Difference between revisions of "Team:Peking/Parts"

 
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             <!-- Title -->
 
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                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking">Home</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking">Home</a>
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Project">Project</a>
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                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Project#Introduction">Project</a>
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Model">Modelling</a>
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                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Model#Overview">Modelling</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Software">Software</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Software">Software</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Hardware">Hardware</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Hardware">Hardware</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Lab">Lab</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Lab">Lab</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/HP">Practices</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/HP">Practices</a>
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Parts" style="color: #000; font-weight: 500">Parts</a>
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                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Parts#Overview"
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                  style="color: #000; font-weight: 500">Parts</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Team">Team</a>
 
                 <a class="mdl-navigation__link" href="https://2017.igem.org/Team:Peking/Team">Team</a>
 
             </nav>
 
             </nav>
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             <aside class="mdl-components__nav docs-text-styling mdl-shadow--4dp" style="width: 240px;">
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             <aside class="mdl-components__nav docs-text-styling mdl-shadow--4dp" style="width: 240px; ">
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                <a>  </a>
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                <div>
  
                <a href="https://2017.igem.org/Team:Peking/Parts#Basic_Parts"
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                    <a href="https://2017.igem.org/Team:Peking/Parts#Overview"
                  class="mdl-components__link mdl-component Basic_Parts">
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                      class="mdl-components__link mdl-component Overview">
                    <div class="mdl-components__link-image"
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                        <div class="mdl-components__link-image"
                        style="background-image: url(https://static.igem.org/mediawiki/2017/8/84/Peking_Parts_icon1.png)">
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                            style="background-image: url(https://static.igem.org/mediawiki/2017/4/47/Peking_part_overview.png)">
                    </div>
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                        </div>
                    <span class="mdl-components__link-text" style="font-size: medium">Basic Parts</span>
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                        <span class="mdl-components__link-text" style="font-size: medium">Overview</span>
                </a>
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                    </a>
  
                <a href="https://2017.igem.org/Team:Peking/Parts#Composite_Parts"
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                    <a href="https://2017.igem.org/Team:Peking/Parts#Basic_Parts"
                  class="mdl-components__link mdl-component Composite_Parts">
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                      class="mdl-components__link mdl-component Basic_Parts">
                    <div class="mdl-components__link-image"
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                        <div class="mdl-components__link-image"
                        style="background-image: url(https://static.igem.org/mediawiki/2017/8/80/Peking_Parts_icon2.png)">
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                            style="background-image: url(https://static.igem.org/mediawiki/2017/8/84/Peking_Parts_icon1.png)">
                    </div>
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                        </div>
                    <span class="mdl-components__link-text" style="font-size: medium">Composite Parts</span>
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                        <span class="mdl-components__link-text" style="font-size: medium">Basic Parts</span>
                </a>
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                    </a>
  
                <a href="https://2017.igem.org/Team:Peking/Parts#Part_Collection"
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                    <a href="https://2017.igem.org/Team:Peking/Parts#Composite_Parts"
                  class="mdl-components__link mdl-component Part_Collection">
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                      class="mdl-components__link mdl-component Composite_Parts">
                    <div class="mdl-components__link-image"
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                        <div class="mdl-components__link-image"
                        style="background-image: url(https://static.igem.org/mediawiki/2017/0/0c/Peking_Parts_icon3.png);">
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                            style="background-image: url(https://static.igem.org/mediawiki/2017/8/80/Peking_Parts_icon2.png)">
                    </div>
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                        </div>
                    <span class="mdl-components__link-text" style="font-size: medium">Part Collection</span>
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                        <span class="mdl-components__link-text" style="font-size: medium">Composite Parts</span>
                </a>
+
                    </a>
  
                <a href="https://2017.igem.org/Team:Peking/Parts#Improvement"
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                    <a href="https://2017.igem.org/Team:Peking/Parts#Part_Collection"
                  class="mdl-components__link mdl-component Improvement">
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                      class="mdl-components__link mdl-component Part_Collection">
                    <div class="mdl-components__link-image"
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                        <div class="mdl-components__link-image"
                        style="background-image: url(https://static.igem.org/mediawiki/2017/f/f7/Peking_Parts_icon4.png)">
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                            style="background-image: url(https://static.igem.org/mediawiki/2017/0/0c/Peking_Parts_icon3.png);">
                    </div>
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                        </div>
                    <span class="mdl-components__link-text" style="font-size: medium">Improvement</span>
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                        <span class="mdl-components__link-text" style="font-size: medium">Part Collection</span>
                </a>
+
                    </a>
  
 +
                    <a href="https://2017.igem.org/Team:Peking/Parts#Improvement"
 +
                      class="mdl-components__link mdl-component Improvement">
 +
                        <div class="mdl-components__link-image"
 +
                            style="background-image: url(https://static.igem.org/mediawiki/2017/f/f7/Peking_Parts_icon4.png)">
 +
                        </div>
 +
                        <span class="mdl-components__link-text" style="font-size: medium">Improvement</span>
 +
                    </a>
 +
 +
                </div>
  
  
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             <section id="index-section" class="mdl-components-index mdl-components__page is-active">
+
             <section id="Overview" class="mdl-components__page mdl-grid">
 +
                <div class="demo-card-wide mdl-card mdl-shadow--2dp" >
  
 +
 +
                    <div class="mdl-card__supporting-text">
 +
                        <h1>Overview</h1>
 +
                        <br>
 +
                        Members of Peking iGEM 2017 team devoted themselves to constructing a part library related to recombinases. We have not only submitted 5 basic parts consisting of improved recombinases and recombinase-RDF fusion proteins, but also provided 31 composite parts including a series of unidirectional terminators flanked by attB/P sites and some well-performed constructs to express or report recombinases.
 +
                        <br><br>Functions of all the parts were tested and validated both in controlled laboratory condition and in normal condition. They can be used as powerful tools for other iGEM teams.idirectional terminators flanked by recombination sites.
 +
                        <br><br>
 +
                        <div id='groupparts2' style='min-height:100px;width:700px;'>
 +
                            <div style='width:300px;margin:2px;padding:20px;color:gray;border:1px solid gray'>
 +
                                Loading��..
 +
                            </div>
 +
                        </div>
 +
 +
                        <script>$('#groupparts2').load('/cgi/api/groupparts.cgi', {
 +
                            t: 'iGEM2017',
 +
                            g: 'Peking'
 +
                        }, function () {
 +
                            $('#groupparts2 .tablesorter').tablesorter();
 +
                        });</script>
 +
 +
                    </div>
 +
 +
 +
                </div>
 
