Difference between revisions of "Team:CHINA CD UESTC/Design"

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<p>
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            <p>
<B>DESIGN</B>
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                <B>DESIGN</B>
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            <p class="blockWords">
&nbsp;&nbsp;We mainly designed three vectors respectively carrying <i>mamW</i>
+
                &nbsp;&nbsp;We mainly designed three vectors respectively carrying <i>mamW</i>
+ <i>RFP</i>
+
                + <i>RFP</i>
+ <i>laccase</i> ,
+
                + <i>laccase</i> ,
<i>mamAB</i>
+
                <i>mamAB</i>
and
+
                and
<i>mamGFDC</i>
+
                <i>mamGFDC</i>
+
+
                +
<i>mms6</i>
+
                <i>mms6</i>
+
+
                +
<i>mamXY</i>
+
                <i>mamXY</i>
. Our purpose is to accomplish our magnetotactic
+
                . Our purpose is to accomplish our magnetotactic
<i>E.coli</i>
+
                <i>E.coli</i>
and fix the Laccase on the magnetosome membrane. Finally we put the magnetosomes carrying Laccases into our enzymatic bio-fuel cell (EBFC).
+
                and fix the Laccase on the magnetosome membrane. Finally we put the magnetosomes carrying Laccases into our enzymatic bio-fuel cell (EBFC).
</p>
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            </p>
</div>
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<div id="RightContentText">
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                <div class="container clearfix">
  
<div id="content" class="grid_12">
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                    <div id="content" class="grid_12">
<h3>Overview</h3>
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                        <h3>Overview</h3>
</div>
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                    </div>
<div class="clear"></div>
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<div id="content">
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<p>
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                            <p>
This summer, CHINA_CD_UESTC team worked very hard in order to make a high-efficiency enzymatic biofuel cell (EBFC) by enriching the Laccase on the cathode electrode.  We transferred four operons--
+
                                This summer, CHINA_CD_UESTC team worked very hard in order to make a high-efficiency enzymatic biofuel cell (EBFC) by enriching the Laccase on the cathode electrode.  We transferred four operons--
<i>mamAB</i>
+
                                <i>mamAB</i>
,
+
                                ,
<i>mamGFDC</i>
+
                                <i>mamGFDC</i>
,
+
                                ,
<i>mamXY</i>
+
                                <i>mamXY</i>
and
+
                                and
<i>mms6</i>
+
                                <i>mms6</i>
, which were related to magnetosome formation into
+
                                , which were related to magnetosome formation into
<i>E.coli.</i>
+
                                <i>E.coli.</i>
the modified
+
                                the modified
<i>E.coli</i>
+
                                <i>E.coli</i>
can produce Laccase-carried magnetosome. Therefore, we could immobilize and enrich Laccase on the cathode electrode by magnet. In our project, we improved previous <i>laccase</i> part (
+
                                can produce Laccase-carried magnetosome. Therefore, we could immobilize and enrich Laccase on the cathode electrode by magnet. In our project, we improved previous <i>laccase</i> part (
<a href="http://parts.igem.org/Part:BBa_K863005">BBa_K863005</a>
+
                                <a href="http://parts.igem.org/Part:BBa_K863005">BBa_K863005</a>
) and made it visible.
+
                                ) and made it visible.
</p>
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                            </p>
<P>
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                            <P>
The EBFC schematic diagram as following is the final <strong>prototype</strong>
+
                                The EBFC schematic diagram as following is the final <strong>prototype</strong>
of our project(Figure 1):
+
                                of our project(Figure 1):
</P>
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                            </P>
<div class="project_pic">
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                            <div class="project_pic">
<p id="pic_title"></p>
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                                <p id="pic_title"></p>
<img src="https://static.igem.org/mediawiki/2015/0/0b/CHINA_CD_UESTC_DESIGN_overview.png" width="70%">
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                                <img src="https://static.igem.org/mediawiki/2015/0/0b/CHINA_CD_UESTC_DESIGN_overview.png" width="70%">
<p id="pic_illustration"> <strong>Figure 1</strong>
+
                                <p id="pic_illustration"> <strong>Figure 1</strong>
. Schematic diagram of our EBFC. On the anode, glucose is oxidized to gluconolactone, where the electrons are transferred from the GOX to CNT. On the cathode, Laccase is immobilized and enriched on the electrode by magnetosome. Electrons are transferred from CNT to Laccase where dioxygen is reduced to water.
+
                                    . Schematic diagram of our EBFC. On the anode, glucose is oxidized to gluconolactone, where the electrons are transferred from the GOX to CNT. On the cathode, Laccase is immobilized and enriched on the electrode by magnetosome. Electrons are transferred from CNT to Laccase where dioxygen is reduced to water.
</p>
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                                </p>
</div>
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                            </div>
  
</div>
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                        </div>
</div>
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                    </div>
</div>
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                </div>
</div>
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            </div>
<div class="slide" id="slide2" data-slide="2" data-stellar-background-ratio="0.5" style="background-position: 0px 669px;">
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            <div class="slide" id="slide2" data-slide="2" data-stellar-background-ratio="0.5" style="background-position: 0px 669px;">
<div class="container clearfix">
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                <div class="container clearfix">
  
