Team:KULeuven/Modelling/Vanillin Receptor

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(Vanillin diffusion)
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==Vanillin diffusion==
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{{Team:KULeuven/Common/SubMenu_Project}}
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=== intro ===
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=Vanillin Sensor=
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Because the VirA protein sensor domain is located in the cytoplasmic region, it senses intercellular
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vanillin concentration. (see figure)
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Because the objective of this project is to regulate the extracellular vanillin concentration we investigate the
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relation between the intercellular and extracellular vanillin concentration.
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It will be shown that on the time-scale we are interested in, intracellular and extracellular concentration are equal.
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We can approximate the relationship with following continuity equation (equilibrium in cytoplasm and extracellular):
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== Overview ==
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The vanillin receptor senses the vanillin concentration outside the cell. This information is needed to create the feedback loop to control vanillin synthesis. Under influence of vanillin, Vir A gets autophosphorylated and phosphorylates on its turn Vir G. Vir G triggers the transcription of Anti-key.
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[[image:Biologie_vanillin_receptor.png|center]]
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[[image:Biologie_antikey.png|center]]
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==Models==
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[[image:Vanillin_receptor.png|600px|center]]
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<math>d[V_inter]/dt = V_production-k_diffusion(V_inter-V_extra)</math>
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==Vanillin diffusion==
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V_inter: intercellular concentration
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[[image:Cell_wall.png|600px|center]]
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V_extra: extracellular concentration
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V_production: production of vannilin
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k_diffusion: speed of diffusion in and out cell
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rewriting the above equation gives
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Inner Membrane thickness: 8 nm
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<math>V_extra = V_intra+1/k_diffusion*(d[V_inter]/dt - V_production)</math>
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If the k_diffusion is big, on the time-scale we are interested in, we are not interested in phenomena which occur
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Outer Membrane thickness: 12 nm
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within 1 minute, V_extra and V_intra can be regarded as equal.
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=== simulation ===
 
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The following more exact treatise will try to determine the time scale on which the vanillin concentration reaches equilibrium conditions (V_extra = V_inter).
 
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The process is described by following (more general) continuity equation:
 
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<math> d[V]/dt = V_production+k_degradation*V+d[D_V*d[V]/dx]/dx</math>
 
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V: Vanillin concentration
 
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V_production: Vanillin production
 
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k_degradation: speed of degradation but will here be considered 0
 
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D_V: diffusion coefficient of vanillin
 
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The cell will be modelled as a sphere, with following characteristics:
 
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Inner Membrane thickness: 8 nm
 
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Outer Membrane thickness: 12 nm
 
Periplasm thickness: 10 nm
Periplasm thickness: 10 nm
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We neglect the outer membrane because the porins make the membrane permeable (see figure of cell wall).
 
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To determine the diffusion coefficient of vanillin in cytoplasm, inner membrane and periplasm we use following equation:
 
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D = kT/f_a
 
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k: constant of Boltzmann
 
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T: Temperature °K
 
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f_a: friction coefficient for a sphere radius rA.
 
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The radius of the equivalent hydrodynamic sphere of vanillin is 2 A°.
 
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f_a = 6*π*η*rA
 
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The friction coefficient of vanillin
 
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η_water =
 
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η_cytoplasm =
 
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η_IM =
 
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η_PP =
 
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A first approximation is the transfer time of vanillin in the cell.
 
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tau = delta_r^2/D
 
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which was approximately 1 ms.
 
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[[image:Cell_wall.png|600px|center]]
 
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[[image:virA_virG.JPG|600px|center]]
 
We neglect the outer membrane because the porins make the membrane permeable.
We neglect the outer membrane because the porins make the membrane permeable.

Revision as of 09:25, 19 August 2009

Contents

Vanillin Sensor

Overview

The vanillin receptor senses the vanillin concentration outside the cell. This information is needed to create the feedback loop to control vanillin synthesis. Under influence of vanillin, Vir A gets autophosphorylated and phosphorylates on its turn Vir G. Vir G triggers the transcription of Anti-key.

Biologie vanillin receptor.png
Biologie antikey.png

Models

Vanillin receptor.png

Vanillin diffusion

Cell wall.png

Inner Membrane thickness: 8 nm

Outer Membrane thickness: 12 nm

Periplasm thickness: 10 nm

We neglect the outer membrane because the porins make the membrane permeable.