Difference between revisions of "Team:Marburg/Model"

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<h2 class="subtitle">Culture Media</h2>
 
<h2 class="subtitle">Culture Media</h2>
 
Being in contact with the cyano-community, we soon realized that a culture medium in not a culture medium, even though one is speaking from the same medium. This is owed to the fact that different laboratories use different protocols when preparing them (see link to IHP). After gathering protocols, we decided on four promising ones and tested them we (figure 3). Off those four media, the one supporting rapid growth the best was BGM, which was adopted as the main growth medium and replaced BG11 (link to protocols). BGM conferred a twice as fast growth within 14h after inoculation to an optical density of around 10. During media preparation, all media were buffered to a neutral pH value of around 7. Measuring pH value after 840min of growth, a lower pH value could be linked to a lower growth rate/final optical density (table 1). In which way around pH value and growth effect each other could not be clarified.  
 
Being in contact with the cyano-community, we soon realized that a culture medium in not a culture medium, even though one is speaking from the same medium. This is owed to the fact that different laboratories use different protocols when preparing them (see link to IHP). After gathering protocols, we decided on four promising ones and tested them we (figure 3). Off those four media, the one supporting rapid growth the best was BGM, which was adopted as the main growth medium and replaced BG11 (link to protocols). BGM conferred a twice as fast growth within 14h after inoculation to an optical density of around 10. During media preparation, all media were buffered to a neutral pH value of around 7. Measuring pH value after 840min of growth, a lower pH value could be linked to a lower growth rate/final optical density (table 1). In which way around pH value and growth effect each other could not be clarified.  
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         <img style="float:center" src="https://static.igem.org/mediawiki/2019/3/32/T--Marburg--media_growth.png
 
         <img style="float:center" src="https://static.igem.org/mediawiki/2019/3/32/T--Marburg--media_growth.png
 
   " alt="HTML IST SCHEI?E" class="center">
 
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       </figure>
 
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       <caption>pH values of media after 14h/840min of growth. Media with a lower pH value seem to be connected to a lower growth rate.</caption>
 
       <caption>pH values of media after 14h/840min of growth. Media with a lower pH value seem to be connected to a lower growth rate.</caption>
 
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   <tr>

Revision as of 23:15, 21 October 2019

Modelling


This year we used our mathematical and programming background to look for artificial Neutral integration Site option (aNSo) and suitable terminators for our project. We took advantage of genome data bank of UTEX2973 and used bioinformatics tools to gain insights and implement it to our project. In addition to that, we designed a model to predict the doubling times of UTEX2973 that was only possible after a thorough investigation and standardization of the current state of the art methods. To achieve this level of standardization we also implemented a light model to properly predict light intensities for our cultures.


Growth Curve Model


artificial Neutral integration Site options


Terminator Model