Difference between revisions of "Team:SZU-China/Procedure"

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     <title>Procedure</title>
 
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             <ul id="nav-list-ul" class="nav-list">
 
             <ul id="nav-list-ul" class="nav-list">
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                 <li>
 
                 <li>
 
                     <a href="#">TEAM</a>
 
                     <a href="#">TEAM</a>
 
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Team">MEMBERS</a></li>
                         <li><a href="#">COLLABARATIONS</a></li>
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                         <li><a href="#">ATTRIBUTION</a></li>
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                     <a href="#">PRACTICE</a>
 
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                         <li><a href="#">SILVER HP</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/HP/Silver">SILVER HP</a></li>
                         <li><a href="#">INTEGRATED HP</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Engagement">ENGAGEMENT</a></li>
                        <li><a href="#">ENGAGEMENT</a></li>
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                <li><a href="#">OUTEACH</a></li>
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                     <a href="#">EXPERIMENT</a>
 
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                         <li><a href="#">PROCEDURE</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Procedure">PROCEDURE</a></li>
                         <li><a href="#">RESULTS</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Results">RESULTS</a></li>
                         <li><a href="#">NOTEBOOK</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Demonstrate">DEMONSTRATE</a></li>
                         <li><a href="#">PROTOCOL</a></li>
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                         <li><a href="#">PARTS</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Notebook">NOTEBOOK</a></li>
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                     </ul>
 
                     </ul>
 
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                     <a href="#">PROJECT</a>
 
                     <a href="#">PROJECT</a>
 
                     <span class="caret"></span>
 
                     <span class="caret"></span>
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                         <li><a href="#">DESCRIPTION</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Description">DESCRIPTION</a></li>
                         <li><a href="#">DESIGN</a></li>
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                         <li><a href="#">PROOF</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Design">DESIGN</a></li>
                         <li><a href="#">SAFTY</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Model">MODEL</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Safety">SAFTY</a></li>
 
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                 <li>
 
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                     <a href="#">ACHIEVEMENT</a>
 
                     <a href="#">ACHIEVEMENT</a>
 
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                         <li><a href="#">AWARD</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Achievement">MEDAL</a></li>
                         <li><a href="#">MEDAL</a></li>
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                         <li><a href="https://2017.igem.org/Team:SZU-China/Parts">PARTS</a></li>
 
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            <a href="https://2017.igem.org/Team:SZU-China"><img src="https://static.igem.org/mediawiki/2017/1/17/T--SZU-China--team-logo.png" style="height: 36px;width: auto;padding-top: 12px;padding-left:10px;"></a>
 
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         <section id="overview" style="padding:96px 0;background-color:white;">
 
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                         <h3 class="uppercase color-primary mb40 " style="margin-bottom: 40px;font-size:50px"><center>SAFETY</center> </h3>
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                         <h3 class="uppercase color-primary mb40 " style="margin-bottom: 40px;font-size:50px"><center>Procedure</center> </h3>
 
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                     <div class="col-sm-12" >
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                     <div class="col-sm-12">
 
                         <h3 class="uppercase color-primary mb40 mb-xs-24" style="margin-bottom: 40px;">
 
                         <h3 class="uppercase color-primary mb40 mb-xs-24" style="margin-bottom: 40px;">
                             <center>Overview</center>
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                             <center>Construction of Plasmid vector</center>
 