<div id="content" class="grid_12">
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                    <div id="content" class="grid_12">
<h3>Laccase</h3>
+
                        <h3>Laccase</h3>
</div>
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                    </div>
<div class="clear"></div>
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<div id="content">
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                    <div id="content">
<div class="grid_8">
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<p>
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                            <p>
After a review of the relevant literature <sup>[1]</sup>
+
                                After a review of the relevant literature <sup>[1]</sup>
, we learned that the Laccase has advantages over other oxidases. Thereby, we chose the Laccase as the enzyme for cathode. In order to make Laccase visible, we designed a recombinant vector to fuse
+
                                , we learned that the Laccase has advantages over other oxidases. Thereby, we chose the Laccase as the enzyme for cathode. In order to make Laccase visible, we designed a recombinant vector to fuse
<i>RFP</i>
+
                                <i>RFP</i>
with the <i>laccase</i>. And <i>laccase</i> gene was obtained from
+
                                with the <i>laccase</i>. And <i>laccase</i> gene was obtained from
<a href="http://parts.igem.org/Part:BBa_K863005">BBa_K863005</a>
+
                                <a href="http://parts.igem.org/Part:BBa_K863005">BBa_K863005</a>
on the 2015 Kit Plate2. While the
+
                                on the 2015 Kit Plate2. While the
<i>RFP</i>
+
                                <i>RFP</i>
gene was taken from
+
                                gene was taken from
<a href="http://parts.igem.org/Part:BBa_E1010">BBa_E1010</a>
+
                                <a href="http://parts.igem.org/Part:BBa_E1010">BBa_E1010</a>
on the 2015 Kit Plate3. We designed the vector piGEM-RL as below(Figure 2).After constructing the vectors completely, we detected whether it work or not by the method of ABTS <sup>[3]</sup> :
+
                                on the 2015 Kit Plate3. We designed the vector piGEM-RL as below(Figure 2).After constructing the vectors completely, we detected whether it work or not by the method of ABTS <sup>[2]</sup> :
</p>
+
                            </p>
<div class="project_pic">
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                            <div class="project_pic">
<p id="pic_title"></p>
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                                <p id="pic_title"></p>
<img src="https://static.igem.org/mediawiki/2015/1/12/CHINA_CD_UESTC_DESIGN_LACCASE02.png" width="60%">
+
                                <img src="https://static.igem.org/mediawiki/2015/1/12/CHINA_CD_UESTC_DESIGN_LACCASE02.png" width="60%">
<p id="pic_illustration">
+
                                <p id="pic_illustration">
<strong>Figure 2.</strong>
+
                                    <strong>Figure 2.</strong>
Schematic of piGEM-RL construction. Laccase: efficient oxidase, catalyzes the substrate to produce electrons and environmentally friendly. RFP: the reporter protein.
+
                                    Schematic of piGEM-RL construction. Laccase: efficient oxidase, catalyzes the substrate to produce electrons and environmentally friendly. RFP: the reporter protein.
</p>
+
                                </p>
</div>
+
                            </div>
<p>The Laccase can be used to construct a common EBFC as biological cathode. we conceived a prototype( Figure 3). In the EBFC, we used carbon paper which was full of carbon microfibers as electrode because it has good conductivity and large surface area. Glucose oxidase and RFP+Laccase were chosed to catalyze reaction for producing electricity!
+
                            <p>The Laccase can be used to construct a common EBFC as biological cathode. we conceived a prototype( Figure 3). In the EBFC, we used carbon paper which was full of carbon microfibers as electrode because it has good conductivity and large surface area. Glucose oxidase and RFP+Laccase were chosed to catalyze reaction for producing electricity!
</p>
+
                            </p>
<div class="project_pic">
+
                            <div class="project_pic">
<p id="pic_title"></p>
+
                                <p id="pic_title"></p>
<img src="https://static.igem.org/mediawiki/2015/f/f7/CHINA_CD_UESTC_DesignOverview.png" width="60%">
+
                                <img src="https://static.igem.org/mediawiki/2015/f/f7/CHINA_CD_UESTC_DesignOverview.png" width="60%">
<p id="pic_illustration">
+
                                <p id="pic_illustration">
<strong>Figure 3.</strong>
+
                                    <strong>Figure 3.</strong>
Schematic diagram of our EBFC. On the anode, glucose is oxidized to gluconolactone, where the electrons are transferred from the GOX to CNT. On the cathode, electrons are transferred from CNT to Laccase where dioxygen is reduced to water.
+
                                    Schematic diagram of our EBFC. On the anode, glucose is oxidized to gluconolactone, where the electrons are transferred from the GOX to CNT. On the cathode, electrons are transferred from CNT to Laccase where dioxygen is reduced to water.
</p>
+
                                </p>
</div>
+
                            </div>
  