             </section>
 
             </section>
 
             <section id="Basic_Parts" class="mdl-components__page mdl-grid">
 
             <section id="Basic_Parts" class="mdl-components__page mdl-grid">
  
 
                 <div class="demo-card-wide mdl-card mdl-shadow--2dp">
 
                 <div class="demo-card-wide mdl-card mdl-shadow--2dp">
 
  
  
 
                     <div class="mdl-card__supporting-text">
 
                     <div class="mdl-card__supporting-text">
  
                         <h1>Favorite Basic Part</h1>
+
                         <h1>Favorite Basic Part</h1><br>
                         <br><br>
+
                         <section class="docs-toc docs-text-styling" style="margin-left: 0px;">
 +
                            <nav class="section-content" style="margin-left: 0px;">
 +
                                <ul style="margin-left: 0px;">
 +
 
 +
                                    <li><a href="#p1">Introduction</a>
 +
                                    </li>
 +
 
 +
                                    <li><a href="#p2">How we characterized and improved the part</a>
 +
                                    </li>
 +
 
 +
 
 +
                                    <li><a href="#p3">Properties</a>
 +
                                    </li>
 +
 
 +
                                </ul>
 +
                            </nav>
 +
                        </section>
  
                         <h2>Bxb1 gp35</h2>
+
                         <h2 id="p1">Introduction</h2>
                         This year, our team has selected a series of recombinases through litera-ture searches and
+
                         This year, our team has selected a series of recombinases through literature searches and
 
                         characterized a number of them. Here we present the best characterized recombinase - Bxb1 gp35
 
                         characterized a number of them. Here we present the best characterized recombinase - Bxb1 gp35
                         (BBa_K2243012) as our best basic part for the award.<br>
+
                         (<a href="http://parts.igem.org/Part:BBa_K2243012"
 +
                            target="_blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243012</strong></a>) as our best basic part for the
 +
                        award.<br><br>
  
 
                         With well-behaved inversion performance, Bxb1 gp35 can invert the target DNA sequence
 
                         With well-behaved inversion performance, Bxb1 gp35 can invert the target DNA sequence
                         efficiently, thus changing the function of the circuit accord-ing to our demands, and can be
+
                         efficiently, thus changing the function of the circuit according to our demands, and can be
 
                         designed and used by other iGEM teams in their project/research.<br>
 
                         designed and used by other iGEM teams in their project/research.<br>
 
                         <br>
 
                         <br>
                         need picture( Flip-Flop fig 5)<br>
+
                         <p align="center"><img
                         Figure 1. Schematic of the standard approach used for recombinase characterization.<br>
+
                                src="https://static.igem.org/mediawiki/2017/d/d0/Peking_parts_characterization_recombinase.png"
                         <br>
+
                                height="300px"/></p>
 +
 
 +
                         <strong>Figure 1. Schematic of the standard approach used for recombinase
 +
                            characterization </strong>
 +
                         <br><br>
  
                         <h3>How we characterized and improved the part </h3>
+
                         <h2 id="p2">How we characterized and improved the part </h2>
 
                         Using our standard approach to characterize recombinases (Figure 1), we selected two different
 
                         Using our standard approach to characterize recombinases (Figure 1), we selected two different
                         vectors and a series of RBS to express Bxb1 to in-vert the constitutive promoter BBa_J23119 and
+
                         vectors and a series of RBS to express Bxb1 to invert the constitutive promoter <a
 +
                            href="http://parts.igem.org/Part:BBa_J23119"
 +
                            target="_blank"
 +
                            style="color: #226CE4"><strong>BBa_J23119</strong></a> and
 
                         change the fluorescence. Through the screening procedure, we improved the performance of Bxb1
 
                         change the fluorescence. Through the screening procedure, we improved the performance of Bxb1
 
                         gp35 and obtained a number of well-behaved matches, among which Bxb1 gp35 recombinase works
 
                         gp35 and obtained a number of well-behaved matches, among which Bxb1 gp35 recombinase works
                         particularly well. (See more in Results)<br>
+
                         particularly well. (See more in <a
 +
                            href="https://2017.igem.org/Team:Peking/Project#Flip-flop"
 +
                            target="_blank"
 +
                            style="color: #226CE4"><strong>Flip-flop</strong></a>)
 
                         <br><br>
 
                         <br><br>
  
                         <h3>Properties</h3>
+
                         <h2 id="p3">Properties</h2>
                         Through the fine tuning, we improved the performance of Bxb1 gp35 effi-ciently. Here we present
+
                         Through the fine tuning, we improved the performance of Bxb1 gp35 efficiently. Here we present
 
                         some of the well-tested behaviors of this recom-binase, which indicates the excellent properties
 
                         some of the well-tested behaviors of this recom-binase, which indicates the excellent properties
                         of Bxb1 gp35.<br>
+
                         of Bxb1 gp35.<br><br>
  
                         <h4>High efficiency of inversion under most conditions</h4>
+
                         <h3>High efficiency of inversion under most conditions</h3>
 
                         Whether with computer-designed RBS or widely used RBS from the iGEM registry, Bxb1 exhibited a
 
                         Whether with computer-designed RBS or widely used RBS from the iGEM registry, Bxb1 exhibited a
                         relatively high efficiency in inverting the target promoter.<br>
+
                         relatively high efficiency in inverting the target promoter.<br><br>
  
                         <h4>Low leakage through tuning</h4>
+
                         <h3>Low leakage through tuning</h3>
 
                         Through our tuning procedure and exhaustive characterization, we ob-tained a series of response
 
                         Through our tuning procedure and exhaustive characterization, we ob-tained a series of response
 
                         curves to the concentration of inducer, in which relatively low leakage (no inducer) and high
 
                         curves to the concentration of inducer, in which relatively low leakage (no inducer) and high
 
                         inversion efficiency (proper in-ducer concentration) were found. This property meets our
 
                         inversion efficiency (proper in-ducer concentration) were found. This property meets our
 
                         requirements well, indicating that Bxb1 gp35 can change the DNA accurately according to our
 
                         requirements well, indicating that Bxb1 gp35 can change the DNA accurately according to our
                         needs.<br>
+
                         needs.<br><br>
  
                         <h4>Potential for controlling the downstream circuit</h4>
+
                         <h3>Potential for controlling the downstream circuit</h3>
                         In addition to inverting the promoter to change the gene expression, we al-so used the improved
+
                         In addition to inverting the promoter to change the gene expression, we also used the improved
                         Bxb1 expression plasmid to invert a unidirectional terminator (See more in Results), thus
+
                         Bxb1 expression plasmid to invert a unidirectional terminator (See more in <a
                         opening or closing the expression of a downstream reporter gene.<br>
+
                            href="https://2017.igem.org/Team:Peking/Project#Controller"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>controller</strong></a>), thus
 +
                         opening or closing the expression of a downstream reporter gene.<br><br>
  
