"> | <ol style="font-size:16px; line-height:1.5em; padding-left:5%; padding-bottom:10px;"> | ||
<li>Insert gene sequence</li> | <li>Insert gene sequence</li> | ||
− | <li>Choose | + | <li>Choose TACE vector system (optionally)</li> |
<li>Constructions of siRNAs</li> | <li>Constructions of siRNAs</li> | ||
<li>View resulting siRNAs (sense and antisense sequence) and their corresponding probability</li> | <li>View resulting siRNAs (sense and antisense sequence) and their corresponding probability</li> | ||
− | <li>Decide if siRNAs should be saved with MicC scaffold (only if | + | <li>Decide if siRNAs should be saved with MicC scaffold (only if TACE is not used)</li> |
<li>Save results as FASTA file</li> | <li>Save results as FASTA file</li> | ||
</ol> | </ol> | ||
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</figure> | </figure> | ||
− | < | + | <h3>Tab 2: siRNA for silencing</h3> |
<ol style="font-size:16px; line-height:1.5em; padding-left:5%; padding-bottom:10px;"> | <ol style="font-size:16px; line-height:1.5em; padding-left:5%; padding-bottom:10px;"> | ||
<li>Insert gene sequence</li> | <li>Insert gene sequence</li> | ||
− | <li>Choose | + | <li>Choose TACE vector system (optionally)</li> |
<li>Constructions of siRNAs</li> | <li>Constructions of siRNAs</li> | ||
<li>View resulting siRNAs (sense and antisense sequence) and their corresponding probability</li> | <li>View resulting siRNAs (sense and antisense sequence) and their corresponding probability</li> | ||
− | <li>Decide if siRNAs should be saved with MicC scaffold (only if | + | <li>Decide if siRNAs should be saved with MicC scaffold (only if TACE is not used)</li> |
− | <li>Decide if siRNAs should be saved with OmpA scaffold (only if | + | <li>Decide if siRNAs should be saved with OmpA scaffold (only if TACE is not used)</li> |
<li>Save results as FASTA file</li> | <li>Save results as FASTA file</li> | ||
</ol> | </ol> | ||
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</figure> | </figure> | ||
− | <h2>3 | + | <h2>Tab 3: Check siRNA</h2> |
<ol style="font-size:16px; line-height:1.5em; padding-left:5%; padding-bottom:10px;"> | <ol style="font-size:16px; line-height:1.5em; padding-left:5%; padding-bottom:10px;"> | ||
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<li>Insert siRNA sequences</li> | <li>Insert siRNA sequences</li> | ||
<li>Choose method the siRNA was constructed for (siRNA for RNAi or siRNA for silencing)</li> | <li>Choose method the siRNA was constructed for (siRNA for RNAi or siRNA for silencing)</li> | ||
− | <li>Choose if siRNA was constructed for | + | <li>Choose if siRNA was constructed for TACE (optionally)</li> |
<li>Validation of entered siRNA for given target gene sequences</li> | <li>Validation of entered siRNA for given target gene sequences</li> | ||
<li>View results</li> | <li>View results</li> | ||
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<article> | <article> | ||
− | To help future iGEM teams to control gene expression, we developed siRCon, a bioinformatic application | + | To help future iGEM teams to control gene expression, we developed siRCon, a bioinformatic application to generate high-fidelity siRNA sequences in prokaryotic organisms. We introduce this method as an alternative to CRISPR/Cas, since it is open source and free of charge. |
In the future, further improvements and extensions of this applications are intended. On the one side, eukaryotic siRNAs will also be constructed. This is how we want to provide a universal tool for siRNAs. On the other side, we want to improve the already existing features, especially the check siRNA functionality. | In the future, further improvements and extensions of this applications are intended. On the one side, eukaryotic siRNAs will also be constructed. This is how we want to provide a universal tool for siRNAs. On the other side, we want to improve the already existing features, especially the check siRNA functionality. | ||
</article> | </article> | ||
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<b>Takasaki, S. (2009).</b> Selecting effective siRNA target sequences by using Bayes’ theorem. Computational Biology and Chemistry 33: 368–372. <br> | <b>Takasaki, S. (2009).</b> Selecting effective siRNA target sequences by using Bayes’ theorem. Computational Biology and Chemistry 33: 368–372. <br> | ||
+ | |||
+ | <b>Ui-Tei, K., Naito, Y., Takahashi, F., Haraguchi, T., Ohki-Hamazaki, H., Juni, A., Ueda, R. and Saigo, K. (2004).</b> Guidelines for the selection of highly effective siRNA sequences for mammalian and chick RNA interference. Nucleic Acids Res. 32: 936-948. <br> | ||
Latest revision as of 03:18, 18 October 2018
siRCon - A siRNA Constructor
Short Summary
siRNAs short introduction
siRNA design
Choosing appropriate design methods
Rational siRNA design
Rule | Score |
---|---|
30%-52% G/C content | +1 |
At least 3 'W' ('A' or 'T') at positions 15-19 | +1 (for each 'A' or 'T') |
Absence of internal repeats (\(T_m \lt 20\)) | +1 |
An 'A' at position 3 | +1 |
An 'A' at position 19 | +1 |
A 'T' at position 19 | +1 |
An 'A' or 'T' at position 19 | -1 |
An 'A', 'C' or 'T' at position 13 | -1 |
Ui-Tei rule
- An ‘A’ or ‘T’ at position 19
- A ‘G’ or ‘C’ at position 1
- At least five ‘T’ or ‘A’ residues from positions 13 to 19
- No ‘GC’ stretch more than 9 nt long
Calculating silencing probability
siRNA selection for RNAi and repression of translation
Check siRNA
Command line application
The command line application can be obtained directly here or downloaded from our GitHub repository. To run the command line application, Python 2.7 needs to be installed.
