Difference between revisions of "Team:Aix-Marseille/Collaborations"

(Equations)
(Equations)
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Here <div lang="latex">\mu _{max}</div> is the maximum growth rate <div lang="latex">hr^{-1}: $\mu (\mathbf{z,S})</div> the growth rate ; <div lang="latex">K_S</div> is the Monod constant in g/l for the substrate; <div lang="latex">K_{z_1}</div> is the inhibition constant for plamid number 1 in (plasmids per cell)<div lang="latex">^{m_1}</div>, and <div lang="latex">m_1</div> the Hill coefficient for the cooperativity of inhibition. <div lang="latex">K_{z_2}</div> and <div lang="latex">m_2</div> represent the same parameters for plasmid 2.
 
Here <div lang="latex">\mu _{max}</div> is the maximum growth rate <div lang="latex">hr^{-1}: $\mu (\mathbf{z,S})</div> the growth rate ; <div lang="latex">K_S</div> is the Monod constant in g/l for the substrate; <div lang="latex">K_{z_1}</div> is the inhibition constant for plamid number 1 in (plasmids per cell)<div lang="latex">^{m_1}</div>, and <div lang="latex">m_1</div> the Hill coefficient for the cooperativity of inhibition. <div lang="latex">K_{z_2}</div> and <div lang="latex">m_2</div> represent the same parameters for plasmid 2.
  
For plasmid replication rate we propose, again following Shene et al. [?], the empirical relationship :<br/>
+
For plasmid replication rate we propose, again following Shene et al. [?], the empirical relationship :<br/><br/>
 
<div lang="latex"> \dot{z}_1 (\mathbf{z},S) = k_1 \frac{\mu (\mathbf{z},S)}{K_1 + \mu (\mathbf{z},S)} ( z_{1_{max}} - z_1 ) if z_1 \geq 1.0 or  \dot{z}_1 (\mathbf{z},S) = 0 if 0.0 \leq z_1 < 1.0</div> (4)<br/><br/>
 
<div lang="latex"> \dot{z}_1 (\mathbf{z},S) = k_1 \frac{\mu (\mathbf{z},S)}{K_1 + \mu (\mathbf{z},S)} ( z_{1_{max}} - z_1 ) if z_1 \geq 1.0 or  \dot{z}_1 (\mathbf{z},S) = 0 if 0.0 \leq z_1 < 1.0</div> (4)<br/><br/>
  

Revision as of 15:33, 17 October 2016