 +
                        <br><br><a class="mdl-button mdl-js-button mdl-button--raised mdl-button--accent mdl-js-ripple-effect" href = "#top" style="background-color: #2D8EE8; color: white;">
 +
                        Back to top
 +
                    </a>
  
  
 
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                    <!--<div class="mdl-card__actions mdl-card--border">
 
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                    </div>-->
 
                    <div class="mdl-card__menu">
 
                        <button class="mdl-button mdl-button--icon mdl-js-button mdl-js-ripple-effect">
 
                            <i class="material-icons">star</i>
 
                        </button>
 
                    </div>
 
                </div>
 
                <div class="demo-card-wide mdl-card mdl-shadow--2dp">
 
  
                    <div class="mdl-card__supporting-text">
 
  
                        <h1>Table of Basic Parts we submitted</h1>
 
  
                        <br>
+
 
                        <groupparts>Peking</groupparts>
+
                    </div>
+
                    <!--<div class="mdl-card__actions mdl-card--border">
+
                        <a class="mdl-button mdl-button--colored mdl-js-button mdl-js-ripple-effect">
+
                            Get Started
+
                        </a>
+
                    </div>-->
+
                    <div class="mdl-card__menu">
+
                        <button class="mdl-button mdl-button--icon mdl-js-button mdl-js-ripple-effect">
+
                            <i class="material-icons">star</i>
+
                        </button>
+
                    </div>
+
 
                 </div>
 
                 </div>
 +
 +
 +
  
 
             </section>
 
             </section>
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                     <div class="mdl-card__supporting-text">
 
                     <div class="mdl-card__supporting-text">
  
                         <h1>Composite Part</h1>
+
                         <h1>Best Composite Part</h1>
                         <br><br>
+
                         <br>
 
+
                         Our team constructed many composite parts for the expression of the reporter and the
 
+
                         recombinase. Here we present a list of them, and introduce the best-performing part: <a
                        <h2 cp1>Best Composite Part</h2>
+
                            href="http://parts.igem.org/Part:BBa_K2243023"
                         Our team constructed many composite parts for the expression of the re-porter and the
+
                            target="_blank"
                         recombinase. Here we present a list of them, and introduce the best-performing part: Bxb1
+
                            style="color: #226CE4"><strong>Bxb1 attB_ ECK120034435F_Bxb1 attP</strong></a>
                        attB_ ECK120034435_Bxb1 attP, as our best composite part.<br>
+
                        , as our best composite part.(See more in <a
 +
                            href="https://2017.igem.org/Team:Peking/Project#Controller"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>controller</strong></a>)<br>
 
                         <br>
 
                         <br>
  
                         <h3 id="cp1.1">Function of Bxb1 attB_ECK120034435_Bxb1 attP</h3>
+
                         <h2 id="cp1.1">Function of Bxb1 attB_ECK120034435_Bxb1 attP</h2><br>
                        need picture<br>
+
                         <img src="https://static.igem.org/mediawiki/2017/0/08/Peking_controller_figure2.svg" height="300px"/>
                         Figure 1. Schematic of the Bxb1 attB_ECK120034435_Bxb1 attP composite part as integrated into
+
                        the GFP expression plasmid.<br>
+
 
                         <br>
 
                         <br>
                         Our best composite part consists of the Bxb1 gp35’ target sites attB/attP and one well-behaved
+
                        <strong>Figure 1. Schematic of the Bxb1 attB_ECK120034435_Bxb1 attP composite part as integrated
 +
                            into
 +
                            the GFP expression plasmid.</strong>
 +
                        <br><br>
 +
                         Our best composite part consists of the Bxb1 gp35's target sites attB/attP and one well-behaved
 
                         unidirectional terminator (ECK120034435) between them. This construct can be regarded as an
 
                         unidirectional terminator (ECK120034435) between them. This construct can be regarded as an
 
                         outstanding biological switch for RNA polymerase, because of its high ratio between forward
 
                         outstanding biological switch for RNA polymerase, because of its high ratio between forward
                         and re-verse terminator strength. What’ more, we can express Bxb1 gp35 to change the direction
+
                         and reverse terminator strength. What's more, we can express Bxb1 gp35 to change the direction
 
                         of the terminator and switch on/off the expression of downstream genes.<br>
 
                         of the terminator and switch on/off the expression of downstream genes.<br>
 
                         <br>
 
                         <br>
  
                         <h3 id="cp1.2">Excellent performance</h3>
+
                         <h2 id="cp1.2">Excellent performance</h2>
  
                         <h4>High ratio between forward and reverse terminator strength. (Over 1000-fold)</h4>
+
                         <h3>High ratio between forward and reverse terminator strength. (Over 1000-fold)</h3>
                         The terminator ECK120034435 is the best-performing unidirectional termi-nator in our library,
+
                         The terminator ECK120034435 is the best-performing unidirectional terminator in our library,
 
                         and its Ts ratio is higher than 1000-fold, which indicates that it can potentially be used as
 
                         and its Ts ratio is higher than 1000-fold, which indicates that it can potentially be used as
 
                         an RNAP switch in our circuit.<br>
 
                         an RNAP switch in our circuit.<br>
 
                         <br>
 
                         <br>
  
                         <h4>No latent reactivity to transcription.</h4>
+
                         <h3>No latent reactivity to transcription.</h3>
 
                         Unlike some other terminators we observed and characterized, ECK120034435 has no latent
 
                         Unlike some other terminators we observed and characterized, ECK120034435 has no latent
                         promoter reactivity under most conditions, and won’t start transcription even if ligated with
+
                         promoter reactivity under most conditions, and won't start transcription even if ligated with
 
                         recombinase reaction sites. Thus, this terminator can be used as our controller to improve the
 
                         recombinase reaction sites. Thus, this terminator can be used as our controller to improve the
 
                         predictability of our constructed circuit.<br>
 
                         predictability of our constructed circuit.<br>
 
                         <br>
 
                         <br>
  
                         <h4>Robustness under different conditions.</h4>
+
                         <h3>Robustness under different conditions.</h3>
 
                         When we introduced one or two pairs of attB/P sites on both sides of ECK120034435 to construct
 
                         When we introduced one or two pairs of attB/P sites on both sides of ECK120034435 to construct
                         the controller that can be inverted by recom-binase, the great performance of this
+
                         the controller that can be inverted by recombinase, the great performance of this
 
                         unidirectional terminator was robust. This property shows its potential utility in constructing
 
                         unidirectional terminator was robust. This property shows its potential utility in constructing
                         more complex con-trol circuits in our sequential logic circuitry.<br>
+
                         more complex control circuits in our sequential logic circuitry.<br>
 