                         </h3>
 
                         </h3>
  
                         <div class="row text-center" style="width:60%;margin:0 auto">
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                         <div class="row text-center" style="width:85%;margin:0 auto;text-align:justify">
                             <p class="lead mb40" style="color:black;">SZU-China iGEM understands the inherent risks of working in a lab facility and aims to take all necessary precautions to ensure no personal or environmental harm occurs. To this end, we have implemented the following safety procedures below. Our completed safety form can be found <a href="https://2017.igem.org/Safety/Final_Safety_Form?team_id=2232" style="color: rgb(75, 151, 165);font-size:20px;font-weight:bold"> here.</a></p>
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                        </div>
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                             <p class="lead" style="color:black;">We used the Shuttle plasmid pP43NMK (donated from ZIU-iGem) for our project, which can propagate in both Bacillus subtilis and Escherichia coli. The vector contains the following parts:</p><br />
                        <br/><br/><br/>
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                        <h3 class="uppercase color-primary mb40 mb-xs-24" style="margin-bottom: 40px;">
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                            <div style="width:100%;margin:0 auto">
                             <center>General Laboratary Safety</center>
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                                <img src="https://static.igem.org/mediawiki/2017/3/3e/T--SZU-China--pathway.jpg" />
                        </h3>
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                            </div>
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                            <center style="padding-top:5px;color:#2f2f2f;font-size:14px"><strong style="font-size:14px">Fig 1.</strong> Gene expression vector</center>
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                            <br />
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                                <br />
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                                <table class="tg" style="border-width:1px;font-size:15px">
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                                    <tbody>
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                                        <tr>
 +
                                            <th style="width:30%">&nbsp;&nbsp;&nbsp;Gene&nbsp;&nbsp;&nbsp;</th>
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                                            <th style="width:70%">Decription</th>
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                                        </tr>
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                                        <tr>
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                                            <td style="padding-left:2px">repB</td>
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                                            <td style="padding:4px 3px">The origin of replication of pP43NMK vector in host Bacillus subtilis.</td>
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                                        </tr>
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                                        <tr>
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                                            <td style="padding-left:2px">PsspB</td>
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                                            <td style="padding:4px 3px">This is the promoter (PsspB) of the sspB gene, which is expressed at high level during sporulation in a forespore-specific manner, that is to say, the promoter PsspB only switch on the transcription after the initiation of sporulation. Synthesized by biological company.</td>
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                                        </tr>
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                                        <tr>
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                                            <td style="padding-left:2px">gerAa</td>
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                                            <td style="padding:4px 3px">This part is a 300-bp upstream region of gerAA, which is one of the structural genes in the operon gerA.It concerns with the triggering of spore germination by L-alanine and its analogues. Synthesized by biological company.</td>
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                                        </tr>
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                                        <tr>
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                                            <td style="padding-left:2px">P43</td>
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                                            <td style="padding:4px 3px">It is a constitutive promoter and a strong promoter in Bacillus subtilis, which initiates transcription in the logarithmic phase and stable phase.</td>
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                                        </tr>
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                                        <tr>
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                                            <td style="padding-left:2px">OF4-nhaC </td>
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                                            <td style="padding:4px 3px">This part is the coding sequence (CDS) of the Na<sup>+</sup>/H<sup>+</sup> antiporter from the Bacillus pseudofirmus OF4 (GenBank Acc.No. CP001878), which regulates cytoplasmic pH value by coupling net H<sup>+</sup> uptake with Na<sup>+</sup> extrusion. Synthesized by biological company.</td>
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                                        </tr>
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                                        <tr>
 +
                                            <td style="padding-left:2px">C125-tupA</td>
 +
                                            <td style="padding:4px 3px">The primary translation product of this gene, TupA, is likely a cytoplasmic protein involved in the synthesis of TUP, a copolymer of polyglutamic acid (PGlu) and polyglucuronic acid (PGlcU), which is one of major structural components in the cell wall of the Bacillus lentus C-125 and can neutralize the extracellular hydroxyl. Synthesized by biological company.</td>
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                                        </tr>
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 +
                                        <tr>
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                                            <td style="padding-left:2px">CA</td>
 +
                                            <td style="padding:4px 3px">This part is the coding sequence (CDS) of Carbonic anhydrase(CA). CA is a metalloenzyme with zinc, which is highly efficient and one of the fastest enzymes catalyzes the reversible hydration of CO<sub>2</sub> forming bicarbonate and protons rapidly. Synthesized by biological company.</td>
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                                        </tr>
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 +
                                        <tr>
 +
                                            <td style="padding-left:2px">RBS</td>
 +
                                            <td style="padding:4px 3px">Ribosome binding site of Bacillus subtilis.</td>
 +
                                        </tr>
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 +
                                        <tr>
 +
                                            <td style="padding-left:2px">rrnBT1</td>
 +
                                            <td style="padding:4px 3px">Transcriptional terminator consisting of a 64 bp stem-loop from E. coli rrnB. Synthesized by biological company.</td>
 +
                                        </tr>
 +
 
 +
                                        <tr>
 +
                                            <td style="padding-left:2px">Kanr</td>
 +
                                            <td style="padding:4px 3px">Kanamycin Resistance Gene in host Bacillus subtilis.</td>
 +
                                        </tr>
 +
 
 +
 
 +
 
 +
 
 +
                                    </tbody>
 +
                                </table>
 +
                             </div>
 +
 
