|
|
Line 46: |
Line 46: |
| <div class="col-lg-12"> | | <div class="col-lg-12"> |
| <h1 align="center">Solar Hunter in a Nutshell</h1> | | <h1 align="center">Solar Hunter in a Nutshell</h1> |
− | <h2>Solar Hunter is an artificial hydrogen production system comprising biofilm-anchored semiconductor nanorods (NRs) which efficiently convert photons to electrons, and engineered strain expressing [FeFe] hydrogenase that can efficiently catalyze Hydrogen production upon receiving the electrons donated by NRs. The success of this integrative hydrogen-producing system relies on robust construction and functional characterization of each part separately. We have proved that we successfully constructed and characterized our components, as revealed below. </h2> For the full demonstration of the system with all the components, please refer to <b><a href="https://2016.igem.org/wiki/index.php?title=Team:ShanghaitechChina/Demonstration">Demonstration of our Work</a></b> | + | <h3>Solar Hunter is an artificial hydrogen production system comprising biofilm-anchored semiconductor nanorods (NRs) which efficiently convert photons to electrons, and engineered strain expressing [FeFe] hydrogenase that can efficiently catalyze Hydrogen production upon receiving the electrons donated by NRs. The success of this integrative hydrogen-producing system relies on robust construction and functional characterization of each part separately. We have proved that we successfully constructed and characterized our components, as revealed below. </h3> For the full demonstration of the system with all the components, please refer to <b><a href="https://2016.igem.org/wiki/index.php?title=Team:ShanghaitechChina/Demonstration">Demonstration of our Work</a></b> |
| | | |
| </div> | | </div> |
Line 56: |
Line 56: |
| <div class="col-lg-12"> | | <div class="col-lg-12"> |
| <h1 align="center">Main points we achieved in our project</h1> | | <h1 align="center">Main points we achieved in our project</h1> |
− | <h2>1. Successful synthesis and characterization of CdS Nanorods.</h2><p></p> | + | <h3>1. Successful synthesis and characterization of CdS Nanorods.</h3><p></p> |
− | <h2>2. Successful production and characterization of engineered Biofilms, demonstrating that engineered biofilms composed of CsgA-Histag fused protein allowed firm binding of semiconductor nanomaterials. <b><a href="http://parts.igem.org/Part:BBa_K2132001">BioBrick BBa_K2132001</a></b> | + | <h3>2. Successful production and characterization of engineered Biofilms, demonstrating that engineered biofilms composed of CsgA-Histag fused protein allowed firm binding of semiconductor nanomaterials. <b><a href="http://parts.igem.org/Part:BBa_K2132001">BioBrick BBa_K2132001</a></b> |
− | <h2>3. Successful integration of [FeFe]-hydrogenase gene clusters from Clostridium acetobutylicum into one single plasmid to allow reliable expression.</h2><p></p> | + | <h3>3. Successful integration of [FeFe]-hydrogenase gene clusters from Clostridium acetobutylicum into one single plasmid to allow reliable expression.</h3><p></p> |
− | <h2>4. Successful hydrogen production with freely-flowing CdS Nanorods.</h2><p></p> | + | <h3>4. Successful hydrogen production with freely-flowing CdS Nanorods.</h3><p></p> |
| | | |
| </div> | | </div> |
Line 71: |
Line 71: |
| <h1 align="center">Detailed Proof</h1> | | <h1 align="center">Detailed Proof</h1> |
| | | |
− | <div id="CNanomaterial">
| |