<p>
+
                            <p>
The components of the EBFC are listed in the Table 1.
+
                                The components of the EBFC are listed in the Table 1.
</p>
+
                            </p>
<div class="project_pic">
+
                            <div class="project_pic">
<p id="pic_title"></p>
+
                                <p id="pic_title"></p>
<img src="https://static.igem.org/mediawiki/2015/a/a8/CHINA_CD_UESTC-DesignPlus01.png" width="70%">
+
                                <img src="https://static.igem.org/mediawiki/2015/a/a8/CHINA_CD_UESTC-DesignPlus01.png" width="70%">
<p id="pic_illustration"></p>
+
                                <p id="pic_illustration"></p>
</div>
+
                            </div>
<p>
+
                            <p>
The <strong>main materials</strong> of our EBFC.
+
                                The <strong>main materials</strong> of our EBFC.
</p>
+
                            </p>
<p>The main materials of our EBFC(Figure 4). Carbon paper consists of carbon microfibers manufactured into flat sheets. It is used to help facilitates the reaction. Glucose oxidase oxidizes glucose into glucolactone. Electrons are released in the reaction.The fusion protein(RFP+Laccase) transfers electrons to the terminal electron acceptor oxygen.
+
                            <p>The main materials of our EBFC(Figure 4). Carbon paper consists of carbon microfibers manufactured into flat sheets. It is used to help facilitates the reaction. Glucose oxidase oxidizes glucose into glucolactone. Electrons are released in the reaction.The fusion protein(RFP+Laccase) transfers electrons to the terminal electron acceptor oxygen.
</p>
+
                            </p>
<div class="project_pic">
+
                            <div class="project_pic">
<p id="pic_title"></p>
+
                                <p id="pic_title"></p>
<img src="https://static.igem.org/mediawiki/2015/3/3b/CHINA_CD_UESTC-DesignPlus02.png" width="60%">
+
                                <img src="https://static.igem.org/mediawiki/2015/3/3b/CHINA_CD_UESTC-DesignPlus02.png" width="60%">
<p id="pic_illustration">
+
                                <p id="pic_illustration">
<strong>Figure 4. (A)</strong>
+
                                    <strong>Figure 4. (A)</strong>
Carbon papers as the electrode.
+
                                    Carbon papers as the electrode.
<strong>(B)</strong>
+
                                    <strong>(B)</strong>
Glucose oxidase on the anode.
+
                                    Glucose oxidase on the anode.
<strong>(C)</strong>
+
                                    <strong>(C)</strong>
RFP+Laccase on the cathode.
+
                                    RFP+Laccase on the cathode.
</p>
+
                                </p>
</div>
+
                            </div>
  
</div>
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                        </div>
</div>
+
                    </div>
</div>
+
                </div>
</div>
+
            </div>
  
<div class="slide" id="slide2" data-slide="4" data-stellar-background-ratio="0.5" style="background-position: 0px 669px;">
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            <div class="slide" id="slide2" data-slide="4" data-stellar-background-ratio="0.5" style="background-position: 0px 669px;">
<div class="container clearfix">
+
                <div class="container clearfix">
  
<div id="content" class="grid_12">
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                    <div id="content" class="grid_12">
<h3>Magnetosome</h3>
+
                        <h3>Magnetosome</h3>
</div>
+
                    </div>
<div id="content">
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                    <div id="content">
<div class="grid_8">
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                        <div class="grid_8">
<p>
+
                            <p>
In order to immobilize and enrich Laccase on the cathode pole,we want to connect Laccase with magnetosome. Then the magnetosome carrying Laccase can be attracted by magnet. First, we need to obtain lots of magnetosomes.In the magnetotactic bacteria, there are four steps to generate magnetosome
+
                                In order to immobilize and enrich Laccase on the cathode pole,we want to connect Laccase with magnetosome. Then the magnetosome carrying Laccase can be attracted by magnet. First, we need to obtain lots of magnetosomes.In the magnetotactic bacteria, there are four steps to generate magnetosome
<sup>[5]</sup>
+
                                <sup>[3]</sup>
:1-invagination, 2-protein localization, 3-initiation of crystal mineralization, 4-crystal maturation.There exist four operons--
+
                                :1-invagination, 2-protein localization, 3-initiation of crystal mineralization, 4-crystal maturation.There exist four operons--
<i>mamAB</i>
+
                                <i>mamAB</i>
,
+
                                ,
<i>mamGFDC</i>
+
                                <i>mamGFDC</i>
,
+
                                ,
<i>mamXY</i>
+
                                <i>mamXY</i>
and
+
                                and
<i>mms6</i>
+
                                <i>mms6</i>
, which are related to magnetosome formation.
+
                                , which are related to magnetosome formation.
</p>
+
                            </p>
<h4>1. mamAB</h4>
+
                            <h4>1. mamAB</h4>
<p>
+
                            <p>
This section describes the function of the vector piGEM-mamAB. It carries
+
                                This section describes the function of the vector piGEM-mamAB. It carries
<i>mamAB</i>
+
                                <i>mamAB</i>
operon whose length is up to 17kb. Previous studies have shown that
+
                                operon whose length is up to 17kb. Previous studies have shown that
<i>mamAB</i>
+
                                <i>mamAB</i>
operon is one of the four core operons related to magnetosomes formation
+
                                operon is one of the four core operons related to magnetosomes formation
<sup>[9]</sup>
+
                                <sup>[4]</sup>
. For consideration of the whole operon length (up to 17kb), compatibility and vector carrying capacity, we finally chose the vector pET-28a
+
                                . For consideration of the whole operon length (up to 17kb), compatibility and vector carrying capacity, we finally chose the vector pET-28a
<sup>[6]</sup> as backbone. Accordingly, we put the
+
                                <sup>[5]</sup> as backbone. Accordingly, we put the
<i>mamAB</i>
+
                                <i>mamAB</i>
operon into
+
                                operon into
<i>E.coli</i>
+
                                <i>E.coli</i>
by the vector designed as followed:
+
                                by the vector designed as followed:
</p>
+
                            </p>
<div class="project_pic">
+
                            <div class="project_pic">
<img src="https://static.igem.org/mediawiki/2015/b/bc/CHINA_CD_UESTC_DESIGNmamAB01.png" width="50%">
+
                                <img src="https://static.igem.org/mediawiki/2015/b/bc/CHINA_CD_UESTC_DESIGNmamAB01.png" width="50%">
<p id="pic_illustration" style="text-align:center">
+
                                <p id="pic_illustration" style="text-align:center">
<strong>Figure 5.</strong>
+
                                    <strong>Figure 5.</strong>
Schematic of piGEM-AB construction.
+
                                    Schematic of piGEM-AB construction.
</p>
+
                                </p>
</div>
+
                            </div>
  