 +
                            <br /><br />
 +
                            <p class="lead" style="color:black">Inside the vectors,the first promoter P43 is the original component and initiates the transcription of downstream coding sequence, including the OF4-nhaC , C125-tupA and CA.These parts have respective RBS and the common terminator rrnBT1.The second promoter PsspB is the 5' sequence located before the gene coding region of gerAa. Through homologous recombination, a single cross-over event between the gerAa region in our plasmid and the endogenous gerAa sequence on chromosome inserts the sspB promoter upstream of the gerA operon, therefore gerA will overexpress during sporation, All of these parts above were combined through Restriction site. Kanr is responsible for the resistance gene of Kanamycin, so we can use Kanamycin B to verify positive transformants.</p>
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                            <br /><br />
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                      <div class="rol" style="width:70%;margin:0 auto;clear:both">
 
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                                    <tr>
 
                                        <th>&nbsp;&nbsp;&nbsp;Phases&nbsp;&nbsp;&nbsp;</th>
 
                                        <th >Lab Rules</th>
 
                                    </tr>
 
                                    <tr>
 
                                        <td >Personal protective equipment</td>
 
                                        <td >Lab coats and enclosed leather shoes were to be worn at all times, and long hair had to be tied back. When working with corrosives, acids, bases, and alcohols, gloves and safety glasses were also required. Upon leaving the lab, a disinfectant hand-wash had to be used as well. </td>
 
                                    </tr>
 
                                    <tr>
 
                                        <td >Safety equipment </td>
 
                                        <td >The operation of emergency showers and eyewash were demonstrated, as well as other emergency equipment including a fire blanket, extinguisher, and the panic button.</td>
 
                                    </tr>
 
                                    <tr>
 
                                        <td >Building safety</td>
 
                                        <td >The location of fire escapes, fire evacuation plans, and First Aid Officers </td>
 
                                    </tr>
 
                                    <tr>
 
                                        <td >Chemical safety</td>
 
                                        <td >the location and appropriate storage methods of different classes of chemicals e.g. in the fume hood, flammables cabinet, and general chemical store cabinet</td>
 
                                    </tr>
 
                                    <tr>
 
                                        <td >Waste disposal</td>
 
                                        <td >The location of biological safety hazard waste containers, sharps disposal containers, autoclaving methods, and spills kits location/contents</td>
 
                                    </tr>
 
                                   
 
                                </tbody>
 
                            </table>
 
 
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                         <h3 class="uppercase color-primary mb40 mb-xs-24" style="margin-bottom: 40px;">
 
                         <h3 class="uppercase color-primary mb40 mb-xs-24" style="margin-bottom: 40px;">
                             <center>Project Specific Laboratory Safety</center>
+
                             <center>Transformation and Expression</center>
 
                         </h3>
 
                         </h3>
                       
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                         <div class="row text-center" style="width:80%;margin:0 auto">
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                         <div class="row text-center" style="width:85%;margin:0 auto;text-align:justify">
                             <p class="lead mb40" style="color:black;">This year, our project involves basic genetic operation on the chassis Bacillus Subtilus.168. According to<a href="https://www.dsmz.de/" style="color: rgb(75, 151, 165);font-size:18px;"> DSMZ</a>, it is defined as the Risk 1 Group with low potential risk. In our wet lab, all the upstream genetic engineering operations, such as transformation, vector expression and protein measurement, are strictly obeyed the regulations and supervised by teachers or elder students.</p>
+
 