− | <h2>a. We, first, need to obtain a suitable nanomaterial, CdS, that absorbs solar energy and convert it into electrons. The detailed synthesis and characterization data is shown in our webpage <b><a href="https://2016.igem.org/Team:ShanghaitechChina/Nanomaterials">Nanomaterials Session</a></b> for further information. Some key data are reproduced below. </h2>
| |
− | <p></p></div>
| |
| | | |
− | <p id="Synthesis and Characterization" ></p><p></p>
| |
− | </div>
| |
− | </div>
| |
− |
| |
− | </div>
| |
− |
| |
− | <div class="content">
| |
− | <div class="row">
| |
− | <div class="col-lg-12">
| |
− | <h1 align="center">Synthesis and Characterization</h1>
| |
− | </div>
| |
− | </div>
| |
− | <div>
| |
− | <p></p>
| |
− | <center><div><p></p>
| |
− | <img src="https://static.igem.org/mediawiki/2016/e/eb/T--ShanghaitechChina--fc.png" style="width:75%;">
| |
− | <figcaption >
| |
− |
| |
− |
| |
− |
| |
− | <h3 class="bg"><b>Results</b></h3>
| |
− | <p class="bg"><b>Synthesis and Characterization of CdS Nanorods</b></p><p>
| |
− | We synthesized CdS nanorods following a procedure adapted from a previously published protocol[1]. The synthesis procedure mainly contains two steps: synthesis of CdS seeds, followed by growth of CdS nanorods using CdS nanoparticles as nuclei. </p><p></p>
| |
− | <p></p>
| |
− | <center><div><p></p><img src="https://static.igem.org/mediawiki/2016/c/cf/T--ShanghaitechChina--CdS1.png" style="width:35%;"><figcaption >
| |
− | <p class="cap"><b>Figure 3.</b> Solutions of CdS nanoparticle seeds in TOP (left), CdS NRs in toluene (right)</p>
| |
− | </figcaption><p></p></div> </center>
| |
− | <p></p>
| |
− | <p>
| |
− | Characterization of UV-Vis was performed to calculate the concentration of CdS seed in TOP solution and CdS nanorod in toluene solution. Also, PL spectrum of CdS NRs in toluene was collected to investigate the emission attribute of the nanorod. TEM image of the nanorods was acquired to study the shape and size distribution. </p>
| |
− | <p></p>
| |
− | <center><div><p></p><img src="https://static.igem.org/mediawiki/2016/0/0c/T--ShanghaitechChina--Ligand_exchange.png" style="width:35%;"><figcaption >
| |
− | <p class="cap"><b>Figure 4.</b> Result of CdS NRs ligand exchange experiments. </p>
| |
− | </figcaption><p></p></div> </center>
| |
− |
| |
− | <p></p>
| |
− | <p>A ligand exchange experiment was performed and the result is shown in Figure 4</p>
| |
− | <p></p>
| |
− |
| |
− | <center><div><p></p><img src="https://static.igem.org/mediawiki/2016/3/32/T--ShanghaitechChina--CdS-Results.jpg" style="width:100%;"><figcaption >
| |
− | <p class="cap"><b>Figure 5.</b> UV-Vis spectra of CdS seeds in TOP (A) and CdS nanorods in toluene (B);. Photoluminescence Spectrum of CdS nanorods in toluene (C). </p>
| |
− | </figcaption><p></p></div> </center>
| |
− | <p></p>
| |
− | <p>The concentration of CdS seeds and CdS NR products were determined by using the UV-Vis spectrometer (Fig. 5 A, B). The peak shown in PL spectrum (Fig. 5 C) matches the absorption peak of the UV-Vis spectra, which thus proves the synthesis of CdS NRs.</p>
| |
− | <p></p>
| |
− | <p></p>
| |
− |
| |
− | <center><div><p></p><img src="https://static.igem.org/mediawiki/2016/1/18/T--ShanghaitechChina--TEM-image-CdS.jpg" style="width:75%;"><figcaption >
| |
− | <p class="cap"><b>Figure 6.</b> TEM images of CdS NRs (A) and size distribution of CdS NRs (B). Note: 100 NRs in total were measured to determine the size distribution. The NRs thus measured have an average diameter of 3.93±0.57nm and average length of 66.81±6.74nm.</p>
| |
− | </figcaption><p></p></div> </center>
| |
− | <p></p>
| |
− | <p>
| |
− | TEM confirms that synthesized products show nanorod feature, with an average diameter of 3.93±0.57nm and average length of 66.81±6.74nm.
