Design our circuit
1. Setting up the interested research field: After logging in, we set up our interest. Because we were curious about UV detection, we chose DETECTION.
2. Browsing on S-Din: When surfing on S-Din, we found UV detection to be a hot area. Annual projects statistics is on the right side.
3. Searching the previous project: Standing on the shoulders of giants, we wondered what ideas our predecessors could give us. We searched for ‘UV detection'. With data analysis and score, we found ETH_Zurich 2012 and marked it.
4. Intelligent recommendation: Based on the database, S-Din recommended us to use a device from Colombia 2014. After browsing its information, we decided to accept the suggestion from S-Din.
5. Editing the circuit: We deleted some extra parts of the ETH_Zurich device because we decided to use only the UV sensor. The surveillance system showed that the safety level of our circuit is low risk (Upper right corner).
6. Simulation:We ran the mathematical models in our software. Picture.1 shows the result.
Picture 1. Our software’s simulation of AmilCP
Parameter explaination
$$\frac{\text{d}\,\text{[UVR8-TetR]}}{\text{d}\,t}=\alpha_1\frac{\text{[UVR8-TetR]}}{1+\text{[UV]}^k}-d_1\text{[UVR8-TetR]}$$
$$\frac{\text{d}\,\text{[Blue]}}{\text{d}\,t}=\beta_1{\frac{\text{[amilcp]}}{1+\text{[UVB-TetR]}^{a_1}}}\cdot\frac{1}{1+(\frac{h_1}{\text{[PSP]}})^{a_2}}-\text{d}_2\text{[Blue]}$$
$$\frac{\text{d}\,\text{[PsP3]}}{\text{d}\,t}=\gamma_1{\frac{\text{[PsP3]}}{1+\text{[UVB-TetR]}^{a_1}}}\cdot\frac{1}{1+(\frac{h_1}{\text{[PSP]}})^{a_2}}-\text{d}_3\text{[PsP3]}$$
7. The plasmid design: After finishing our design, we clicked on the bottom, then the shape of our plasmid came out. So we had a system that will produce AmilCP, a kind of blue protein when it detects UV.