                         <br>
 
                         <br>
  
                         <h4>Ability to control expression through the recombinase.</h4>
+
                         <h3>Ability to control expression through the recombinase.</h3>
                         With the excellent performance in opening/closing the transcription pro-cess, we have proved
+
                         With the excellent performance in opening/closing the transcription process, we have proved
 
                         that our best composite part can be inverted by Bxb1 gp35 to obviously change the GFP
 
                         that our best composite part can be inverted by Bxb1 gp35 to obviously change the GFP
 
                         expression, which shows that this construct is potentially a great control unit for gene
 
                         expression, which shows that this construct is potentially a great control unit for gene
 
                         expression under the control of recombinases.<br>
 
                         expression under the control of recombinases.<br>
                        <br>
+
 
 
                         <br><br>
 
                         <br><br>
  
                         <h2>Composite Parts Table</h2>
+
                         <br><br><a class="mdl-button mdl-js-button mdl-button--raised mdl-button--accent mdl-js-ripple-effect" href = "#top" style="background-color: #2D8EE8; color: white;">
                         maybe need another card
+
                         Back to top
 +
                    </a>
 +
 
 +
                    </div>
 +
 
  
  
                    </div>
 
                    <!--<div class="mdl-card__actions mdl-card--border">
 
                        <a class="mdl-button mdl-button--colored mdl-js-button mdl-js-ripple-effect">
 
                            Get Started
 
                        </a>
 
                    </div>-->
 
                    <div class="mdl-card__menu">
 
                        <button class="mdl-button mdl-button--icon mdl-js-button mdl-js-ripple-effect">
 
                            <i class="material-icons">star</i>
 
                        </button>
 
                    </div>
 
 
                 </div>
 
                 </div>
  
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                     <div class="mdl-card__supporting-text">
 
                     <div class="mdl-card__supporting-text">
  
                        <h1>Background</h1>
 
                        <p>Building blocks for constructing a page layout.</p>
 
  
 +
                        <h1>Part Collection</h1>
 +
                        <br>
  
 +
                        Members of Peking iGEM 2017 team devoted themselves to constructing a part library of
 +
                        unidirectional terminators flanked by recombination sites.
 +
                        <br><br>
 +
                        This construct can be regarded as one outstanding biological switch to RNA polymerase because of
 +
                        its high ratio between forward and reverse Terminator Strength (Ts). What's more, we can express
 +
                        the corresponding recombinase to change the direction of terminator and switch on/off the gene
 +
                        expression downstream.
 +
                        <br><br>
 +
                        <div align="center"><img src="https://static.igem.org/mediawiki/2017/3/31/Peking_part_collection.png"
 +
                                                height="100px"/></div>
 +
                        <br>
 +
                        The collection of parts mostly has good performance and can be improved further. Their Ts ratios
 +
                        are relatively high (some even higher than 1000 folds), which indicates that they can be used as
 +
                        great RNAP switches in our circuit potentially. Some of them have robustness even when ligated
 +
                        with attB/P sites and we have observed obvious inversion through the expression of recombinase
 +
                        which indicates the usability to control the expression through recombinase.<br><br>
  
                         <section class="docs-toc docs-text-styling" style="margin-left: 0px">
+
                         Our part collection includes:
                            <nav class="section-content" style="margin-left: 0px">
+
                                <ul style="margin-left: 0px">
+
 
+
                                    <li><a href="#lorem1">Description</a></li>
+
 
+
                                    <li><a href="https://getmdl.io/components/index.html#layout-section/grid">Description</a></li>
+
 
+
                                    <li><a href="https://getmdl.io/components/index.html#layout-section/tabs">Description</a></li>
+
 
+
                                    <li><a href="https://getmdl.io/components/index.html#layout-section/footer">Description</a></li>
+
 
+
                                </ul>
+
                            </nav>
+
                        </section>
+
 
+
                        <h1>How to install MDL</h1>
+
                        <h2>How to install MDL</h2>
+
                        <h3>How to install MDL</h3>
+
                        <h4>How to install MDL</h4>
+
                        <h5>How to install MDL</h5>
+
                        <h6>How to install MDL</h6>
+
                        <h7>How to install MDL</h7>
+
 
+
                        Cillum dolor esse sit incididunt velit eiusmod magna ad nostrud officia aute dolor dolor. Magna
+
                        esse
+
                        ullamco pariatur adipisicing consectetur eu commodo officia. Ex cillum consequat mollit minim
+
                        elit
+
                        est deserunt occaecat nisi amet. Quis aliqua nostrud Lorem occaecat sunt. Eiusmod quis amet
+
                        ullamco
+
                        aliquip dolore ut incididunt duis adipisicing. Elit consequat nisi eiusmod aute ipsum sunt
+
                        veniam do
+
                        est. Occaecat mollit aliquip ut proident consectetur amet ex dolore consectetur aliqua elit.
+
                        Commodo nisi non consectetur voluptate incididunt mollit duis dolore amet amet tempor
+
                        exercitation.
+
                        Qui amet aute ea aute id ad aliquip proident. Irure duis qui labore deserunt enim in quis nisi
+
                        sint
+
                        consequat aliqua. Ex proident labore et laborum tempor fugiat sint magna veniam minim. Nulla
+
                        dolor
+
                        labore adipisicing in enim mollit laboris fugiat eu. Aliquip minim cillum ullamco voluptate non
+
                        dolore non ex duis fugiat duis ad. Deserunt cillum ad et nisi amet non voluptate culpa qui do.
+
                        Labore ullamco et minim proident est laborum mollit ad labore deserunt ut irure dolore.
+
                        Reprehenderit ad ad irure ut irure qui est eu velit eu excepteur adipisicing culpa. Laborum
+
                        cupidatat ullamco eu duis anim reprehenderit proident aute ad consectetur eiusmod.
+
 
                         <br><br>
 
                         <br><br>
 +
                        <strong>Bxb1 attB_Unidirectional terminator_Bxb1 attP</strong><br><br>
 +
                        Bxb1 attB_L3S3P22F_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243018"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243018</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_L3S3P22R_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243019"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243019</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120030221F_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243020"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243020</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120030221R_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243021"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243021</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120033737R_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243022"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243022</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120034435F_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243023"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243023</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120034435R_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243024"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243024</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120010855F_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243025"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243025</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120010836F_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243026"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243026</strong></a>)
 +
                        <br>
 +
                        Bxb1 attB_ECK120010836R_Bxb1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243027"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243027</strong></a>)
 +
                        <br><br>
 +
                        <strong>phiC31 attB_Unidirectional terminator_phiC31 attP</strong><br><br>
 +
                        phiC31 attB_ECK120034435F_phiC31 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243031"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243031</strong></a>)
 +
                        <br>
 +
                        phiC31 attB_ECK120034435R_phiC31 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243032"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243032</strong></a>)
 +
                        <br><br>
 +
                        <strong>TP901-1 attB_Unidirectional terminator_TP901-1 attP</strong><br><br>
 +
                        TP901-1 attB_ECK120030221F_TP901-1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243033"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243033</strong></a>)
 +
                        <br>
 +
                        TP901-1 attB_ECK120030221R_TP901-1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243034"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243034</strong></a>)
 +
                        <br>
 +
                        TP901-1 attB_ECK120034435R_TP901-1 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243035"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243035</strong></a>)
 +
                        <br><br>
 +
                        <strong>int2 attB_Unidirectional terminator_int2 attP</strong><br><br>
 +
                        int2 attB_ECK120030221R_int2 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243028"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243028</strong></a>)
 +
                        <br>
 +
                        int2 attB_ECK120010855F_int2 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243029"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243029</strong></a>)
 +
                        <br>
 +
                        int2 attB_ECK120010855R_int2 attP(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243030"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243030</strong></a>)
  