                             <p class="lead mb40" style="color:black;">Since our project is focused on constructing self-repair system, our downstream experiement involves a lot about <strong>spores cultivation</strong> and <strong>micro-capsule production </strong>in civil engineering lab. The specific operation such as how to properly wrap the micro-capsule in the cement is ducumented on the <a href="https://2017.igem.org/Team:SZU-China/Protocol" style="font-weight: bold; font-size: 17px; color: rgb(75, 151, 165)">protocol</a> page. However, to truly explore the manufacturing possibility, we have to consider the risk of bacteria escaping cement outside the lab. Upon this issue,we have designed the suicide sysyem MazEF to prevent the bacteria from leaking out. See the <a href="https://2017.igem.org/Team:SZU-China/Design" style="color:rgb(75, 151, 165);font-size:17px;font-weight:bold">design</a> page to see our safety prevention mechanism.</p>
+
                             <p class="lead" style="color:black;">The <i>Bacillus subtilis</i> we use in our project is WB800 (bought from Youbio Technology Company, China). This kind of Bacillus subtilis is a strain deficient in eight extracellular proteases, which can prevent the proteolytic cleavage of the enzymatic subunit between the catalytic and dockerin domains, to reduce the degradation of expression product by the extracellular proteases.</p>
 +
                            <p class="lead" style="color:black;">
 +
                                First, we transformed the expression vectors into Bacillus subtilis WB800 by optimization of Spizizen method, which increase the efficiency of transformation obviously.
 +
                                Second, the positive clones were obtained by Kanamycin resistance screening. Plasmid extraction and Digestion of restriction endonuclease and nucleic acid electrophoresis confirm real Positive clones.
 +
                            </p>
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                                <img src="https://static.igem.org/mediawiki/2017/5/55/T--SZU-China--procedure11.png" width="90%" />
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                                <img src="https://static.igem.org/mediawiki/2017/5/54/T--SZU-China--procedure2.png" width="90%" />
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                                <center style="padding-top:5px;color:#2f2f2f;font-size:14px"><strong style="font-size:14px">Fig 2.</strong> Gene expression test procedure</center>
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                            </div>
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                            <br /><br />
 +
                             <p class="lead" style="color:black">Next, we detected the expression of our parts and test their function by methods as follow:</p>
 +
 
 +
                            <ul>
 +
                                <li class="table">
 +
                                    <u>CA</u>:<div style="width:80%;margin:0 auto;"> The transformed strain WB800 was grown in optimized CA production medium, and obtain crude enzyme solution by centrifugation and ultrasonic crushing. And then we detect the native molecular mass by SDS-PAGE and coomassie blue staining. In addition, For determining the activity of CA, hydration of CO2 was measured using electrometric Wilbur-Anderson assay according to Khalifah et al. with certain modifications, and crude cell-free extract were also checked for esterase activity according to the Verpoorte et al.</div>
 +
                                </li>
 +
                                <li class="table">
 +
                                    <u>OF4-nhaC &amp; C125-tupA</u>:<div style="width:80%;margin:0 auto;"> In order to test the alkali resistance of the gene-modified strain WB800, we used the alkaline complex medium containing Na<sub>2</sub>CO<sub>3</sub> and other necessary nutrients to set a serial pH value gradient culture from 7.5 to 9.0. Strain transformed and original WB800 were plated at 37°C in the alkaline complex medium simultaneously, then we recorded the OD600 of them at the same time to compare their growth rates, which indicates the function of these two parts to increase the alkali tolerance of B.subtilis.</div>
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                                </li>
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 +
                                    <u>PsspB-gerAa</u>:<div style="width:80%;margin:0 auto;"> This part is used for increasing the germination rate of spore of B.subtilis, so we need to plate WB800 at 37°C on 2XSG medium agar plates without antibiotics and harvest spores after 72h, cleaned by repeated rounds of centrifugation and washing with water. Spores were resuspended and optical densities at 600nm(A600) of 0.8 to 1 in PBS. Germination was by monitored by reading the drop in absorbance (A600) in a 96-well microplate reader (Tecan Infinite M200) after add the L-alanine-NaCl mixed solution.The drop rate of absorbance (A600) is proportional to the germination rate so that we can compare the difference between original WB800 and recombinant WB800.</div>
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                         <h3 class="uppercase color-primary mb40 mb-xs-24" style="margin-bottom: 40px;">
 
                         <h3 class="uppercase color-primary mb40 mb-xs-24" style="margin-bottom: 40px;">
                             <center>Training and Enforcement</center>
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                             <center>Application and Realization</center>
 
                         </h3>
 
                         </h3>
                         <div class="row text-center" style="width:80%;margin:0 auto">
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                         <div class="row text-center" style="width:85%;margin:0 auto;text-align:justify">
                             <p class="" style="font-weight:bold;font-size:18px;">Training:</p>
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                             <p class="row text-center" style="width:80%;margin:0 auto;text-align:justify"></p>
                             <p class="lead mb40" style="color:black;">All team members who work in the wet lab must complete full training prior to the onset of work under the instruction of staff and teachers in the lab. These courses set specific guidelines and are the standard requirement for work in a biosafety-level 1 lab at SZU-China. Additionally, all team members will attend the experiment seminar with the chief manager of the cilvil engineering lab, Professor Deng and Doctor Zhang. During these seminar, they will check on the students safety operation procedures specific to the labspace in which we work. </p>
+
 
