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<a href="#Engineered Biofilm Device">Engineered Biofilm Device</a> | <a href="#Engineered Biofilm Device">Engineered Biofilm Device</a> | ||
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<h1 align="center">Solar Hunter in a Nutshell</h1> | <h1 align="center">Solar Hunter in a Nutshell</h1> | ||
− | Solar Hunter is an artificial hydrogen-producing 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. 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> | + | Solar Hunter is an artificial hydrogen-producing 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. In total, we have constructed 4 devices and will introduce them one by one in this session. <p></p> |
+ | 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> | ||
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− | <h1 align="center">Major Achievements in Construction of Our | + | <h1 align="center">Major Achievements in Construction of Our Devices</h1> |
− | 1. Successful production and characterization of engineered biofilms | + | 1. Successful production and characterization of engineered biofilms; Successful demonstration that engineered biofilms composed of CsgA-histagged fusion protein allowed firm binding of semiconductor nanomaterials. <p></p> We constructed two major devices in this sub-project and tested their functions:<p></p> |
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<ul> | <ul> | ||
− | <li>CsgA-Histag</li> | + | <li>Device 1: CsgA-Histag</li> |
− | <li>His-CsgA-SpyCatcher-Histag: <a href="http://parts.igem.org/Part:BBa_K2132001">BioBrick BBa_K2132001</a></li> | + | <li>Device 2: His-CsgA-SpyCatcher-Histag: <a href="http://parts.igem.org/Part:BBa_K2132001">BioBrick BBa_K2132001</a></li> |
</ul> | </ul> | ||
− | Please refer to <a href="https://2016.igem.org/Team:ShanghaitechChina/Biofilm"><b>Engineered Biofilms</b></a> | + | We will briefly demonstrate the successfulness of two devices below. For more detailed information about these devices, Please refer to <a href="https://2016.igem.org/Team:ShanghaitechChina/Biofilm"><b>Engineered Biofilms</b></a> |
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<p></p> | <p></p> | ||
− | 2. | + | 2. Successful construction of hydrogenase gene clusters in one plasmid based upon based on Acembl system, as confirmed by gene sequence and successful protein expression revealed by SDS and Western Blot. This device is named Device 3. <p></p> Please refer to <b><a href="https://2016.igem.org/Team:ShanghaitechChina/Hydrogen">Hydrogenase Session</a></b> for more details. </p> |
− | 3. | + | 3. Successful demonstration of normal catalytic properties of hydrogenates using freely-flowing CdS Nanorods. This make device 4. <p></p> |
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Revision as of 18:48, 19 October 2016