Difference between revisions of "Team:Hong Kong-CUHK/Description"
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<h5>Objective</h5> | <h5>Objective</h5> | ||
− | <p> | + | <p>In this project, we aim to utilize modified nitrogenase in <i>Azotobacter vinelandii</i> to convert carbon dioxide (CO<sub>2</sub>) to methane (CH<sub>4</sub>). It is hoped to produce a fuel while fixing carbon.</p> |
<h5>Background and Significance</h5> | <h5>Background and Significance</h5> | ||
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<h5>Why CH<sub>4</sub>?</h5> | <h5>Why CH<sub>4</sub>?</h5> | ||
− | <p>CH<sub>4</sub> produced can serve as a fuel and any CO<sub>2</sub> produced during the process can be returned to the system to CH<sub>4</sub> generation. Comparing to hydrogen (H<sub>2</sub>), a popular alternative energy source | + | <p>CH<sub>4</sub> produced can serve as a fuel, and any CO<sub>2</sub> produced during the process can be returned to the system to CH<sub>4</sub> generation. Comparing to hydrogen (H<sub>2</sub>), a popular alternative energy source because of its "cleanliness" after combustion, storage of CH<sub>4</sub> is cheaper than that of H<sub>2</sub> due to a lower boiling point from the perspective of fuel storage. Thus it requires less energy to liquefy. Our engineered bacteria would also be able to convert the greenhouse gas CO<sub>2</sub> into CH<sub>4</sub> in closed systems, which eliminates the disadvantage of using CH<sub>4</sub> as a fuel. Additionally, no change needed to be made on current car engines, which are designed to use of hydrocarbon fuels. </p> |
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Biomolecules, such as enzymes and antibodies, can be expressed on the magnetosome so that they can be easily controlled by magnet for specific purposes. </p> | Biomolecules, such as enzymes and antibodies, can be expressed on the magnetosome so that they can be easily controlled by magnet for specific purposes. </p> | ||
− | <p>Unfortunately, most of the magnetotactic bacteria require microaerobic conditions for magnetosome biogenesis, which is hard to maintain with normal lab equipment. We are transferring essential genes for magnetosome formation into <i>A. vinelandii</i>, a facultative aerobe with an intracellular anaerobic environment, in | + | <p>Unfortunately, most of the magnetotactic bacteria require microaerobic conditions for magnetosome biogenesis, which is hard to maintain with normal lab equipment. We are transferring essential genes for magnetosome formation into <i>A. vinelandii</i>, a facultative aerobe with an intracellular anaerobic environment, in hope of producing magnetic beads with functional biomolecules under aerobic conditions with greater yield. We are also modifying the transmembrane protein presented on magnetosome membrane by fusing with biomolecules. Reactions could be more accelerated as magnetites generated from magnetosome provides a greater surface area-to-volume ratio than that of artificial magnetic beads. </p> |
<h5>Applications</h5> | <h5>Applications</h5> | ||
− | <p>One of the applications is to use engineered magnetites to capture heavy metal ion in water. Heavy metal is one of the major components in marine pollution.Different kinds of heavy metal ions such as Pb, Cu and Ni are found in marine system. By expressing different heavy metal binding proteins onto magnetic beads, heavy metal ions could be captured and be easily removed by magnet. It is better than the previous methods, in terms of operating cost, efficiency and eco-friendliness. | + | <p>One of the applications is to use engineered magnetites to capture heavy metal ion in water. Heavy metal is one of the major components in marine pollution. Different kinds of heavy metal ions, such as Pb, Cu and Ni, are found in marine system. By expressing different heavy metal binding proteins onto magnetic beads, heavy metal ions could be captured and be easily removed by magnet. It is better than the previous methods, in terms of operating cost, efficiency and eco-friendliness. |
</p> | </p> | ||
<p>We are also adding antibodies on magnetosome for immunoprecipitation. Due to the smaller size of magnetosome than traditional magnetic beads, magnetosome with antibodies could have a higher binding efficiency. Also, the antibodies containing magnetic beads can be massively produced in bacteria.</p> | <p>We are also adding antibodies on magnetosome for immunoprecipitation. Due to the smaller size of magnetosome than traditional magnetic beads, magnetosome with antibodies could have a higher binding efficiency. Also, the antibodies containing magnetic beads can be massively produced in bacteria.</p> |
Revision as of 15:22, 15 July 2015