                             <p class="lead mb40" style="color:black;">Furthermore, our downstream micro-capsule experiment is highly paid attention to. The total assembly and cultivation is strictly supervised for every procedures and well documented. The exact proportion of ingredients and the sequence involving in assembly is not only related to safety issue, but also the success of our self-repairing concrete.</p>
+
                             <p class="lead" style="color:black;">In order to certificate the ability of our chassis strain WB800 to produce calcium carbonate and application in self-healing of concrete, we take a step forward, establishing a concrete-model to understand the incredible interaction between concrete and the recombinant <i>B. subtilis.</i></p>
                        </div>
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                            <p style="text-align:center;">
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                                <img src="https://static.igem.org/mediawiki/2017/0/08/T--SZU-China--fig.1.jpg" width="40%" />
 +
                                <center style="padding-top:5px;color:#2f2f2f;font-size:14px"><strong style="font-size:14px">Fig 3.</strong> micro-capsule granule we made</center>
 +
                            </p>
 +
                            <br />
 +
                            <p class="lead" style="color:black;">
 +
                                Using a special material-microcrystalline cellulose (Fig.3), we add around 10<sup>-8</sup>/ml endospores with clay and of course , L-alanine(in powdery) together, making a tiny but powerful microcapsule. Next, pouring some newly-mixed cement, which is still in viscous liquid state into the mold until the cement reach its 2/3, add a microcapsule into it, and fill the mold with cement as shown in Fig.2 and Fig.3
 +
                            </p>
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                                    <img src="https://static.igem.org/mediawiki/2017/7/7b/T--SZU-China--fig.2.jpg" />
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                                    <center style="padding-top:5px;color:#2f2f2f;font-size:14px" width="90%"><strong style="font-size:14px">Fig 4.</strong> Mould for concrete experiment.</center>
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                                    <img src="https://static.igem.org/mediawiki/2017/d/d6/T--SZU-China--fig.3.jpg">
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                                    <center style="padding-top:5px;color:#2f2f2f;font-size:14px"><strong style="font-size:14px">Fig 5.</strong> The cement block we made</center>
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                                </div>
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                            </div>
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                            <p style="clear:both"></p>
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                            <br />
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                             <p class="lead" style="color:black;">After some days for the drying of concrete mold. Take out the column-like concrete from the mold. Then spilt the concrete right through the side ditches, exposing the microcapsule. Now if we put this two part of concrete column together by sticking them with After some days for the drying of concrete mold. Take out the column-like concrete from the mold. Then spilt the concrete right through the side ditches, exposing the microcapsule. Now if we put this two part of concrete column together by sticking them with a tape, we can build a microcrack on the upper surface. So we mark these concrete columns. And put them into the artificial seawaters for 28 days. And you find the microcrack on the upper surface be repaired like they never ever existed.(As shown in Fig.4,5,6,7)</p>
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 +
                            <p style="text-align:center;">
  
                        <div class="row text-center" style="width:80%;margin:0 auto">
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                                <img src="https://static.igem.org/mediawiki/2017/1/19/T--SZU-China--fig.4.jpg" width="45%" />
                            <p class="" style="font-weight:bold;font-size:18px;">Enforcement:</p>
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                                <center style="padding-top:5px;color:#2f2f2f;font-size:14px;width:60%;margin:0 auto;text-align:justify"><strong style="font-size:14px">Fig.6</strong> The comparison of repairing between WB800 (shown in upper two figures) and recombinant WB800 (shown in under two figures)</center>
                            <p class="lead mb40" style="color:black;">Team members who violate safety rules are required to work under the supervision of the experiment staff for the remainder of the week, or until the safety officer believes the member is capable of performing the task unsupervised. For multiple infractions or complete disregard to safety protocols, a member may be restricted from laboratory work until he/she undergoes retraining again, and demonstrates proper performance to a team leader of failed technique(s) in a controlled setting. </p>
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                            <center>Reference</center>
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                              <p style="font-size:16px"> [1] Liang L, Gai Y, Hu K, et al. [The gerA operon is required for spore germination in Bacillus thuringiensis][J]. Acta Microbiologica Sinica, 2008, 48(3):281.</p>
 +
                                <p style="font-size:16px"> [2] Løvdal I S, From C, Madslien E H, et al. Role of the gerA operon in L-alanine germination of Bacillus licheniformis spores[J]. Bmc Microbiology, 2012, 12(1):1-12.</p>
 +
                                <p style="font-size:16px"> [3] Tjalsma H, Bolhuis A, Jongbloed J D, et al. Signal peptide-dependent protein transport in Bacillus subtilis: a genome-based survey of the secretome[J]. Microbiology & Molecular Biology Reviews Mmbr, 2000, 64(3):515.</p>
 +
                                <p style="font-size:16px">[4] Li W, Yu L J, Yuan D X, et al. A study of the activity and ecological significance of carbonic anhydrase from soil and its microbes from different karst ecosystems of Southwest China[J]. Plant & Soil, 2005, 272(1-2):133-141.</p>
 +
                                <p style="font-size:16px"> [5] Prágai Z, Eschevins C, Bron S, et al. Bacillus subtilis NhaC, an Na+/H+ antiporter, influences expression of the phoPR operon and production of alkaline phosphatases.[J]. Journal of Bacteriology, 2001, 183(8):2505.</p>
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             <span class="copyright">Copyright © 2017.<a href="https://2017.igem.org/Team:SZU-China" class="mainpage">SZU-China</a> iGEM</span>
 