                         Tempor tempor aliqua in commodo cillum Lorem<br><br> magna dolore proident Lorem. Esse ad
+
                         <br><br><a class="mdl-button mdl-js-button mdl-button--raised mdl-button--accent mdl-js-ripple-effect" href = "#top" style="background-color: #2D8EE8; color: white;">
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                        dolore sit commodo consequat duis commodo. Sunt dolor reprehenderit ipsum minim eiusmod eu
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                        consectetur anim excepteur eiusmod. Duis excepteur anim dolor sit enim veniam deserunt anim
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                        adipisicing Lorem elit. Cillum sunt do consequat elit laboris nisi consectetur.
+
  
                        <h3 id="lorem1">Basic MDL Usage</h3>
 
 
                        Cillum dolor esse sit incididunt velit eiusmod magna ad nostrud officia aute dolor dolor. Magna
 
                        esse
 
                        ullamco pariatur adipisicing consectetur eu commodo officia. Ex cillum consequat mollit minim
 
                        elit
 
                        est deserunt occaecat nisi amet. Quis aliqua nostrud Lorem occaecat sunt. Eiusmod quis amet
 
                        ullamco
 
                        aliquip dolore ut incididunt duis adipisicing. Elit consequat nisi eiusmod aute ipsum sunt
 
                        veniam do
 
                        est. Occaecat mollit aliquip ut proident consectetur amet ex dolore consectetur aliqua elit.
 
 
 
                        Commodo nisi non consectetur voluptate incididunt mollit duis dolore amet amet tempor
 
                        exercitation.
 
                        Qui amet aute ea aute id ad aliquip proident. Irure duis qui labore deserunt enim in quis nisi
 
                        sint
 
                        consequat aliqua. Ex proident labore et laborum tempor fugiat sint magna veniam minim. Nulla
 
                        dolor
 
                        labore adipisicing in enim mollit laboris fugiat eu. Aliquip minim cillum ullamco voluptate non
 
                        dolore non ex duis fugiat duis ad. Deserunt cillum ad et nisi amet non voluptate culpa qui do.
 
                        Labore ullamco et minim proident est laborum mollit ad labore deserunt ut irure dolore.
 
                        Reprehenderit ad ad irure ut irure qui est eu velit eu excepteur adipisicing culpa. Laborum
 
                        cupidatat ullamco eu duis anim reprehenderit proident aute ad consectetur eiusmod.
 
 
 
                        Cillum dolor esse sit incididunt velit <br><br>eiusmod magna ad nostrud officia aute dolor
 
                        dolor.
 
                        Magna esse ullamco pariatur adipisicing consectetur eu commodo officia. Ex cillum consequat
 
                        mollit
 
                        minim elit est deserunt occaecat nisi amet. Quis aliqua nostrud Lorem occaecat sunt. Eiusmod
 
                        quis
 
                        amet ullamco aliquip dolore ut incididunt duis adipisicing. Elit consequat nisi eiusmod aute
 
                        ipsum
 
                        sunt veniam do est. Occaecat mollit aliquip ut proident consectetur amet ex dolore consectetur
 
                        aliqua elit.
 
 
                        Commodo nisi non consectetur voluptate incididunt mollit duis dolore amet amet tempor
 
                        exercitation.
 
                        Qui amet aute ea aute id ad aliquip proident. Irure duis qui labore deserunt enim in quis nisi
 
                        sint
 
                        consequat aliqua. Ex proident labore et laborum tempor fugiat sint magna veniam minim. Nulla
 
                        dolor
 
                        labore adipisicing in enim mollit laboris fugiat eu. Aliquip minim cillum ullamco voluptate non
 
                        dolore non ex duis fugiat duis ad. Deserunt cillum ad et nisi amet non voluptate culpa qui do.
 
                        Labore ullamco et minim proident est laborum mollit ad labore deserunt ut irure dolore.
 
                        Reprehenderit ad ad irure ut irure qui est eu velit eu excepteur adipisicing culpa. Laborum
 
                        cupidatat ullamco eu duis anim reprehenderit proident aute ad consectetur eiusmod.
 
 
                        Cillum dolor esse sit incididunt velit eiusmod magna ad nostrud officia aute dolor dolor. Magna
 
                        esse
 
                        ullamco pariatur adipisicing consectetur eu commodo officia. Ex cillum consequat mollit minim
 
                        elit
 
                        est deserunt occaecat nisi amet. Quis aliqua nostrud Lorem occaecat sunt. Eiusmod quis amet
 
                        ullamco
 
                        aliquip dolore ut incididunt duis adipisicing. Elit consequat nisi eiusmod aute ipsum sunt
 
                        veniam do
 
                        est. Occaecat mollit aliquip ut proident consectetur amet ex dolore consectetur aliqua elit.
 
 
                        Commodo nisi non consectetur voluptate <br><br>incididunt mollit duis dolore amet amet tempor
 
                        exercitation. Qui amet aute ea aute id ad aliquip proident. Irure duis qui labore deserunt enim
 
                        in
 
                        quis nisi sint consequat aliqua. Ex proident labore et laborum tempor fugiat sint magna veniam
 
                        minim. Nulla dolor labore adipisicing in enim mollit laboris fugiat eu. Aliquip minim cillum
 
                        ullamco
 
                        voluptate non dolore non ex duis fugiat duis ad. Deserunt cillum ad et nisi amet non voluptate
 
                        culpa
 
                        qui do. Labore ullamco et minim proident est laborum mollit ad labore deserunt ut irure dolore.
 
                        Reprehenderit ad ad irure ut irure qui est eu velit eu excepteur adipisicing culpa. Laborum
 
                        cupidatat ullamco eu duis anim reprehenderit proident aute ad consectetur eiusmod.
 