<p>
+
                            <p>
Since the length of
+
                                Since the length of
<i>mamAB</i>
+
                                <i>mamAB</i>
operon is up to 17kb, it is difficult to directly get its complete gene fragment. After studying the sequence, we divided
+
                                operon is up to 17kb, it is difficult to directly get its complete gene fragment. After studying the sequence, we divided
<i>mamAB</i>
+
                                <i>mamAB</i>
operon into three parts which amplified from
+
                                operon into three parts which amplified from
<strong><i>Magnetospirillum gryphiswaldense MSR-1</i></strong>  
+
                                <strong><i>Magnetospirillum gryphiswaldense MSR-1</i></strong>  
, and connected together by the following steps:
+
                                , and connected together by the following steps:
</p>
+
                            </p>
<div class="project_pic">
+
                            <div class="project_pic">
<p id="pic_title"></p>
+
                                <p id="pic_title"></p>
<img src="https://static.igem.org/mediawiki/2015/8/86/CHINA_CD_UESTC_DESIGNmamAB02.png" width="60%">
+
                                <img src="https://static.igem.org/mediawiki/2015/8/86/CHINA_CD_UESTC_DESIGNmamAB02.png" width="60%">
<p id="pic_illustration" style="text-align:center">
+
                                <p id="pic_illustration" style="text-align:center">
<strong>Figure 6.</strong>
+
                                    <strong>Figure 6.</strong>
Schematic of the subclone method.
+
                                    Schematic of the subclone method.
</p>
+
                                </p>
</div>
+
                            </div>
</div>
+
                        </div>
</div>
+
                    </div>
  
</div>
+
                </div>
</div>
+
            </div>
  
<div class="slide" id="slide2" data-slide="4" data-stellar-background-ratio="0.5" style="background-position: 0px 669px;">
+
            <div class="slide" id="slide2" data-slide="4" data-stellar-background-ratio="0.5" style="background-position: 0px 669px;">
<div class="container clearfix">
+
                <div class="container clearfix">
  
<div id="content">
+
                    <div id="content">
<div class="grid_8">
+
                        <div class="grid_8">
  
<h4>
+
                            <h4>
2.
+
                                2.
<i>mamGFDC</i>
+
                                <i>mamGFDC</i>
+
+
                                +
<i>mamXY</i>
+
                                <i>mamXY</i>
+
+
                                +
<i>mms6</i>
+
                                <i>mms6</i>
</h4>
+
                            </h4>
  
<p>
+
                            <p>
Previous study have shown that although the exact mechanism is not completely understood, these three operons are indispensable in modifying the formation of the magnetosome. Therefore, we built them on one vector to explore its practical effect modification
+
                                Previous study have shown that although the exact mechanism is not completely understood, these three operons are indispensable in modifying the formation of the magnetosome. Therefore, we built them on one vector to explore its practical effect modification
<sup>[7]</sup>
+
                                <sup>[6]</sup>
. Currently already known as following:
+
                                . Currently already known as following:
</p>
+
                            </p>
<div class="list_txt">
+
                            <div class="list_txt">
<ul>
+
                                <ul>
<li>
+
                                    <li>
<h5>
+
                                        <h5>
1)
+
                                            1)
<strong>
+
                                            <strong>
<i>mamGFDC</i>
+
                                                <i>mamGFDC</i>
</strong>
+
                                            </strong>
+
                                           
</h5>
+
                                        </h5>
<p>
+
                                        <p>
Crystal size and shape are mainly regulated by proteins encoded in the
+
                                            Crystal size and shape are mainly regulated by proteins encoded in the
<i>mamGFDC</i>
+
                                            <i>mamGFDC</i>
operon (composed of the genes
+
                                            operon (composed of the genes
<i>mamC, D, F,</i>
+
                                            <i>mamC, D, F,</i>
and
+
                                            and
<i>G</i>
+
                                            <i>G</i>
) and its deletion also leads to a reduction of the size of the magnetite magnetosome crystals
+
                                            ) and its deletion also leads to a reduction of the size of the magnetite magnetosome crystals
<sup>[7,8]</sup>
+
                                            <sup>[6,7]</sup>
.
+
                                            .
</p>
+
                                        </p>
</li>
+
                                    </li>
<li>
+
                                    <li>
<h5>
+
                                        <h5>
2)
+
                                            2)
<strong>
+
                                            <strong>
<i>mamXY</i>
+
                                                <i>mamXY</i>
</strong>
+
                                            </strong>
+
                                           
</h5>
+
                                        </h5>
<p>
+
                                        <p>
The
+
                                            The
<i>mamXY</i>
+
                                            <i>mamXY</i>
operon encodes proteins related to the magnetosome membrane (
+
                                            operon encodes proteins related to the magnetosome membrane (
<i>mamY, X, Z</i>
+
                                            <i>mamY, X, Z</i>
, and
+
                                            , and
<i>ftsZ</i>
+
                                            <i>ftsZ</i>
-like genes) and its deletion causes cells of Magnetospirillum to produce smaller magnetite particles with superparamagnetic characteristics
+
                                            -like genes) and its deletion causes cells of Magnetospirillum to produce smaller magnetite particles with superparamagnetic characteristics
<sup>[10]</sup>
+
                                            <sup>[8]</sup>
.
+
                                            .
</p>
+
                                        </p>
</li>
+
                                    </li>
<li>
+
                                    <li>
<h5>
+
                                        <h5>
3)
+
                                            3)
<strong>
+
                                            <strong>
<i>mms6</i>
+
                                                <i>mms6</i>
</strong>
+
                                            </strong>
+
                                           