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Latest revision as of 03:49, 2 November 2017

Procedure

Procedure

Construction of Plasmid vector

We used the Shuttle plasmid pP43NMK (donated from ZIU-iGem) for our project, which can propagate in both Bacillus subtilis and Escherichia coli. The vector contains the following parts:


Fig 1. Gene expression vector


   Gene    Decription
repB The origin of replication of pP43NMK vector in host Bacillus subtilis.
PsspB This is the promoter (PsspB) of the sspB gene, which is expressed at high level during sporulation in a forespore-specific manner, that is to say, the promoter PsspB only switch on the transcription after the initiation of sporulation. Synthesized by biological company.
gerAa This part is a 300-bp upstream region of gerAA, which is one of the structural genes in the operon gerA.It concerns with the triggering of spore germination by L-alanine and its analogues. Synthesized by biological company.
P43 It is a constitutive promoter and a strong promoter in Bacillus subtilis, which initiates transcription in the logarithmic phase and stable phase.
OF4-nhaC This part is the coding sequence (CDS) of the Na+/H+ antiporter from the Bacillus pseudofirmus OF4 (GenBank Acc.No. CP001878), which regulates cytoplasmic pH value by coupling net H+ uptake with Na+ extrusion. Synthesized by biological company.
C125-tupA The primary translation product of this gene, TupA, is likely a cytoplasmic protein involved in the synthesis of TUP, a copolymer of polyglutamic acid (PGlu) and polyglucuronic acid (PGlcU), which is one of major structural components in the cell wall of the Bacillus lentus C-125 and can neutralize the extracellular hydroxyl. Synthesized by biological company.
CA This part is the coding sequence (CDS) of Carbonic anhydrase(CA). CA is a metalloenzyme with zinc, which is highly efficient and one of the fastest enzymes catalyzes the reversible hydration of CO2 forming bicarbonate and protons rapidly. Synthesized by biological company.
RBS Ribosome binding site of Bacillus subtilis.
rrnBT1 Transcriptional terminator consisting of a 64 bp stem-loop from E. coli rrnB. Synthesized by biological company.
Kanr Kanamycin Resistance Gene in host Bacillus subtilis.


Inside the vectors,the first promoter P43 is the original component and initiates the transcription of downstream coding sequence, including the OF4-nhaC , C125-tupA and CA.These parts have respective RBS and the common terminator rrnBT1.The second promoter PsspB is the 5' sequence located before the gene coding region of gerAa. Through homologous recombination, a single cross-over event between the gerAa region in our plasmid and the endogenous gerAa sequence on chromosome inserts the sspB promoter upstream of the gerA operon, therefore gerA will overexpress during sporation, All of these parts above were combined through Restriction site. Kanr is responsible for the resistance gene of Kanamycin, so we can use Kanamycin B to verify positive transformants.






Transformation and Expression

The Bacillus subtilis we use in our project is WB800 (bought from Youbio Technology Company, China). This kind of Bacillus subtilis is a strain deficient in eight extracellular proteases, which can prevent the proteolytic cleavage of the enzymatic subunit between the catalytic and dockerin domains, to reduce the degradation of expression product by the extracellular proteases.

