Difference between revisions of "Part:BBa K2066114:Experience"

(Applications of BBa_K2066114)
(Applications of BBa_K2066114)
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We characterized this part using aTc induction, a constitutively expressed TetR (K2066022) on pSBIA3 and were able to get a stepwise function as shown below.   
 
We characterized this part using aTc induction, a constitutively expressed TetR (K2066022) on pSBIA3 and were able to get a stepwise function as shown below.   
  
<img/https://static.igem.org/mediawiki/parts/5/5e/William_and_Mary_52s_NRII_data.png>
+
https://static.igem.org/mediawiki/parts/5/5e/William_and_Mary_52s_NRII_data.png
  
 
We used a plate reader to find the absolute fluorescent measures over a gradient of induction. We are able to see four discrete steps allowing for control over a multistate output.   
 
We used a plate reader to find the absolute fluorescent measures over a gradient of induction. We are able to see four discrete steps allowing for control over a multistate output.   

Revision as of 01:50, 29 October 2016


This experience page is provided so that any user may enter their experience using this part.
Please enter how you used this part and how it worked out.

Applications of BBa_K2066114

We were able to sequence confirm this part and use it in conjugation with constitutively expressed TetR. We were able to replicate the original synthetic enhancer data when we used two circuits: Bba_K2066118 and Bba_K2066037.

We characterized this part using aTc induction, a constitutively expressed TetR (K2066022) on pSBIA3 and were able to get a stepwise function as shown below.

William_and_Mary_52s_NRII_data.png

We used a plate reader to find the absolute fluorescent measures over a gradient of induction. We are able to see four discrete steps allowing for control over a multistate output.

To read about how the synthetic enhancer works, please refer to: http://2016.igem.org/Team:William_and_Mary/Composite_Part

User Reviews

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