Team:UC Chile2/Cyanolux/Project

From 2012.igem.org

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<p>Furthermore, the characterization of this chassis is a fundamental step to explore new systems with minimal inputs to replace <i>E. coli</i>, for example, in the biotechnological industry in order to achieve greener processes.</p>
<p>Furthermore, the characterization of this chassis is a fundamental step to explore new systems with minimal inputs to replace <i>E. coli</i>, for example, in the biotechnological industry in order to achieve greener processes.</p>
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<h1>Fundamentation</h1>
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<h1>Rationale</h1>
<h2>Synechocystis PCC 6803</h2>
<h2>Synechocystis PCC 6803</h2>
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evolve oxygenic photosynthesis about 2.4 billion years ago [[#1|1]]. Although this biochemical breakthrough can’t
evolve oxygenic photosynthesis about 2.4 billion years ago [[#1|1]]. Although this biochemical breakthrough can’t
be understated, several cyanobacteria species also play a crucial role in the planet nitrogen cycle as marine
be understated, several cyanobacteria species also play a crucial role in the planet nitrogen cycle as marine
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diazotrophs [[#2|2]]. They are found almost in every environment in earth´s surface and interestingly, they
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diazotrophs [[#2|2]]. Cyanobacteria are found almost in every environment in earth´s surface and interestingly, they
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are the only prokaryote known to have circadian rhythms, probably accounting for their photosyntethic
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are one of the few prokaryotes known to have circadian rhythms accounting for their photosyntethic
lifestyle [[#3|3]].</p>
lifestyle [[#3|3]].</p>
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Revision as of 21:02, 24 September 2012

Project: Luxilla - Pontificia Universidad Católica de Chile, iGEM 2012