Graphical Interface usage
Like the command line application, the graphical interface version can either be downloaded directly here, or via our GitHub repository.
In the graphical interface, the modules are accessible via tabs (Figure 6). The last tab contains usage and copyright information.
Tab 1: siRNA for RNAi
- Insert gene sequence
- Choose TACE vector system (optionally)
- Constructions of siRNAs
- View resulting siRNAs (sense and antisense sequence) and their corresponding probability
- Decide if siRNAs should be saved with MicC scaffold (only if TACE is not used)
- Save results as FASTA file
Tab 2: siRNA for silencing
- Insert gene sequence
- Choose TACE vector system (optionally)
- Constructions of siRNAs
- View resulting siRNAs (sense and antisense sequence) and their corresponding probability
- Decide if siRNAs should be saved with MicC scaffold (only if TACE is not used)
- Decide if siRNAs should be saved with OmpA scaffold (only if TACE is not used)
- Save results as FASTA file
Tab 3: Check siRNA
- Insert gene sequence
- Insert siRNA sequences
- Choose method the siRNA was constructed for (siRNA for RNAi or siRNA for silencing)
- Choose if siRNA was constructed for TACE (optionally)
- Validation of entered siRNA for given target gene sequences
- View results
- Save results (optionally)
Outlook
Elbashir, S.M., Harborth, J., Lendeckel, W., Yalcin, A., Weber, K., and Tuschl, T. (2001). Duplexes of 21-nucleotide RNAs mediate RNA interference in cultured mammalian cells. Nature 411: 494–498.
Foley, P.L., Hsieh, P., Luciano, D.J., and Belasco, J.G. (2015). Specificity and evolutionary conservation of the Escherichia coli RNA pyrophosphohydrolase RppH. J. Biol. Chem. 290: 9478–9486.
Kibbe, W.A. (2007). OligoCalc: an online oligonucleotide properties calculator. Nucleic Acids Res 35: W43–W46.
Na, D., Yoo, S.M., Chung, H., Park, H., Park, J.H., and Lee, S.Y. (2013). Metabolic engineering of Escherichia coli using synthetic small regulatory RNAs. Nat. Biotechnol. 31: 170–174.
Naito, Y. and Ui-Tei, K. (2012). siRNA Design Software for a Target Gene-Specific RNA Interference. Front Genet 3.
Reynolds, A., Leake, D., Boese, Q., Scaringe, S., Marshall, W.S., and Khvorova, A. (2004). Rational siRNA design for RNA interference. Nature Biotechnology 22: 326–330.
Siomi, H. and Siomi, M.C. (2009). On the road to reading the RNA-interference code. Nature 457: 396–404.
Takasaki, S. (2009). Selecting effective siRNA target sequences by using Bayes’ theorem. Computational Biology and Chemistry 33: 368–372.
Ui-Tei, K., Naito, Y., Takahashi, F., Haraguchi, T., Ohki-Hamazaki, H., Juni, A., Ueda, R. and Saigo, K. (2004). Guidelines for the selection of highly effective siRNA sequences for mammalian and chick RNA interference. Nucleic Acids Res. 32: 936-948.
Foley, P.L., Hsieh, P., Luciano, D.J., and Belasco, J.G. (2015). Specificity and evolutionary conservation of the Escherichia coli RNA pyrophosphohydrolase RppH. J. Biol. Chem. 290: 9478–9486.
Kibbe, W.A. (2007). OligoCalc: an online oligonucleotide properties calculator. Nucleic Acids Res 35: W43–W46.
Na, D., Yoo, S.M., Chung, H., Park, H., Park, J.H., and Lee, S.Y. (2013). Metabolic engineering of Escherichia coli using synthetic small regulatory RNAs. Nat. Biotechnol. 31: 170–174.
Naito, Y. and Ui-Tei, K. (2012). siRNA Design Software for a Target Gene-Specific RNA Interference. Front Genet 3.
Reynolds, A., Leake, D., Boese, Q., Scaringe, S., Marshall, W.S., and Khvorova, A. (2004). Rational siRNA design for RNA interference. Nature Biotechnology 22: 326–330.
Siomi, H. and Siomi, M.C. (2009). On the road to reading the RNA-interference code. Nature 457: 396–404.
Takasaki, S. (2009). Selecting effective siRNA target sequences by using Bayes’ theorem. Computational Biology and Chemistry 33: 368–372.
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