</h5>
+
                                        </h5>
<p>
+
                                        <p>
The
+
                                            The
<i>mms6</i>
+
                                            <i>mms6</i>
operon contains five genes (
+
                                            operon contains five genes (
<i>mms6, mmsF, mgr4070, mgr4071</i>
+
                                            <i>mms6, mmsF, mgr4070, mgr4071</i>
, and
+
                                            , and
<i>mgr4074</i>
+
                                            <i>mgr4074</i>
)
+
                                            )
<sup>[11]</sup>
+
                                            <sup>[9]</sup>
that also appear to be involved in magnetite crystal shape and size.
+
                                            that also appear to be involved in magnetite crystal shape and size.
</p>
+
                                        </p>
</li>
+
                                    </li>
</ul>
+
                                </ul>
</div>
+
                            </div>
  
<p>
+
                            <p>
We need co-transfer the three vectors into
+
                                We need co-transfer the three vectors into
<i>E. coli</i>
+
                                <i>E. coli</i>
, so the vector we chose be able to co-transformation with the vector pET-28a and pACYCDuet-1 is pCDFDuet-1. The final design of vector is shown in the following figure:
+
                                , so the vector we chose be able to co-transformation with the vector pET-28a and pACYCDuet-1 is pCDFDuet-1. The final design of vector is shown in the following figure:
</p>
+
                            </p>
<div class="project_pic">
+
                            <div class="project_pic">
<img src="https://static.igem.org/mediawiki/2015/a/a1/CHINA_CD_UESTC_DESIGN_GFDC01.png" width="50%">
+
                                <img src="https://static.igem.org/mediawiki/2015/a/a1/CHINA_CD_UESTC_DESIGN_GFDC01.png" width="50%">
<p id="pic_illustration" style="text-align:center">
+
                                <p id="pic_illustration" style="text-align:center">
<strong>Figure 7.</strong>
+
                                    <strong>Figure 7.</strong>
Schematic of piGEM-G6X construction.
+
                                    Schematic of piGEM-G6X construction.
</p>
+
                                </p>
</div>
+
                            </div>
<P>
+
                            <P>
We decided to get two gene fragments
+
                                We decided to get two gene fragments
<i>mamXY</i>
+
                                <i>mamXY</i>
and
+
                                and
<i>mamGFDC</i>
+
                                <i>mamGFDC</i>
+
+
                                +
<i>mms6</i>
+
                                <i>mms6</i>
from
+
                                from
<i><strong>Magnetospirillum gryphiswaldense MSR-1</strong></i>  
+
                                <i><strong>Magnetospirillum gryphiswaldense MSR-1</strong></i>  
genome. We respectively designed the method of gene obtain shown in the following figure:
+
                                genome. We respectively designed the method of gene obtain shown in the following figure:
</P>
+
                            </P>
<div class="project_pic">
+
                            <div class="project_pic">
<img src="https://static.igem.org/mediawiki/2015/0/00/CHINA_CD_UESTC_DESIGN_GFDC02.png" width="60%">
+
                                <img src="https://static.igem.org/mediawiki/2015/0/00/CHINA_CD_UESTC_DESIGN_GFDC02.png" width="60%">
<p id="pic_illustration" style="text-align:center">
+
                                <p id="pic_illustration" style="text-align:center">
<strong>Figure 8</strong>
+
                                    <strong>Figure 8</strong>
. Schematic of the piGEM-G6X construction method.
+
                                    . Schematic of the piGEM-G6X construction method.
</p>
+
                                </p>
  
</div>
+
                            </div>
  
<h4>3. Connection magnetosome with Laccase</h4>
+
                            <h4>3. Connection magnetosome with Laccase</h4>
<div class="clear"></div>
+
                            <div class="clear"></div>
<p>
+
                            <p>
Meanwhile, in order to make Laccase enriched, we designed a recombinant vector to fuse express <i>mamW</i> and <i>RFP</i> with the <i>laccase</i>. The protein MamW, a magnetosome transmembrane protein, can connect Laccase and magnetosome. The RFP reporter can make the novel structure visible. So we designed the vector piGEM-WRL. As the vector will be co-transferred with another two vectors, we chose the pACYCDuet-1 as the backbone.
+
                                Meanwhile, in order to make Laccase enriched, we designed a recombinant vector to fuse express <i>mamW</i> and <i>RFP</i> with the <i>laccase</i>. The protein MamW, a magnetosome transmembrane protein, can connect Laccase and magnetosome. The RFP reporter can make the novel structure visible. So we designed the vector piGEM-WRL. As the vector will be co-transferred with another two vectors, we chose the pACYCDuet-1 as the backbone.
</p>
+
                            </p>
<div class="project_pic">
+
                            <div class="project_pic">
<img src="https://static.igem.org/mediawiki/2015/9/90/CHINA_CD_UESTC_DESIGN_LACCASE01.png" width="60%">
+
                                <img src="https://static.igem.org/mediawiki/2015/9/90/CHINA_CD_UESTC_DESIGN_LACCASE01.png" width="60%">
<p id="pic_illustration">
+
                                <p id="pic_illustration">
<strong>Figure 9.</strong> Schematic of piGEM-WRL construction. The protein MamW is a magnetosome transmembrane protein<sup>[2]</sup>, <i>mamW</i> gene was amplified from the <strong><i>Magnetospirillum gryphiswaldense MSR-1</i></strong>
+
                                    <strong>Figure 9.</strong> Schematic of piGEM-WRL construction. The protein MamW is a magnetosome transmembrane protein<sup>[10]</sup>, <i>mamW</i> gene was amplified from the <strong><i>Magnetospirillum gryphiswaldense MSR-1</i></strong>
</p>
+
                                </p>
</div>
+
                            </div>
 
