Team:Paris Bettencourt/Modeling/Assisted diffusion
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<p>We managed to come up with an idea for such a process, and in this page <em>we propose a new model</em> that can possibly explain the speed of the molecule exchange through the nanotubes.</p> | <p>We managed to come up with an idea for such a process, and in this page <em>we propose a new model</em> that can possibly explain the speed of the molecule exchange through the nanotubes.</p> | ||
- | + | <p><em> The difference in membrane tension</em> of two bacteria could lead to a pressure difference : </p> | |
- | <p><em> The difference in membrane tension | + | |
<h2>Summary</h2> | <h2>Summary</h2> | ||
Revision as of 22:37, 28 October 2011
Assisted diffusion
Introduction to the model
Inspired by the experiments of Dubey and Ben-Yehuda we asked ourselves several questions. What kind of process could do this molecular transfer? How can we characterize it? It could be an active process, a passive diffusion or something else. Several arguments can be opposed to the active process hypothesis:
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The question is :
We need to know if such a model can be designed starting from physical laws and if this model can explain quantitatively the transfer through the nanotubes. Due to its purely physical nature, our model can also shed some light as to the nanotube formation.
We managed to come up with an idea for such a process, and in this page we propose a new model that can possibly explain the speed of the molecule exchange through the nanotubes.
The difference in membrane tension of two bacteria could lead to a pressure difference :
Summary
Model description in few words :
We do not know what is the mechanism behing nanotube formation. We can suppose they are made of lipid membrane within a cell-wall like matrix. When the membrane of the two cells fuse, there might be a difference of tension between the two phospholipid bilayers. This phenomenon might lead to a movement of lipids from one membrane to the other. The newly arrived phospholipids change the membrane tension of the bacterium. As a consequence, they change the internal Laplace pressure of the bacterium.
A simple analogy of clothesline can help to understand what is happening. You need to pull more your clothesline to put more clothes on it. When you pull the rope by two ends you create a tension. The bigger the tension, the more weight (pressure) you can put on the rope.
All of this will lead to establishing the pressure difference at the tube extremities and we will get a Poiseuille's flow. Constituents diluted in water will move from one cell to another unidirectionally and faster than by simple diffusion. This is a fast process that we have named the "assisted diffusion".
The assisted diffusion model in 3 bullet points:
- Characteristic time of the process is about 100 ns
- The effect strongly depends on the initial phospholipid distribution on the membrane of two connected bacteria
- The phenomenon predicts the flux of only 0.1 % of the cytoplasme, not enough to explain the GFP experiment of the original paper
Back of the envelope calculation section.
References