Tristable

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'''Click on the title to learn more about each section.'''
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=[[/Intro to Tristable | Tri-Stable Toggle Switch]]=
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[[Image:Tristable_Toggle_Switch_2007.jpg|thumb|right]]A trinary memory unit. A genetic circuit. A proof of concept.  Here is the man-made architecture of the switch and the natural context of our parts.
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=[[/Modeling | Tri-Stable Model]]=
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[[Image:beta values.png|thumb|right]]While Gardner et al created a mathematical model and a genetic switch in the Bistable paper, one was not used to design and improve upon the other.  Here we extend our model to the Tristable system and discuss what certain parameters mean in terms of DNA and Proteins, Production, Repression, etc.
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=[[/Testing Constructs | Testing Constructs]]=
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[[Image:betaTest.png|thumb|right]]The dirty side of the switch.  Testing constructs that will enable us to determine our constants in absolute terms and apply a mathematical basis to changes we make on the Tri-Stable Switch architecture.
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=[[/Appendix | Appendix]]=
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More information about where we are going and where we have been.
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=Tri-stable Toggle Switch=
=Tri-stable Toggle Switch=
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The purpose of the Tri-stable Toggle Switch is to produce three distinct and stable outputs in response to three distinct inputs.  These three inputs are three separate chemicals which will each induce one state of the switch.  [[Image:Tristable_Toggle_Switch_2007.jpg|thumb|left|The Tri-stable Toggle Switch Architecture]] In order to achieve this goal, we are constructing three constructs, each of which consists of a repressible, constitutively-on promoter attached to two repressors. Specifically, our three constructs are:  
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The Tri-Stable switch three distinct and stable outputs in response to three distinct inputs.  These three inputs are three separate chemicals which will each induce one state of the switch.  [[Image:Tristable_Toggle_Switch_2007.jpg|thumb|left|The Tri-stable Toggle Switch Architecture]] In order to achieve this goal, we are constructing three constructs, each of which consists of a repressible, constitutively-on promoter attached to two repressors. Specifically, our three constructs are:  
pBAD->LacI->TetR,  
pBAD->LacI->TetR,  
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==Cooperativity of Repression==
==Cooperativity of Repression==
The cooperativity describes an inherent characteristic of a repressor's repression.  In our system we want to know how [[Image:betaTest.png|thumb|left|The Beta test Architecture]]much increased repressor concentration will increase repression.  In our model, cooperativity is an exponent, beta, so that the repressor concentration is raised to the beta ([repressor]^beta = total repression).  For beta = 1, repression increases linearly with repressor concentration.  With twice as much repressor there is twice the repression.  For beta = 2, repression increases with the square of the concetration.  Twce as much repressor leads to four times the repression.  Our model predicts that our system will be more robust with greater alpha values and the tri stable region (in the graph) will be larger.  Beta must be larger than one for the system to be stable.   
The cooperativity describes an inherent characteristic of a repressor's repression.  In our system we want to know how [[Image:betaTest.png|thumb|left|The Beta test Architecture]]much increased repressor concentration will increase repression.  In our model, cooperativity is an exponent, beta, so that the repressor concentration is raised to the beta ([repressor]^beta = total repression).  For beta = 1, repression increases linearly with repressor concentration.  With twice as much repressor there is twice the repression.  For beta = 2, repression increases with the square of the concetration.  Twce as much repressor leads to four times the repression.  Our model predicts that our system will be more robust with greater alpha values and the tri stable region (in the graph) will be larger.  Beta must be larger than one for the system to be stable.   
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==Ligand Concentration==
==Ligand Concentration==
Naturally, we don't want to add more ligand than we need.  In what ever application the project might find, if we wanted to change the state again by adding a different [[Image:ligandTest.png|thumb|left|The Ligand test Architecture]]ligand, we wouldn't want excessive amounts of the first ligand floating around.
Naturally, we don't want to add more ligand than we need.  In what ever application the project might find, if we wanted to change the state again by adding a different [[Image:ligandTest.png|thumb|left|The Ligand test Architecture]]ligand, we wouldn't want excessive amounts of the first ligand floating around.
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[[Media:emailwithPatrickKing.txt]]
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Latest revision as of 22:38, 25 October 2007

Brown University
Home Lead Sensor Tristable Switch Community Supplemental About us


Click on the title to learn more about each section.


Tri-Stable Toggle Switch

Tristable Toggle Switch 2007.jpg
A trinary memory unit. A genetic circuit. A proof of concept. Here is the man-made architecture of the switch and the natural context of our parts.






Tri-Stable Model

Beta values.png
While Gardner et al created a mathematical model and a genetic switch in the Bistable paper, one was not used to design and improve upon the other. Here we extend our model to the Tristable system and discuss what certain parameters mean in terms of DNA and Proteins, Production, Repression, etc.





Testing Constructs

BetaTest.png
The dirty side of the switch. Testing constructs that will enable us to determine our constants in absolute terms and apply a mathematical basis to changes we make on the Tri-Stable Switch architecture.






Appendix

More information about where we are going and where we have been.