Genetic Toggle Switch construction and modeling. Toggle switch design.

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Genetic Toggle Switch construction and modeling

Transcript of Genetic Toggle Switch construction and modeling. Toggle switch design.

Page 1: Genetic Toggle Switch construction and modeling. Toggle switch design.

Genetic Toggle Switchconstruction and modeling

Page 2: Genetic Toggle Switch construction and modeling. Toggle switch design.

Toggle switch designToggle switch design

Page 3: Genetic Toggle Switch construction and modeling. Toggle switch design.

How it works?How it works?

X X

State 0

Page 4: Genetic Toggle Switch construction and modeling. Toggle switch design.

How it works?How it works?

Switching from state 0 to 1 : applying the inducer 2

Page 5: Genetic Toggle Switch construction and modeling. Toggle switch design.

How it works?How it works?

X

State 1

To switch back to state 0…

Page 6: Genetic Toggle Switch construction and modeling. Toggle switch design.

Gene CloningGene Cloning

Page 7: Genetic Toggle Switch construction and modeling. Toggle switch design.

Toggle switch plasmidToggle switch plasmid

How to select promoters?

Page 8: Genetic Toggle Switch construction and modeling. Toggle switch design.

Model - EquationsModel - Equations

x – concentration of repressor 1y – concentration of repressor 21,2 – effective rate of synthesis of x,y, – cooperativity of repression from promoter 1,2€

dx

dt=α 1

1+ y β− x

dy

dt=α 2

1+ xγ− y

Page 9: Genetic Toggle Switch construction and modeling. Toggle switch design.

ResultsResults

Parameters

1=2=100==2 (

• three steady states; one unstable, two stable – bistability

• in the case of there is one stable

steady state

Nullclines

x

yunstable

steady state

stablesteady state

(Low)

stablesteady state

(High)

Page 10: Genetic Toggle Switch construction and modeling. Toggle switch design.

ResultsResults

Bistability requires:

• 1, 2 do not differ greatly

• , are not drastically different

• how “drastic” difference of 1 vs. 2 is tolerated depends on the magnitude of and

Bifurcation diagram

Page 11: Genetic Toggle Switch construction and modeling. Toggle switch design.

Estimation of 1 and 2Estimation of 1 and 2

Recombinant promoters used:

• PL-s1con>Ptrc-2>PLtetO-1

Mutant RBS sequences (SD):

• A>B>C>D>E>F>G

Overall synthesis strength is P+RBS

• steady state GFP levels measuredthrough fluorescence

Page 12: Genetic Toggle Switch construction and modeling. Toggle switch design.

Bistable constructsBistable constructs

construct P1 RBS1

pTAK117 PLs1con D

pTAK130 PLs1con G

pTAK131 PLs1con F

pTAK132 PLs1con H

pIKE107 PLtetO-1 C

R1 is cIts for pTAK series tetR for pIKE series

Page 13: Genetic Toggle Switch construction and modeling. Toggle switch design.

Demonstration of bistabilityDemonstration of bistability

Page 14: Genetic Toggle Switch construction and modeling. Toggle switch design.

Model predictions - tresholdModel predictions - treshold

pTAK117

1=156.25

2=15.6=2.5=1=2.0015K=2.9818E-5

3.92323e-5

LocBif/WinPP

x ⇒x

1+[IPTG]

K

⎝ ⎜

⎠ ⎟μ

Page 15: Genetic Toggle Switch construction and modeling. Toggle switch design.

Genetic circuit analysis and engineeringGenetic circuit analysis and engineering

analyzing existing genetic circuits

construction of new genetic circuits

MODELING

Page 16: Genetic Toggle Switch construction and modeling. Toggle switch design.

ReferencesReferences

Gardner TS, Cantor CR, Collins JJ (2000) Construction of a genetic toggle switch in Escherichia coli. Nature 403:339-342

Yagil G, Yagil E (1971) On the relation between effector concentration and the rate of induced enzyme synthesis. Biophys J 11:11-27

WINPP and LOCBIF http://www.math.pitt.edu/~bard/classes/wppdoc/readme.htm