  
 
                     </div>
 
                     </div>
                    <!--<div class="mdl-card__actions mdl-card--border">
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                        <a class="mdl-button mdl-button--colored mdl-js-button mdl-js-ripple-effect">
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                            Get Started
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                         <h1>Improvement</h1>
 
                         <h1>Improvement</h1>
                         <br><br>
+
                         <br>
 +
                        <section class="docs-toc docs-text-styling" style="margin-left: 0px;">
 +
                            <nav class="section-content" style="margin-left: 0px;">
 +
                                <ul style="margin-left: 0px;">
 +
 
 +
                                    <li><a href="#im1">Improvement of TP901-1</a>
 +
                                    </li>
 +
 
 +
                                    <li><a href="#im2">Improvement of Bxb1 gp35</a>
 +
                                    </li>
 +
 
 +
 
 +
                                    <li><a href="#im3">Improvement of phi31 Integrase</a>
 +
                                    </li>
 +
 
 +
                                </ul>
 +
                            </nav>
 +
                        </section>
  
 
                         Though there are already many recombinase parts in the iGEM registry, quantitative
 
                         Though there are already many recombinase parts in the iGEM registry, quantitative
 
                         characterization data on them is very limited, and what's more, there is no single standard
 
                         characterization data on them is very limited, and what's more, there is no single standard
                         characterization method for serine recom-binases. In addition, even though the attL/R sites
+
                         characterization method for serine recombinases. In addition, even though the attL/R sites
 
                         formed by the recom-binase inversion are not recognized by the recombinases which create them,
 
                         formed by the recom-binase inversion are not recognized by the recombinases which create them,
 
                         we successfully achieved the "reset" process using fusions of the recombinases and their
 
                         we successfully achieved the "reset" process using fusions of the recombinases and their
Line 529: Line 577:
  
 
                         <h2 id="im1">Improvement of TP901-1 </h2>
 
                         <h2 id="im1">Improvement of TP901-1 </h2>
                         There is no submitted TP901-1 integrase part in the iGEM registry. Moreo-ver, the only data for
+
                         The submitted TP901-1 integrase part(<a
 +
                            href="http://parts.igem.org/Part:BBa_K1132010"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K1132010</strong></a>) in the iGEM registry only consists of a brief introduction to it. The only data for
 
                         TP901-1 was obtained through the dimerization of split integrase, which did not work so well.
 
                         TP901-1 was obtained through the dimerization of split integrase, which did not work so well.
                         Additionally, there appears to be no quantitative information to evaluate the RDF of TP901-1.<br>
+
                         Additionally, there appears to be no quantitative information to evaluate the RDF of
 +
                        TP901-1.<br>
  
                         This year we submitted the TP901-1 (BBa_K2243000) coding region as a basic part, and obtained
+
                         This year we submitted the TP901-1 (<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243000"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243000</strong></a>) coding region as a basic part, and obtained
 
                         detailed data to evaluate the inversion efficiency of TP901-1 integrase with different RBSs and
 
                         detailed data to evaluate the inversion efficiency of TP901-1 integrase with different RBSs and
                         vectors through our stand-ard characterization method. This opens the possibility to tune and
+
                         vectors through our standard characterization method. This opens the possibility to tune and
 
                         improve its performance further to meet our design requirements.<br>
 
                         improve its performance further to meet our design requirements.<br>
  
                         We also used our composite part BBa_K2243035, comprising the unidirec-tional terminator
+
                         We also used our composite part <a
 +
                            href="http://parts.igem.org/Part:BBa_K2243035"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243035</strong></a>, comprising the unidirec-tional terminator
 
                         ECK120034435 flanked by attB/P sites, as the reporter to evaluate the performance of TP901-1,
 
                         ECK120034435 flanked by attB/P sites, as the reporter to evaluate the performance of TP901-1,
 
                         which broadens the prospects to use TP901-1 to control gene expression.<br>
 
                         which broadens the prospects to use TP901-1 to control gene expression.<br>
  
                         We also constructed the fusion protein BBa_K2243014, comprising TP901-1 integrase and its
+
                         We also constructed the fusion protein <a
                         RDF(BBa_K1733000), and tested its ability to invert DNA through attL/R sites.
+
                            href="http://parts.igem.org/Part:BBa_K2243014"
                         (See more in Results)<br>
+
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243014</strong></a>, comprising TP901-1 integrase and its
 +
                         RDF(<a
 +
                            href="http://parts.igem.org/Part:BBa_K1733000"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K1733000</strong></a>), and tested its ability to invert DNA through attL/R sites.
 +
                         (See more in <a
 +
                            href="https://2017.igem.org/Team:Peking/Project#Flip-flop"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>Flip-flop</strong></a>)<br>
 
                         <br><br>
 
                         <br><br>
  
 
                         <h2 id="im2">Improvement of Bxb1 gp35</h2>
 
                         <h2 id="im2">Improvement of Bxb1 gp35</h2>
                         Some characterization data of Bxb1 gp35 (BBa_K907000) is already available in the iGEM registry,
+
                         Some characterization data of Bxb1 gp35 (<a
 +
                            href="http://parts.igem.org/Part:BBa_K907000"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K907000</strong></a>) is already available in the iGEM registry,
 
                         but it is still limited because the RBS plays a significant role in recombinase expression and
 
                         but it is still limited because the RBS plays a significant role in recombinase expression and
 
                         performance according to our modelling and observations. Without proper RBSs, Bxb1 may exhibit
 
                         performance according to our modelling and observations. Without proper RBSs, Bxb1 may exhibit
 
                         very high leaky expression (even approaching the induced expression level).<br>
 
                         very high leaky expression (even approaching the induced expression level).<br>
  
                         This year, our team constructed an RBS library to improve the efficiency of Bxb1 gp35. We
+
                         This year, our team constructed an RBS library to improve the efficiency of Bxb1 gp35(<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243012"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243012</strong></a>). We
 
                         obtained a number of well-behaved matches (from BBa_K2243002-BBa_K2243005), and measured their
 
                         obtained a number of well-behaved matches (from BBa_K2243002-BBa_K2243005), and measured their
                         corresponding transfer curves against the concentration of inducer. Through our im-provements,
+
                         corresponding transfer curves against the concentration of inducer. Through our improvements,
 
                         Bxb1 showed a very high efficiency of nearly 95% and low leakage of inversion.<br>
 
                         Bxb1 showed a very high efficiency of nearly 95% and low leakage of inversion.<br>
  
                         Additionally, we used our composite parts (BBa_K2243023 and BBa_K2243024), comprising the
+
                         Additionally, we used our composite parts (<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243023"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243023</strong></a> and <a
 +
                            href="http://parts.igem.org/Part:BBa_K2243024"
 +
                            target="blank"
 +
                            style="color: #226CE4"><strong>BBa_K2243024</strong></a>), comprising the
 