<p>In a word, we wanted to fix Laccase on magnetosome membrane, and utilize the magnetotaxis of magnetosome to enrich Laccase on the cathode.  </p>
 
<p>In a word, we wanted to fix Laccase on magnetosome membrane, and utilize the magnetotaxis of magnetosome to enrich Laccase on the cathode.  </p>
<div class="reference">
+
                            <div class="reference">
<h4>Reference</h4>
+
                                <h4>Reference</h4>
<p>
+
                                <p>
[1] Serge Cosnier, Michael Holzinger, Alan Le Goff (2014). “Recent advances in carbon nanotube-based enzymatic fuel cells.Bioengineering and Biotechnology 2:45, doi: 10.3389/fbioe.2014.00045
+
                                    [1] Cosnier S, Holzinger M, Goff A L, et al. Recent advances in carbon nanotube-based enzymatic fuel cells.[J]. Frontiers in Bioengineering & Biotechnology, 2014, 2:45.
</p>
+
                                </p>
<p>
+
                                <p>
[2] Isabel Kolinko, Anna Lohße, Sarah Borg, et al. (2014). “Biosynthesis of magnetic nanostructures in a foreign organism by transfer of bacterial magnetosome gene clusters.” Nature Nanotechnology 9: 193-197, doi:10.1038/nnano.2014.13
+
                                    [2] Zhang P. Test method for the laccase activity with ABTS as the substrate[J]. Textile Auxiliaries, 2007.
</p>
+
                                </p>
<p>
+
                                <p>
[3] Zhang Peng (2007). “Test method for the Laccase activity with ABTS as the substrate.” China Academic Journal Electronic Publishing House 24:1
+
                                    [3] Lohsse A, Ullrich S, Katzmann E, et al. Functional Analysis of the Magnetosome Island in Magnetospirillum gryphiswaldense: The mamAB Operon Is Sufficient for Magnetite Biomineralization[J]. Plos One, 2011, 6(10):: e25561.
</p>
+
                                </p>
<p>
+
                                <p>
[4] Abdelkader Zebda1,2, Chantal Gondran1, Alan Le Goff1. Mediatorless high-power glucose biofuel cells based on compressed carbon nanotube-enzyme electrodes nature communications | 2:370 | DOI: 10.1038/ncomms1365
+
                                    [4] Lohsse A, Ullrich S, Katzmann E, et al. Functional Analysis of the Magnetosome Island in Magnetospirillum gryphiswaldense: The mamAB Operon Is Sufficient for Magnetite Biomineralization[J]. Plos One, 2011, 6(10):: e25561.
</p>
+
                                </p>
<p>
+
                                <p>
[5] Anna Lohße1, Susanne Ullrich1, Emanuel Katzmann1, Sarah Borg1, Gerd Wanner1, Michael Richter2,Birgit Voigt3, Thomas Schweder4, Dirk Schu¨ ler1*.Functional Analysis of the Magnetosome Island in Magnetospirillum gryphiswaldense: The mamAB Operon Is Sufficient for Magnetite Biomineralization
+
                                    [5] Lee H Y, Khosla C. Bioassay-Guided Evolution of Glycosylated Macrolide Antibiotics in Escherichia coli[J]. Plos Biology, 2007, 5(2):e45-e45.
</p>
+
                                </p>
<p>
+
                               
[6] Citation: Lee HY, Khosla C (2007) Bioassay-guided evolution of glycosylated macrolide antibiotics in Escherichia coli. PLoS Biol 5(2): e45. doi:10.1371/journal.pbio.0050045
+
                                <p>
</p>
+
                                    [6] Araujo A C, Abreu F, Silva K T, et al. Magnetotactic Bacteria as Potential Sources of Bioproducts[J]. Marine Drugs, 2015, 13(1):389-430.
<p>
+
                                </p>
[7] Ana Carolina V. Araujo; Fernanda Abreu; Karen Tavares Silva; Dennis A. Bazylinski; Ulysses Lins. Magnetotactic Bacteria as Potential Sources of Bioproducts.Mar. Drugs 2015,13,389-430
+
                                <p>
</p>
+
                                    [7] André, Scheffel, Astrid, G?rdes, Karen, Grünberg, et al. The major magnetosome proteins MamGFDC are not essential for magnetite biomineralization in Magnetospirillum gryphiswaldense but regulate the size of magnetosome crystals.[J]. Journal of Bacteriology, 2008, 190(1):377-386.
<p>
+
                                </p>
[8] Scheffel, A.; Gärdes, A.; Grünberg, K.; Wanner, G.; Schüler, D. The major magnetosome proteins MamGFDC are not essential for magnetite biomineralization in Magnetospirillum gryphiswaldense but regulate the size of magnetosome crystals. J. Bacteriol. 2008, 190, 377–386
+
</p>
+
<p>
+
[9] Lohße, A.; Ullrich, S.; Katzmann, E.; Borg, S.; Wanner, G.; Richter, M.; Voigt, B.; Schweder, T.; Schüler, D. Functional analysis of the magnetosome island in Magnetospirillum gryphiswaldense: The mamAB operon is sufficient for magnetite biomineralization. PLoS One 2011, 6, doi:10.1371/journal.pone.0025561
+
</p>
+
  