First, we transformed the expression vectors into Bacillus subtilis WB800 by optimization of Spizizen method, which increase the efficiency of transformation obviously. Second, the positive clones were obtained by Kanamycin resistance screening. Plasmid extraction and Digestion of restriction endonuclease and nucleic acid electrophoresis confirm real Positive clones.


Fig 2. Gene expression test procedure


Next, we detected the expression of our parts and test their function by methods as follow:

  • CA:
    The transformed strain WB800 was grown in optimized CA production medium, and obtain crude enzyme solution by centrifugation and ultrasonic crushing. And then we detect the native molecular mass by SDS-PAGE and coomassie blue staining. In addition, For determining the activity of CA, hydration of CO2 was measured using electrometric Wilbur-Anderson assay according to Khalifah et al. with certain modifications, and crude cell-free extract were also checked for esterase activity according to the Verpoorte et al.
  • OF4-nhaC & C125-tupA:
    In order to test the alkali resistance of the gene-modified strain WB800, we used the alkaline complex medium containing Na2CO3 and other necessary nutrients to set a serial pH value gradient culture from 7.5 to 9.0. Strain transformed and original WB800 were plated at 37°C in the alkaline complex medium simultaneously, then we recorded the OD600 of them at the same time to compare their growth rates, which indicates the function of these two parts to increase the alkali tolerance of B.subtilis.
  • PsspB-gerAa:
    This part is used for increasing the germination rate of spore of B.subtilis, so we need to plate WB800 at 37°C on 2XSG medium agar plates without antibiotics and harvest spores after 72h, cleaned by repeated rounds of centrifugation and washing with water. Spores were resuspended and optical densities at 600nm(A600) of 0.8 to 1 in PBS. Germination was by monitored by reading the drop in absorbance (A600) in a 96-well microplate reader (Tecan Infinite M200) after add the L-alanine-NaCl mixed solution.The drop rate of absorbance (A600) is proportional to the germination rate so that we can compare the difference between original WB800 and recombinant WB800.





Application and Realization

In order to certificate the ability of our chassis strain WB800 to produce calcium carbonate and application in self-healing of concrete, we take a step forward, establishing a concrete-model to understand the incredible interaction between concrete and the recombinant B. subtilis.

Fig 3. micro-capsule granule we made


Using a special material-microcrystalline cellulose (Fig.3), we add around 10-8/ml endospores with clay and of course , L-alanine(in powdery) together, making a tiny but powerful microcapsule. Next, pouring some newly-mixed cement, which is still in viscous liquid state into the mold until the cement reach its 2/3, add a microcapsule into it, and fill the mold with cement as shown in Fig.2 and Fig.3


Fig 4. Mould for concrete experiment.
Fig 5. The cement block we made


After some days for the drying of concrete mold. Take out the column-like concrete from the mold. Then spilt the concrete right through the side ditches, exposing the microcapsule. Now if we put this two part of concrete column together by sticking them with After some days for the drying of concrete mold. Take out the column-like concrete from the mold. Then spilt the concrete right through the side ditches, exposing the microcapsule. Now if we put this two part of concrete column together by sticking them with a tape, we can build a microcrack on the upper surface. So we mark these concrete columns. And put them into the artificial seawaters for 28 days. And you find the microcrack on the upper surface be repaired like they never ever existed.(As shown in Fig.4,5,6,7)

Fig.6 The comparison of repairing between WB800 (shown in upper two figures) and recombinant WB800 (shown in under two figures)



Reference

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[2] Løvdal I S, From C, Madslien E H, et al. Role of the gerA operon in L-alanine germination of Bacillus licheniformis spores[J]. Bmc Microbiology, 2012, 12(1):1-12.

[3] Tjalsma H, Bolhuis A, Jongbloed J D, et al. Signal peptide-dependent protein transport in Bacillus subtilis: a genome-based survey of the secretome[J]. Microbiology & Molecular Biology Reviews Mmbr, 2000, 64(3):515.

[4] Li W, Yu L J, Yuan D X, et al. A study of the activity and ecological significance of carbonic anhydrase from soil and its microbes from different karst ecosystems of Southwest China[J]. Plant & Soil, 2005, 272(1-2):133-141.

[5] Prágai Z, Eschevins C, Bron S, et al. Bacillus subtilis NhaC, an Na+/H+ antiporter, influences expression of the phoPR operon and production of alkaline phosphatases.[J]. Journal of Bacteriology, 2001, 183(8):2505.