Team:USTC Software/Why
From 2009.igem.org
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Another unavoidable challenge is to fill the gap between computational design and experiment operation in lab. Is it possible to guarantee our design solution biologically significant? Is it possible to propose several “strong” examples to illustrate efficiency and truthiness of our idea? | Another unavoidable challenge is to fill the gap between computational design and experiment operation in lab. Is it possible to guarantee our design solution biologically significant? Is it possible to propose several “strong” examples to illustrate efficiency and truthiness of our idea? | ||
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Here, we make best endeavor to challenge these seemingly impossibilities and make them possible. We hope our software to be cradle where amazing happens. However, it’s of little significance to say whose work is more important in computational synthetic biology design. Instead, a vast of collaboration is needed between these computational scientists accompanied with traditional biologists and engineers. As we described in our flowcharts, ABCs of ABCD, relevant tools are strongly needed to cope with difficulties we meet separately. | Here, we make best endeavor to challenge these seemingly impossibilities and make them possible. We hope our software to be cradle where amazing happens. However, it’s of little significance to say whose work is more important in computational synthetic biology design. Instead, a vast of collaboration is needed between these computational scientists accompanied with traditional biologists and engineers. As we described in our flowcharts, ABCs of ABCD, relevant tools are strongly needed to cope with difficulties we meet separately. | ||
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+ | [[Image:Computational_Software.png|right|580px|thumb|Computational_Software (Figure reproduced from [http://www.nature.com/nrm/journal/v10/n6/abs/nrm2698.html ''The second wave of synthetic biology: from modules to systems''])]] | ||
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Revision as of 13:10, 20 October 2009
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