<p>
+
                                <p>
[10] Ding, Y.; Li, J.; Liu, J.; Yang, J.; Jiang, W.; Tian, J.; Li, Y.; Pan, Y.; Li, J. Deletion of the ftsZ-like gene results in the production of superparamagnetic magnetite magnetosomes in Magnetospirillum gryphiswaldense. J. Bacteriol. 2010, 192, 1097–1105
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                                    [8] Ding Y, Li J, Liu J, et al. Deletion of the ftsZ-like gene results in the production of superparamagnetic magnetite magnetosomes in Magnetospirillum gryphiswaldense.[J]. Journal of Bacteriology, 2010, 192(4):1097-1105.
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[11] Murat, D.; Quinlan, A.; Vali, H.; Komeili, A. Comprehensive genetic dissection of the magnetosome gene island reveals the step-wise assembly of a prokaryotic organelle. Proc. Natl. Acad. Sci. USA 2010, 107, 5593–5598
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                                    [9] Dorothée M, Anna Q, Hojatollah V, et al. Comprehensive genetic dissection of the magnetosome gene island reveals the step-wise assembly of a prokaryotic organelle[J]. Proceedings of the National Academy of Science, 2010, 107(12):5593-5598.
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                                    [10] Kolinko I; Lohße A; Borg S; Raschdorf O; Jogler C; Tu Q; Pósfai M; Tompa E; Plitzko JM; Brachmann A; Wanner G; Müller R; Zhang Y; Schüler D. Biosynthesis of magnetic nanostructures in a foreign organism by transfer of bacterial magnetosome gene clusters[J]. Nature Nanotechnology, 2014, 9(3):193-197.
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Revision as of 03:11, 18 September 2015

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DESIGN

  We mainly designed three vectors respectively carrying mamW + RFP + laccase , mamAB and mamGFDC + mms6 + mamXY . Our purpose is to accomplish our magnetotactic E.coli and fix the Laccase on the magnetosome membrane. Finally we put the magnetosomes carrying Laccases into our enzymatic bio-fuel cell (EBFC).

Overview

This summer, CHINA_CD_UESTC team worked very hard in order to make a high-efficiency enzymatic biofuel cell (EBFC) by enriching the Laccase on the cathode electrode. We transferred four operons-- mamAB , mamGFDC , mamXY and mms6 , which were related to magnetosome formation into E.coli. the modified E.coli can produce Laccase-carried magnetosome. Therefore, we could immobilize and enrich Laccase on the cathode electrode by magnet. In our project, we improved previous laccase part ( BBa_K863005 ) and made it visible.

The EBFC schematic diagram as following is the final prototype of our project(Figure 1):

Figure 1 . Schematic diagram of our EBFC. On the anode, glucose is oxidized to gluconolactone, where the electrons are transferred from the GOX to CNT. On the cathode, Laccase is immobilized and enriched on the electrode by magnetosome. Electrons are transferred from CNT to Laccase where dioxygen is reduced to water.

Laccase

After a review of the relevant literature [1] , we learned that the Laccase has advantages over other oxidases. Thereby, we chose the Laccase as the enzyme for cathode. In order to make Laccase visible, we designed a recombinant vector to fuse RFP with the laccase. And laccase gene was obtained from BBa_K863005 on the 2015 Kit Plate2. While the RFP gene was taken from BBa_E1010 on the 2015 Kit Plate3. We designed the vector piGEM-RL as below(Figure 2).After constructing the vectors completely, we detected whether it work or not by the method of ABTS [2] :

Figure 2. Schematic of piGEM-RL construction. Laccase: efficient oxidase, catalyzes the substrate to produce electrons and environmentally friendly. RFP: the reporter protein.

The Laccase can be used to construct a common EBFC as biological cathode. we conceived a prototype( Figure 3). In the EBFC, we used carbon paper which was full of carbon microfibers as electrode because it has good conductivity and large surface area. Glucose oxidase and RFP+Laccase were chosed to catalyze reaction for producing electricity!

Figure 3. Schematic diagram of our EBFC. On the anode, glucose is oxidized to gluconolactone, where the electrons are transferred from the GOX to CNT. On the cathode, electrons are transferred from CNT to Laccase where dioxygen is reduced to water.

The components of the EBFC are listed in the Table 1.

The main materials of our EBFC.

The main materials of our EBFC(Figure 4). Carbon paper consists of carbon microfibers manufactured into flat sheets. It is used to help facilitates the reaction. Glucose oxidase oxidizes glucose into glucolactone. Electrons are released in the reaction.The fusion protein(RFP+Laccase) transfers electrons to the terminal electron acceptor oxygen.

Figure 4. (A) Carbon papers as the electrode. (B) Glucose oxidase on the anode. (C) RFP+Laccase on the cathode.

Magnetosome

In order to immobilize and enrich Laccase on the cathode pole,we want to connect Laccase with magnetosome. Then the magnetosome carrying Laccase can be attracted by magnet. First, we need to obtain lots of magnetosomes.In the magnetotactic bacteria, there are four steps to generate magnetosome [3] :1-invagination, 2-protein localization, 3-initiation of crystal mineralization, 4-crystal maturation.There exist four operons-- mamAB , mamGFDC , mamXY and mms6 , which are related to magnetosome formation.