                         unidirectional terminator ECK120034435 flanked by attB/P sites as the reporter to evaluate
 
                         unidirectional terminator ECK120034435 flanked by attB/P sites as the reporter to evaluate
 
                         the performance of Bxb1 gp35, which broadens the prospects to use Bxb1 to control gene
 
                         the performance of Bxb1 gp35, which broadens the prospects to use Bxb1 to control gene
 
                         expres-sion.<br>
 
                         expres-sion.<br>
  
                         Finally, we fused Bxb1 gp47 (BBa_K907001) with Bxb1 gp35 and tested its ability to reinvert the
+
                         Finally, we fused Bxb1 gp47 (<a
 +
                            href="http://parts.igem.org/Part:BBa_K907001"
 +
                            target="blank"
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                            style="color: #226CE4"><strong>BBa_K907001</strong></a>) with Bxb1 gp35 and tested the ability of this fusion protein (<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243013"
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                            target="blank"
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                            style="color: #226CE4"><strong>BBa_K2243013</strong></a>) to invert the
 
                         DNA sequence flanked by its specific attL/R sites.<br>
 
                         DNA sequence flanked by its specific attL/R sites.<br>
 
                         <br><br>
 
                         <br><br>
  
                         <h2 id="im3">Improvement of phi31 integrase</h2>
+
                         <h2 id="im3">Improvement of phi31 Integrase</h2>
 
                         Though there are quite a few parts related to phiC31 integrase, there is no systematic standard
 
                         Though there are quite a few parts related to phiC31 integrase, there is no systematic standard
 
                         characterization of it. The only relevant information we found comprises fluorescent images
 
                         characterization of it. The only relevant information we found comprises fluorescent images
 
                         that show the performance of phiC31 in plants, which is not quantitative and accurate.<br>
 
                         that show the performance of phiC31 in plants, which is not quantitative and accurate.<br>
  
                         Our team used our standard reporter (BBa_K2243008) to characterize phiC31, and selected a few
+
                         Our team used our standard reporter (<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243008"
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                            target="blank"
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                            style="color: #226CE4"><strong>BBa_K2243008</strong></a>) to characterize phiC31, and selected a few
 
                         well-behaved phiC31 translational units which can achieve very high inversion efficiencies with
 
                         well-behaved phiC31 translational units which can achieve very high inversion efficiencies with
 
                         low leakage. Through these data, we will be able to make use of phiC31 in our future designs
 
                         low leakage. Through these data, we will be able to make use of phiC31 in our future designs
                         more efficiently and accurately. Additionally, we used our composite part (BBa_K2243031),
+
                         more efficiently and accurately. Additionally, we used our composite part (<a
 +
                            href="http://parts.igem.org/Part:BBa_K2243031"
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                            target="blank"
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                            style="color: #226CE4"><strong>BBa_K2243031</strong></a>),
 
                         consisting of the unidirectional terminator ECK120034435 flanked by attB/P sites, as the
 
                         consisting of the unidirectional terminator ECK120034435 flanked by attB/P sites, as the
 
                         reporter to evaluate the per-formance of Bxb1 gp35, which broadens the prospects to use Bxb1
 
                         reporter to evaluate the per-formance of Bxb1 gp35, which broadens the prospects to use Bxb1
                         to con-trol gene expression.<br>
+
                         to con-trol gene expression.
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                 <h2 style="color: white; "> <strong>Peking iGEM</strong> 2017</h2>
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                        District, Beijing, P.R.China<br>100871
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Latest revision as of 23:39, 1 November 2017

Peking iGEM 2017

Overview


Members of Peking iGEM 2017 team devoted themselves to constructing a part library related to recombinases. We have not only submitted 5 basic parts consisting of improved recombinases and recombinase-RDF fusion proteins, but also provided 31 composite parts including a series of unidirectional terminators flanked by attB/P sites and some well-performed constructs to express or report recombinases.

Functions of all the parts were tested and validated both in controlled laboratory condition and in normal condition. They can be used as powerful tools for other iGEM teams.idirectional terminators flanked by recombination sites.

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Favorite Basic Part


Introduction

This year, our team has selected a series of recombinases through literature searches and characterized a number of them. Here we present the best characterized recombinase - Bxb1 gp35 (BBa_K2243012) as our best basic part for the award.

With well-behaved inversion performance, Bxb1 gp35 can invert the target DNA sequence efficiently, thus changing the function of the circuit according to our demands, and can be designed and used by other iGEM teams in their project/research.

Figure 1. Schematic of the standard approach used for recombinase characterization

How we characterized and improved the part

Using our standard approach to characterize recombinases (Figure 1), we selected two different vectors and a series of RBS to express Bxb1 to invert the constitutive promoter BBa_J23119 and change the fluorescence. Through the screening procedure, we improved the performance of Bxb1 gp35 and obtained a number of well-behaved matches, among which Bxb1 gp35 recombinase works particularly well. (See more in Flip-flop)

Properties

Through the fine tuning, we improved the performance of Bxb1 gp35 efficiently. Here we present some of the well-tested behaviors of this recom-binase, which indicates the excellent properties of Bxb1 gp35.

High efficiency of inversion under most conditions

Whether with computer-designed RBS or widely used RBS from the iGEM registry, Bxb1 exhibited a relatively high efficiency in inverting the target promoter.

Low leakage through tuning

Through our tuning procedure and exhaustive characterization, we ob-tained a series of response curves to the concentration of inducer, in which relatively low leakage (no inducer) and high inversion efficiency (proper in-ducer concentration) were found. This property meets our requirements well, indicating that Bxb1 gp35 can change the DNA accurately according to our needs.

Potential for controlling the downstream circuit

In addition to inverting the promoter to change the gene expression, we also used the improved Bxb1 expression plasmid to invert a unidirectional terminator (See more in controller), thus opening or closing the expression of a downstream reporter gene.



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Best Composite Part


Our team constructed many composite parts for the expression of the reporter and the recombinase. Here we present a list of them, and introduce the best-performing part: Bxb1 attB_ ECK120034435F_Bxb1 attP , as our best composite part.(See more in controller)

Function of Bxb1 attB_ECK120034435_Bxb1 attP



Figure 1. Schematic of the Bxb1 attB_ECK120034435_Bxb1 attP composite part as integrated into the GFP expression plasmid.

Our best composite part consists of the Bxb1 gp35's target sites attB/attP and one well-behaved unidirectional terminator (ECK120034435) between them. This construct can be regarded as an outstanding biological switch for RNA polymerase, because of its high ratio between forward and reverse terminator strength. What's more, we can express Bxb1 gp35 to change the direction of the terminator and switch on/off the expression of downstream genes.

Excellent performance

High ratio between forward and reverse terminator strength. (Over 1000-fold)

The terminator ECK120034435 is the best-performing unidirectional terminator in our library, and its Ts ratio is higher than 1000-fold, which indicates that it can potentially be used as an RNAP switch in our circuit.

