LechenQian (Talk | contribs) (Undo revision 375546 by LechenQian (talk)) |
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<h1 align="center">Connection to Project</h1> | <h1 align="center">Connection to Project</h1> | ||
<p></p> | <p></p> | ||
− | Biofilms function as a platform to sustain the whole system in vitro. Biofilm-anchored nanorods can efficiently convert photons to electrons, which transfer to engineered strain producing FeFe hydrogenase gene cluster, thereby achieving high-efficiency in biohydrogen production. In addition, a brilliant traits, the intrinsic adherence of biofilms towards various interfaces, allows us to grow biofilms on easy-separation micro-beads. Based on those merits, biofilm stand out by facilitating recyclable usage of the biofilm-anchored NRs and endowing this whole system with recyclability. <p></p> | + | Biofilms function as a platform to sustain the whole system in vitro. Biofilm-anchored nanorods can efficiently convert photons to electrons, which transfer to engineered strain producing FeFe hydrogenase gene cluster, thereby achieving high-efficiency in biohydrogen production. In addition, a brilliant traits, the intrinsic adherence of biofilms towards various interfaces, allows us to grow biofilms on easy-separation micro-beads. Based on those merits, biofilm stand out by facilitating recyclable usage of the biofilm-anchored NRs and endowing this whole system with recyclability. <p></p><p></p> |
</div> | </div> | ||
<div class="col-lg-12"> | <div class="col-lg-12"> | ||
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<h1 align="center">Introduction</h1> | <h1 align="center">Introduction</h1> | ||
</div> | </div> | ||
− | <div class="col-lg-12"> | + | <div class="col-lg-12"><p></p> |
Biofilms are ubiquitous as they can be found both in human and some extreme environments. They can be formed on inert surfaces of devices and equipment, which will be hard to clean and cause dysfunction of the device. | Biofilms are ubiquitous as they can be found both in human and some extreme environments. They can be formed on inert surfaces of devices and equipment, which will be hard to clean and cause dysfunction of the device. | ||
<p></p> | <p></p> | ||
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<p></p> | <p></p> | ||
<center> | <center> | ||
− | <img src=" https://static.igem.org/mediawiki/parts/e/e3/Shanghaitechchina_biofilm1.png" width=" | + | <img src=" https://static.igem.org/mediawiki/parts/e/e3/Shanghaitechchina_biofilm1.png" width="40%"> |
</center> | </center> | ||
<p></p><p></p> | <p></p><p></p> | ||
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</div> | </div> | ||
<div class="col-lg-12"> | <div class="col-lg-12"> | ||
+ | <p></p> | ||
For the reasons above, biofilms become our best candidate to engineer and would be equipped with some additional functions we want. Here, we conceive the semiconductor-enzyme system linked to the E.Coli’s biofilm, whose subunits are engineered respectively with PolyHistidine tags and SpyTag and SpyCatcher system from FbaB protein to provide binding sites for inorganic nanomaterials and enzymes. <p></p> | For the reasons above, biofilms become our best candidate to engineer and would be equipped with some additional functions we want. Here, we conceive the semiconductor-enzyme system linked to the E.Coli’s biofilm, whose subunits are engineered respectively with PolyHistidine tags and SpyTag and SpyCatcher system from FbaB protein to provide binding sites for inorganic nanomaterials and enzymes. <p></p> | ||
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<p></p> | <p></p> | ||
We envision two application system to utilize the biofilm display to establish the whole biohydrogen platform:<p></p> | We envision two application system to utilize the biofilm display to establish the whole biohydrogen platform:<p></p> | ||
− | <h4><b>Plan 1. Strains secrected CsgA-his or His-CsgA-SpyCatcher-(Histag) biofilms for binding nanorods + Strain producing hydrogenase HydA</b></h4> | + | <h4><b>Plan 1. Strains secrected CsgA-his or His-CsgA-SpyCatcher-(Histag) biofilms for binding nanorods + Strain producing hydrogenase HydA</b></h4><p></p> |
− | <h4><b> | + | <h4><b>Device: CsgA-Histag/His-CsgA-SpyCatcher-(Histag)</b></h4> |