1. mamAB

This section describes the function of the vector piGEM-mamAB. It carries mamAB operon whose length is up to 17kb. Previous studies have shown that mamAB operon is one of the four core operons related to magnetosomes formation [4] . For consideration of the whole operon length (up to 17kb), compatibility and vector carrying capacity, we finally chose the vector pET-28a [5] as backbone. Accordingly, we put the mamAB operon into E.coli by the vector designed as followed:

Figure 5. Schematic of piGEM-AB construction.

Since the length of mamAB operon is up to 17kb, it is difficult to directly get its complete gene fragment. After studying the sequence, we divided mamAB operon into three parts which amplified from Magnetospirillum gryphiswaldense MSR-1 , and connected together by the following steps:

Figure 6. Schematic of the subclone method.

2. mamGFDC + mamXY + mms6

Previous study have shown that although the exact mechanism is not completely understood, these three operons are indispensable in modifying the formation of the magnetosome. Therefore, we built them on one vector to explore its practical effect modification [6] . Currently already known as following:

  • 1) mamGFDC

    Crystal size and shape are mainly regulated by proteins encoded in the mamGFDC operon (composed of the genes mamC, D, F, and G ) and its deletion also leads to a reduction of the size of the magnetite magnetosome crystals [6,7] .

  • 2) mamXY

    The mamXY operon encodes proteins related to the magnetosome membrane ( mamY, X, Z , and ftsZ -like genes) and its deletion causes cells of Magnetospirillum to produce smaller magnetite particles with superparamagnetic characteristics [8] .

  • 3) mms6

    The mms6 operon contains five genes ( mms6, mmsF, mgr4070, mgr4071 , and mgr4074 ) [9] that also appear to be involved in magnetite crystal shape and size.

We need co-transfer the three vectors into E. coli , so the vector we chose be able to co-transformation with the vector pET-28a and pACYCDuet-1 is pCDFDuet-1. The final design of vector is shown in the following figure:

Figure 7. Schematic of piGEM-G6X construction.

We decided to get two gene fragments mamXY and mamGFDC + mms6 from Magnetospirillum gryphiswaldense MSR-1 genome. We respectively designed the method of gene obtain shown in the following figure:

Figure 8 . Schematic of the piGEM-G6X construction method.

3. Connection magnetosome with Laccase

Meanwhile, in order to make Laccase enriched, we designed a recombinant vector to fuse express mamW and RFP with the laccase. The protein MamW, a magnetosome transmembrane protein, can connect Laccase and magnetosome. The RFP reporter can make the novel structure visible. So we designed the vector piGEM-WRL. As the vector will be co-transferred with another two vectors, we chose the pACYCDuet-1 as the backbone.

Figure 9. Schematic of piGEM-WRL construction. The protein MamW is a magnetosome transmembrane protein[10], mamW gene was amplified from the Magnetospirillum gryphiswaldense MSR-1

In a word, we wanted to fix Laccase on magnetosome membrane, and utilize the magnetotaxis of magnetosome to enrich Laccase on the cathode.

Reference

[1] Cosnier S, Holzinger M, Goff A L, et al. Recent advances in carbon nanotube-based enzymatic fuel cells.[J]. Frontiers in Bioengineering & Biotechnology, 2014, 2:45.

[2] Zhang P. Test method for the laccase activity with ABTS as the substrate[J]. Textile Auxiliaries, 2007.

[3] Lohsse A, Ullrich S, Katzmann E, et al. Functional Analysis of the Magnetosome Island in Magnetospirillum gryphiswaldense: The mamAB Operon Is Sufficient for Magnetite Biomineralization[J]. Plos One, 2011, 6(10):: e25561.

[4] Lohsse A, Ullrich S, Katzmann E, et al. Functional Analysis of the Magnetosome Island in Magnetospirillum gryphiswaldense: The mamAB Operon Is Sufficient for Magnetite Biomineralization[J]. Plos One, 2011, 6(10):: e25561.

[5] Lee H Y, Khosla C. Bioassay-Guided Evolution of Glycosylated Macrolide Antibiotics in Escherichia coli[J]. Plos Biology, 2007, 5(2):e45-e45.

[6] Araujo A C, Abreu F, Silva K T, et al. Magnetotactic Bacteria as Potential Sources of Bioproducts[J]. Marine Drugs, 2015, 13(1):389-430.

[7] André, Scheffel, Astrid, G?rdes, Karen, Grünberg, et al. The major magnetosome proteins MamGFDC are not essential for magnetite biomineralization in Magnetospirillum gryphiswaldense but regulate the size of magnetosome crystals.[J]. Journal of Bacteriology, 2008, 190(1):377-386.

[8] Ding Y, Li J, Liu J, et al. Deletion of the ftsZ-like gene results in the production of superparamagnetic magnetite magnetosomes in Magnetospirillum gryphiswaldense.[J]. Journal of Bacteriology, 2010, 192(4):1097-1105.

[9] Dorothée M, Anna Q, Hojatollah V, et al. Comprehensive genetic dissection of the magnetosome gene island reveals the step-wise assembly of a prokaryotic organelle[J]. Proceedings of the National Academy of Science, 2010, 107(12):5593-5598.

[10] Kolinko I; Lohße A; Borg S; Raschdorf O; Jogler C; Tu Q; Pósfai M; Tompa E; Plitzko JM; Brachmann A; Wanner G; Müller R; Zhang Y; Schüler D. Biosynthesis of magnetic nanostructures in a foreign organism by transfer of bacterial magnetosome gene clusters[J]. Nature Nanotechnology, 2014, 9(3):193-197.