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Positive Feedback and Bistability BIOE 423: 2013

Positive Feedback and Bistability

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Positive Feedback and Bistability. BIOE 423: 2013. Stable state. Transient state. Stable state. Simulation of biochemical network. Stable steady state. Multiple stable states. Different starting points lead to different steady states. Positive Feedback. v1 = ? v2 = ? dS/dt = ?. v2. - PowerPoint PPT Presentation

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Page 1: Positive Feedback and Bistability

Positive Feedback and Bistability

BIOE 423: 2013

Page 2: Positive Feedback and Bistability

Stable state

0 2 4 6 8 10

1.0

1.5

2.0

t

[s]

Simulation of biochemical network

Stable steady state

Transient state Stable state

0 10 20 30 40

0.5

1.0

1.5

2.0

2.5

3.0

t

[s]

Page 3: Positive Feedback and Bistability

Multiple stable states

0 10 20 30 40 50

68

1012

t

[s]

0 10 20 30 40 50

68

1012

t

[s]

Different starting points lead to different steady states

Page 4: Positive Feedback and Bistability

Positive Feedback

v1 = ?

v2 = ?

dS/dt = ?v1

v2

Page 5: Positive Feedback and Bistability

Positive Feedback

p = defn cell $Xo -> S1; 0.5 + Vmax*S1^n/(15 + S1^n); S1 -> $X1; k1*S1;end;p.Xo = 1;p.X1 = 0;p.S1 = 1;p.n = 4;p.Vmax = 10;p.k1 = 2;

5

Page 6: Positive Feedback and Bistability

Positive Feedback

Time

S1

High State

Low State

6

Page 7: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

Perturbations around a stable point

Page 8: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

Perturbations around a stable point

S1

Page 9: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

v2 > v1

Perturbations around a stable point

S1

Page 10: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

v2 > v1

Therefore: dS1/dt is negative

Perturbations around a stable point

S1

Page 11: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

Perturbations around a unstable point

S1

Page 12: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

v1 > v2

Perturbations around a unstable point

S1

Page 13: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

Therefore: dS1/dt is positive

Perturbations around a unstable point

v1 > v2 S1

Page 14: Positive Feedback and Bistability

Positive Feedback

S1

0

2

4

6

8

10

12

14

16

0 1 2 3 4 5 6

k1

v2

v1

v1 v2

Therefore: dS1/dt is positive

Perturbations around a unstable point

v1 > v2 S1

Page 15: Positive Feedback and Bistability

Where in nature do we find multiple steady states?

http://weirdscience.ca/2007/ www.phri.org/research/res_pidubnau.asp

Eukaryotic cell differentiation Bacterial differentiation and adaptation

Page 16: Positive Feedback and Bistability

Bistability of the lac operon

Where is the positive feedback?

Page 17: Positive Feedback and Bistability

Genetic Toggle Switch

Where is the positive feedback?

dA/dt = ?

dB/dt = ?

Gardner, T. S. Cantor, C. R. Collins, J. J. Construction of a genetic toggle switch in Escherichia coli. Nature (2000) 6767, pages 339-342

Synthetic toggle switch has been built using lacI and tetR repressors.

Page 18: Positive Feedback and Bistability

Flip-Flop (Latch)

A B

1 0 1 0

0 0 1 0

0 1 0 1

0 0 0 1

1 1 ? ?

Flip-flops can be made either from NAND or NOR gates.In synthetic biology it is probably easier to constructOR like gates than AND gates.

In addition an OR based flip-flop is quiescent when both inputs are low, meaning low protein levels. Latching occurswhen one or other of the inputs is brought to a high state. 18

Page 19: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

Making NOR gates is ‘relatively’ easy and requires only two operator sitesdownstream of the RNA polymerase binding site (promoter).

19

Page 20: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

20

Page 21: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

1

0

1

0

0

NOR

NOR1

0 0

21

Page 22: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

1

0

1

0

0

NOR

NOR1

1 0

22

Page 23: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

1

0

0

0

0

NOR

NOR1

1 0

23

Page 24: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

1

0

0

0

0

NOR

NOR0

1 0

24

Page 25: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

1

1

0

0

0

NOR

NOR0

1 0

25

Page 26: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

1

1

0

0

0

NOR

NOR0

1 1

26

Page 27: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

1

1

0

0

0

NOR

NOR0

1 1

0

1

0

0

0

NOR

NOR0

0 1

27

Page 28: Positive Feedback and Bistability

Flip-Flop0

0

1

0

0

NOR

NOR

A B NOR

1 1 0

0 1 0

1 0 0

0 0 1

1

0 0

0

0

1

1

1

NOR

NOR1

0 0

0

0

1

0

0

NOR

NOR1

0 0

Toggle A to reset P1Toggle B to set P1

28

Page 29: Positive Feedback and Bistability

Network structures involving toggle switches

Developmental Switch

Page 30: Positive Feedback and Bistability

Bifurcation Diagram

h

Steady state value of A

Stable Unstable

Stable

Stable

Page 31: Positive Feedback and Bistability

Bistability with Hysteresis

One of the parameters in the model

Unstable state

Stable state

Stable state

Gianluca M. Guidi, and Albert Goldbeter. Bistability without Histeresis in Chemical Reaction Systems: A Theoretical Analysis of Irreversible Transitions between Multiple Steady States. Journal of Physical Chemistry (1997), 101 (49).

State Variable

Page 32: Positive Feedback and Bistability

Bistability with Irreversibility

Gianluca M. Guidi, and Albert Goldbeter. Bistability without Histeresis in Chemical Reaction Systems: A Theoretical Analysis of Irreversible Transitions between Multiple Steady States. Journal of Physical Chemistry (1997), 101 (49).