We learned that inorganic nanomaterials can template on biofilm by utilizing Co/Ni-NTA- -Histag coordination bond. Therefore, we want leverage synthetic biological engineering to program CsgA biofilm from E.coli with Histag to endow its capability to bind with nanomaterials (i.e. quantum dots, nanorods), form a bio-abiotic interface platform and produce electrons. Through this approach, we want to realize producing hydrogen by attach nanorods onto biofilms. The electrons from nanorods excited by sunlight can transfer into engineered hydrogenase-producing strain through mediator solution and accepted by hydrogenases which are not secreted. Since anaerobic hydrogenase will not be exposed to oxygen directly in this way, we view it as a practical and promising way to conduct in lab and consequently realize biohydrogen. <p></p> | We learned that inorganic nanomaterials can template on biofilm by utilizing Co/Ni-NTA- -Histag coordination bond. Therefore, we want leverage synthetic biological engineering to program CsgA biofilm from E.coli with Histag to endow its capability to bind with nanomaterials (i.e. quantum dots, nanorods), form a bio-abiotic interface platform and produce electrons. Through this approach, we want to realize producing hydrogen by attach nanorods onto biofilms. The electrons from nanorods excited by sunlight can transfer into engineered hydrogenase-producing strain through mediator solution and accepted by hydrogenases which are not secreted. Since anaerobic hydrogenase will not be exposed to oxygen directly in this way, we view it as a practical and promising way to conduct in lab and consequently realize biohydrogen. <p></p> | ||
<center> | <center> | ||
− | <img src="https://static.igem.org/mediawiki/parts/7/78/Shanghaitechchina_plan_1_biofilm.png" width=" | + | <img src="https://static.igem.org/mediawiki/parts/7/78/Shanghaitechchina_plan_1_biofilm.png" width="65%"> |
</center> | </center> | ||
<h4><b>Plan 2. Strain secreted His-CsgA-Spycatcher-(Histag) biofilms for binding nanorods + purified hydrogenase HydA-SpyTag</b></h4> | <h4><b>Plan 2. Strain secreted His-CsgA-Spycatcher-(Histag) biofilms for binding nanorods + purified hydrogenase HydA-SpyTag</b></h4> | ||
− | <h4><b> | + | <h4><b>Device: His-CsgA-SpyCatcher-(Histag)</b></h4> |
Based on this concept, we want to construct a catalytic system outside cells. After extracted and purified from strain which produce hydrogenase, the HydA-Spytag engineered enzyme could covalently bind with SpyCatcher protein on the Strain secrected His-CsgA-Spycatcher-(Histag) biofilms. At the meanwhile, nanorods are firmly attach to biofilm as well for there are histags on biofilm subunits. Electrons from nanorods excited by light thus transfer directly to purified HydA due to short spacial distance and achieve hydrogen production in vitro.<p></p> | Based on this concept, we want to construct a catalytic system outside cells. After extracted and purified from strain which produce hydrogenase, the HydA-Spytag engineered enzyme could covalently bind with SpyCatcher protein on the Strain secrected His-CsgA-Spycatcher-(Histag) biofilms. At the meanwhile, nanorods are firmly attach to biofilm as well for there are histags on biofilm subunits. Electrons from nanorods excited by light thus transfer directly to purified HydA due to short spacial distance and achieve hydrogen production in vitro.<p></p> | ||
Our ultimate goal is to harness this bio-abiotic hybrid system to efficiently convert solar energy into alternative energy or other high value-added industrial products.<p></p> | Our ultimate goal is to harness this bio-abiotic hybrid system to efficiently convert solar energy into alternative energy or other high value-added industrial products.<p></p> | ||
<center> | <center> | ||
− | <img src="https://static.igem.org/mediawiki/parts/a/a5/Shanghaitechchina_plan_2_biofilm.png" width=" | + | <img src="https://static.igem.org/mediawiki/parts/a/a5/Shanghaitechchina_plan_2_biofilm.png" width="65%"> |
</center> | </center> | ||
</div> | </div> | ||
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</div> | </div> | ||
<div class="col-lg-12"> | <div class="col-lg-12"> | ||
− | We tested and proved that all the | + | We tested and proved that all the device we constructed work well:<p></p> |
− | 1. Strains with engineered CsgA subunits : | + | 1. Strains with engineered CsgA subunits :<p></p> |
− | 1) CsgA-Histag 2) His-CsgA-SpyCatcher-Histag 3) His-CsgA-SpyCatcher | + | 1) CsgA-Histag 2) His-CsgA-SpyCatcher-Histag 3) His-CsgA-SpyCatcher |
can successfully expressed, secreted and realized self-assembly extracellularly.<p></p> | can successfully expressed, secreted and realized self-assembly extracellularly.<p></p> | ||
2. Small peptide histag on CsgA subunits can function well and attach to the ligands on nanorods and quantum dots.<p></p> | 2. Small peptide histag on CsgA subunits can function well and attach to the ligands on nanorods and quantum dots.<p></p> | ||
− | 3. Large protein SpyCatcher on CsgA subunits are also able to be secreted by transporter machinery and successfully | + | 3. Large protein SpyCatcher on CsgA subunits are also able to be secreted by transporter machinery and successfully from nanofibers. We also prove the biological function of SpyCatcher after appending on CsgA subunits, thus provide potential for our second plan mentioned above. |
</div> | </div> | ||
Revision as of 13:23, 19 October 2016