No latent reactivity to transcription.

Unlike some other terminators we observed and characterized, ECK120034435 has no latent promoter reactivity under most conditions, and won't start transcription even if ligated with recombinase reaction sites. Thus, this terminator can be used as our controller to improve the predictability of our constructed circuit.

Robustness under different conditions.

When we introduced one or two pairs of attB/P sites on both sides of ECK120034435 to construct the controller that can be inverted by recombinase, the great performance of this unidirectional terminator was robust. This property shows its potential utility in constructing more complex control circuits in our sequential logic circuitry.

Ability to control expression through the recombinase.

With the excellent performance in opening/closing the transcription process, we have proved that our best composite part can be inverted by Bxb1 gp35 to obviously change the GFP expression, which shows that this construct is potentially a great control unit for gene expression under the control of recombinases.




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Part Collection


Members of Peking iGEM 2017 team devoted themselves to constructing a part library of unidirectional terminators flanked by recombination sites.

This construct can be regarded as one outstanding biological switch to RNA polymerase because of its high ratio between forward and reverse Terminator Strength (Ts). What's more, we can express the corresponding recombinase to change the direction of terminator and switch on/off the gene expression downstream.


The collection of parts mostly has good performance and can be improved further. Their Ts ratios are relatively high (some even higher than 1000 folds), which indicates that they can be used as great RNAP switches in our circuit potentially. Some of them have robustness even when ligated with attB/P sites and we have observed obvious inversion through the expression of recombinase which indicates the usability to control the expression through recombinase.

Our part collection includes:

Bxb1 attB_Unidirectional terminator_Bxb1 attP

Bxb1 attB_L3S3P22F_Bxb1 attP(BBa_K2243018)
Bxb1 attB_L3S3P22R_Bxb1 attP(BBa_K2243019)
Bxb1 attB_ECK120030221F_Bxb1 attP(BBa_K2243020)
Bxb1 attB_ECK120030221R_Bxb1 attP(BBa_K2243021)
Bxb1 attB_ECK120033737R_Bxb1 attP(BBa_K2243022)
Bxb1 attB_ECK120034435F_Bxb1 attP(BBa_K2243023)
Bxb1 attB_ECK120034435R_Bxb1 attP(BBa_K2243024)
Bxb1 attB_ECK120010855F_Bxb1 attP(BBa_K2243025)
Bxb1 attB_ECK120010836F_Bxb1 attP(BBa_K2243026)
Bxb1 attB_ECK120010836R_Bxb1 attP(BBa_K2243027)

phiC31 attB_Unidirectional terminator_phiC31 attP

phiC31 attB_ECK120034435F_phiC31 attP(BBa_K2243031)
phiC31 attB_ECK120034435R_phiC31 attP(BBa_K2243032)

TP901-1 attB_Unidirectional terminator_TP901-1 attP

TP901-1 attB_ECK120030221F_TP901-1 attP(BBa_K2243033)
TP901-1 attB_ECK120030221R_TP901-1 attP(BBa_K2243034)
TP901-1 attB_ECK120034435R_TP901-1 attP(BBa_K2243035)

int2 attB_Unidirectional terminator_int2 attP

int2 attB_ECK120030221R_int2 attP(BBa_K2243028)
int2 attB_ECK120010855F_int2 attP(BBa_K2243029)
int2 attB_ECK120010855R_int2 attP(BBa_K2243030)

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Improvement


Though there are already many recombinase parts in the iGEM registry, quantitative characterization data on them is very limited, and what's more, there is no single standard characterization method for serine recombinases. In addition, even though the attL/R sites formed by the recom-binase inversion are not recognized by the recombinases which create them, we successfully achieved the "reset" process using fusions of the recombinases and their recombination directionality factors (RDF).

Improvement of TP901-1

The submitted TP901-1 integrase part(BBa_K1132010) in the iGEM registry only consists of a brief introduction to it. The only data for TP901-1 was obtained through the dimerization of split integrase, which did not work so well. Additionally, there appears to be no quantitative information to evaluate the RDF of TP901-1.
This year we submitted the TP901-1 (BBa_K2243000) coding region as a basic part, and obtained detailed data to evaluate the inversion efficiency of TP901-1 integrase with different RBSs and vectors through our standard characterization method. This opens the possibility to tune and improve its performance further to meet our design requirements.
We also used our composite part BBa_K2243035, comprising the unidirec-tional terminator ECK120034435 flanked by attB/P sites, as the reporter to evaluate the performance of TP901-1, which broadens the prospects to use TP901-1 to control gene expression.
We also constructed the fusion protein BBa_K2243014, comprising TP901-1 integrase and its RDF(BBa_K1733000), and tested its ability to invert DNA through attL/R sites. (See more in Flip-flop)


Improvement of Bxb1 gp35

Some characterization data of Bxb1 gp35 (BBa_K907000) is already available in the iGEM registry, but it is still limited because the RBS plays a significant role in recombinase expression and performance according to our modelling and observations. Without proper RBSs, Bxb1 may exhibit very high leaky expression (even approaching the induced expression level).
This year, our team constructed an RBS library to improve the efficiency of Bxb1 gp35(BBa_K2243012). We obtained a number of well-behaved matches (from BBa_K2243002-BBa_K2243005), and measured their corresponding transfer curves against the concentration of inducer. Through our improvements, Bxb1 showed a very high efficiency of nearly 95% and low leakage of inversion.
Additionally, we used our composite parts (BBa_K2243023 and BBa_K2243024), comprising the unidirectional terminator ECK120034435 flanked by attB/P sites as the reporter to evaluate the performance of Bxb1 gp35, which broadens the prospects to use Bxb1 to control gene expres-sion.
Finally, we fused Bxb1 gp47 (BBa_K907001) with Bxb1 gp35 and tested the ability of this fusion protein (BBa_K2243013) to invert the DNA sequence flanked by its specific attL/R sites.


Improvement of phi31 Integrase

Though there are quite a few parts related to phiC31 integrase, there is no systematic standard characterization of it. The only relevant information we found comprises fluorescent images that show the performance of phiC31 in plants, which is not quantitative and accurate.
Our team used our standard reporter (BBa_K2243008) to characterize phiC31, and selected a few well-behaved phiC31 translational units which can achieve very high inversion efficiencies with low leakage. Through these data, we will be able to make use of phiC31 in our future designs more efficiently and accurately. Additionally, we used our composite part (BBa_K2243031), consisting of the unidirectional terminator ECK120034435 flanked by attB/P sites, as the reporter to evaluate the per-formance of Bxb1 gp35, which broadens the prospects to use Bxb1 to con-trol gene expression.



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