Difference between revisions of "Team:Tianjin/Design"

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   <h3>Overview</h3>
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<p>This idea was inspired by the naturally-occurring metal-ion-induced promoters. Ligating this kind of promoters with a reporter gene such as RFP is a common idea to visibly monitor the concentration of metal ions.</p>
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<p>In <i>Saccharomyces cerevisiae S288C</i>, there naturally exists a copper-induced promoter – <i>CUP1p</i>. The <i>CUP1</i> promoter is activated by <i>ACE1</i>, a transcription factor which binds to copper ions. It is previously available as a standalone part as <a href="http://parts.igem.org/Part:BBa_K945002">BBa_K945002</a>, produced by Tec-Monterrery’s 2012 iGEM team, and team iGEM16_Washington modified this part with illegal restriction sites removed to make this part (<a href="http://parts.igem.org/Part:BBa_K2165004">BBa_K2165004</a>) easier to control and operate.
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Our goal is to more perfectly characterize this promoter and improve it to create some handy parts.
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<h3>Improvement</h3>
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<p>The characterization of this promoter wasn’t perfectly completed, so we first construct a biosensor based on CUP1 promoter (<a href="http://parts.igem.org/Part:BBa_K2165004">BBa_K2165004</a>) and yEmRFP (<a href="http://parts.igem.org/Part:BBa_K2407012">BBa_K2407012</a>) to improve the characterization and function of this BioBrick.</p>
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<p>To improve this promoter, we first want to shorten this promoter with all core sequence retained. Compared with other promoters used in prokaryote, this promoter is much longer, which is not beneficial for BioBricks to easily assembly. Under this condition, we want to shorten its sequence as much as possible without functional changes.</p>
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<p>In fact, this promoter is leaky in the absence of inducer. To make it more sensitive and lower the threshold of expression, we chose to transform the promoter with error-prone PCR. After finishing the library, the sensitivity and response rages of engineered promoters will be characterized by the fluorescence intensity.</p>
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<p>After the detection, we will use Mating Switcher to rapidly open following gene’s expression. We can either overexpress <i>CUP1</i> to enrich copper in the yeast cell or display the Metallothionein on the surface of budding yeast.</p>
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Revision as of 10:04, 29 October 2017

/* OVERRIDE IGEM SETTINGS */

Design


Background

Human existence on earth is almost impossible without the heavy metals. Even though important to mankind, exposure to them during production, usage and their uncontrolled discharge in to the environment has caused lots of hazards to man, other organisms and the environment itself. Heavy metals can enter human tissues and organs via inhalation, diet, and manual handling. As the process of urbanization and industrialization goes deeper and deeper, heavy metal pollution, a noticeable threaten to almost all the creatures, has become an essential problem to solve.

According to our human practice, the situation of heavy metal pollution (copper and cadmium ions) is marked on a world map, and the severity of heavy metal pollution has been increasing all over this map. Places with serious pollution includes middle Asia, eastern Asia, southern Europe, and Latin America. In addition, not only fresh water sources, but also soil and crops are seriously contaminated by heavy metals. On average, during three out of ten suppers we have, we absorb excess heavy metals over the standard concentration.

Considering the rigorous situation we face, our team decided to design an advanced system for typical toxic heavy metal disposal based on Saccharomyces cerevisiae.