| |
− | </p>
| |
| | | |
| <div id="CBiofilm"> | | <div id="CBiofilm"> |
− | <h2>b. To allow easy recycling of precious semiconductor nanomaterials, we utilized engineered biofilms to anchor nanomaterials via metal coordination chemistry. Please refer to <a href="https://2016.igem.org/Team:ShanghaitechChina/Biofilm"><b>Biofilm Session</b></a> for details of the successful construction and characterization of engineered biofilms that allow firm binding of nanomaterials. Key data are reproduced below. </h2><p></p></div> | + | <h3>b. To allow easy recycling of precious semiconductor nanomaterials, we utilized engineered biofilms to anchor nanomaterials via metal coordination chemistry. Please refer to <a href="https://2016.igem.org/Team:ShanghaitechChina/Biofilm"><b>Biofilm Session</b></a> for details of the successful construction and characterization of engineered biofilms that allow firm binding of nanomaterials. Key data are reproduced below. </h3><p></p></div> |
| <div id="CHydrogenase"> | | <div id="CHydrogenase"> |
| | | |
− | <h2> First, the simplest design, CsgA-HisTag.</h2> | + | <h4> First, the simplest design, CsgA-HisTag.</h4> |
| <h4 ><b>3.Quantum dots fluorescence test: successful binding test of Histag with nanomaterials (CdSeS/CdSe/ZnS core/shell quantum dots)</b></h4> | | <h4 ><b>3.Quantum dots fluorescence test: successful binding test of Histag with nanomaterials (CdSeS/CdSe/ZnS core/shell quantum dots)</b></h4> |
| <p></p> | | <p></p> |
Line 155: |
Line 98: |
| <p style="text-align:center"><b>Fig 7.</b>Representative TEM images of biotemplated CdS nanorods on CsgA-His. </p> | | <p style="text-align:center"><b>Fig 7.</b>Representative TEM images of biotemplated CdS nanorods on CsgA-His. </p> |
| | | |
− | <h2> Second, The complex design with extra function of binding SpyTag-linked enzymes in addition to its nanomaterial-binding through HisTag. This is realized with our Part BBa_K2132001 under the promoter of tetO. </h2> | + | <h4> Second, The complex design with extra function of binding SpyTag-linked enzymes in addition to its nanomaterial-binding through HisTag. This is realized with our Part BBa_K2132001 under the promoter of tetO. </h4> |
| | | |
| <h4><b>2. Quantum dots fluorescence test: successful binding test of Histag with nanomaterials</b></h4> | | <h4><b>2. Quantum dots fluorescence test: successful binding test of Histag with nanomaterials</b></h4> |
Line 189: |
Line 132: |
| </div> | | </div> |
| | | |
− | <h2>c. Finally, high-activity hydrogenase is necessary for our system. To achieve efficient enzymatic activities, we codon-optimized and constructed the whole hydrogenase gene clusters (from Clostridium Acetobutylicum) by leveraging the multi-expression Acembl System. Please refer to <b><a href="https://2016.igem.org/Team:ShanghaitechChina/Hydrogen">Hydrogenase Session</b></a> for more details. </h2><p></p> | + | <h3>c. Finally, high-activity hydrogenase is necessary for our system. To achieve efficient enzymatic activities, we codon-optimized and constructed the whole hydrogenase gene clusters (from Clostridium Acetobutylicum) by leveraging the multi-expression Acembl System. Please refer to <b><a href="https://2016.igem.org/Team:ShanghaitechChina/Hydrogen">Hydrogenase Session</b></a> for more details. </h3><p></p> |
| | | |
| <h3 id="AResults">Results</h3> | | <h3 id="AResults">Results</h3> |