Team:HZAU-China/Achievements
From 2014.igem.org
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<h5>As for Best Model:</h5> | <h5>As for Best Model:</h5> | ||
- | <p class="highlighttext">Different from most modeling work in iGEM, we first described the biological | + | <p class="highlighttext">Different from most modeling work in iGEM, we first described the biological processes related to our project rather than list the equations used before directly. In this way, we made sense of the necessary preconditions we needed and it became easier to perform stochastic simulation. Before simulation, we incorporated useful information from wet lab to adjust some parameters and analyzed how some promoter properties would influence our devices. We revealed that the systems behaviors in the repressilator were closely related to the absolute promoter strength of the weakest promoter among the three genes. Many modeling approaches, including deterministic and stochastic simulations, phase analysis, parameter scanning, theoretical inference, were presented in our modeling part. Moreover, we introduced a novel design principle to help other researchers to finish their custom designs.</p> |
<h5>As for Best Policy & Practices Project:</h5> | <h5>As for Best Policy & Practices Project:</h5> | ||
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- | 1. Enhanced the iGEM community by initiating an iGEM consortium in central China, | + | 1. Enhanced the iGEM community by initiating an iGEM consortium in central China, held a nation-wide meetup, and collaborated with many other iGEM teams in various forms; |
</div> | </div> | ||
<div class="success"> | <div class="success"> | ||
- | 2. Increased | + | 2. Increased public awareness by online video, weekly campus seminars and youth educating; |
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- | 3. Designed the first ethical-analyzing paradigm in iGEM to help future iGEMers open up | + | 3. Designed the first ethical-analyzing paradigm in iGEM to help future iGEMers open up thinking; |
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<div class="success"> | <div class="success"> | ||
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- | 5. Analyzed the | + | 5. Analyzed the behaviours of stakeholders with economics theory and law for policy reference. |
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<ul> | <ul> | ||
- | <li class="address-icon">No.1, Shizishan Street, Hongshan District<br />Wuhan, Hubei | + | <li class="address-icon">No.1, Shizishan Street, Hongshan District<br />Wuhan, Hubei Provinc,e<br />430070, P.R.China</li> |
<li class="email-icon">Email : hzauigem@gmail.com</li> | <li class="email-icon">Email : hzauigem@gmail.com</li> | ||
</ul> | </ul> |
Latest revision as of 03:57, 18 October 2014
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Judgement
We apply for a Gold Medal, Best Information Processing Project, Best Model, Best Policy &Practices Project.
As for the Gold Medal
We have met these requirements below:
As for Best Information Processing Project:
Conventional engineered circuits in cells have only a simple regulatory network to process information. Once the environment changed, the approach to handle the information might be invalid. We adopted an elegant means of systems integration to make the cells have adaptability and work well in complex environments. Our engineered cells can process information according to the environment based on rewirable circuits; meanwhile our design overcame some common challenges in Synthetic Biology like host overload and crosstalk.
As for Best Model:
Different from most modeling work in iGEM, we first described the biological processes related to our project rather than list the equations used before directly. In this way, we made sense of the necessary preconditions we needed and it became easier to perform stochastic simulation. Before simulation, we incorporated useful information from wet lab to adjust some parameters and analyzed how some promoter properties would influence our devices. We revealed that the systems behaviors in the repressilator were closely related to the absolute promoter strength of the weakest promoter among the three genes. Many modeling approaches, including deterministic and stochastic simulations, phase analysis, parameter scanning, theoretical inference, were presented in our modeling part. Moreover, we introduced a novel design principle to help other researchers to finish their custom designs.