Difference between revisions of "Team:IIT Kanpur/Model"

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 +
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 +
font-style:italic;}
 +
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 +
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<p class=MsoNormal align=center style='text-align:center'><span
 
<p class=MsoNormal align=center style='text-align:center'><span
style='font-size:20.0pt;line-height:107%;color:#2F5597'>Modelling</span></p>
+
style='font-size:72.0pt;line-height:107%;color:#1F4E79'>Modelling</span></p>
  
<p class=MsoNormal><span style='font-size:18.0pt;line-height:107%;color:#2E75B6'>Overview
+
<p class=MsoNormal><span style='font-size:48.0pt;line-height:107%;color:#C55A11'>Overview
 
</span></p>
 
</span></p>
  
<p class=MsoNormal>Mathematical modelling is fundamental to synthetic biology,
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Mathematical
a tool that allows for deeper understanding of biological systems, acting as a
+
modelling is fundamental to synthetic biology, a tool that allows for deeper
link between the conception and the physical realisation of a biological
+
understanding of biological systems, acting as a link between the conception
circuit. Being able stimulate and understand our system behaviour before actual
+
and the physical realisation of a biological circuit. Being able stimulate and
implementation saves both time and resources.</p>
+
understand our system behaviour before actual implementation saves both time
 +
and resources.</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal>Through our modelling we tried to gain insight into our
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
system so that we could improve it and make it realistically achievable.</p>
+
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Through our
 +
modelling we tried to gain insight into our system so that we could improve it
 +
and make it realistically achievable.</span></p>
  
<p class=MsoNormal>We tried to describe the whole system with a mathematical
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>We tried to
system of linear ODEs which could characterizes the expression and secretion of
+
describe the whole system with a mathematical system of linear ODEs which could
all enzymes, the associated substrate – enzyme kinetics.</p>
+
characterizes the expression and secretion of all enzymes, the associated
 +
substrate – enzyme kinetics.</span></p>
  
<p class=MsoNormal>In order to realize the long term goal of developing a
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>In order to
detergent biodegradation device for household and commercial use we tried to
+
realize the long term goal of developing a detergent biodegradation device for
implement continuous culture modelling on our bioreactor design in order to
+
household and commercial use we tried to implement continuous culture modelling
estimate yearly cost of detergent biodegradation.</p>
+
on our bioreactor design in order to estimate yearly cost of detergent
 +
biodegradation.</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:20.0pt;line-height:107%;color:#843C0C'>­­­­­­­­­­­­­­­­­­­­­_________________________________________________________________________________________________________________________</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:48.0pt;line-height:107%;color:#FFC000'>Single
 +
Cell Modelling</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
 
+
width=580 height=373 id="Picture 9" src="Modelling222_files/image001.jpg"
<p class=MsoNormal>&nbsp;</p>
+
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44177337_161118344832834_5155785162818060288_n.png?_nc_cat=110&amp;oh=9e7779a555a3f3b881a5adfaa566230f&amp;oe=5C581588"></span></p>
 
+
<p class=MsoNormal>&nbsp;</p>
+
 
+
<p class=MsoNormal>&nbsp;</p>
+
 
+
<p class=MsoNormal>&nbsp;</p>
+
 
+
<p class=MsoNormal>&nbsp;</p>
+
 
+
<p class=MsoNormal>&nbsp;</p>
+
 
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:#1F4E79'>Single
+
Cell Modelling</span></p>
+
  
<p class=MsoNormal><img width=602 height=387 id="Picture 9"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>Allows
src="Modelling111_files/image001.jpg"
+
to model our gene regulatory network (GRN) and the extracellular secretion of
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44177337_161118344832834_5155785162818060288_n.png?_nc_cat=110&amp;oh=9e7779a555a3f3b881a5adfaa566230f&amp;oe=5C581588"><span
+
our enzyme alkyl sulfatase (SdsA1).</span></p>
style='font-size:14.0pt;line-height:107%;color:black'>Allows to model our gene
+
regulatory network (GRN) and the extracellular secretion of our enzyme alkyl
+
sulfatase (SdsA1).</span></p>
+
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>This
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>This
 
model helped us gain insight into our system in order to understand dependence
 
model helped us gain insight into our system in order to understand dependence
 
of rate of secretion of alkyl sulfatase in media under varying promoter
 
of rate of secretion of alkyl sulfatase in media under varying promoter
Line 137: Line 129:
 
extracellular secretion tags PelB and OmpT.</span></p>
 
extracellular secretion tags PelB and OmpT.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>Our
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>Our
 
model is based on overexpression of alkyl sulfatase under constitutive
 
model is based on overexpression of alkyl sulfatase under constitutive
 
promoters from Anderson promoter collection in iGEM  registry. The
 
promoters from Anderson promoter collection in iGEM  registry. The
Line 144: Line 136:
 
known in literature.</span></p>
 
known in literature.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>Since
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>Since
 
under a constitutive gene expression is unregulated, it is always on and its
 
under a constitutive gene expression is unregulated, it is always on and its
strength could be modelled through the transcription rate constant k1. </span></p>
+
strength could be modelled through the transcription rate constant k1.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>as:
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>&nbsp;</span></p>
</span></p>
+
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
 +
width=372 height=141 id="Picture 5" src="Modelling222_files/image002.png"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>&nbsp;</span></p>
  
<p class=MsoNormal><img width=372 height=141 id="Picture 5"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:#2E75B6'>Using
src="Modelling111_files/image002.png"></p>
+
 
+
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>Using
+
 
the law of mass action</span></p>
 
the law of mass action</span></p>
  
<p class=MsoNormal>&nbsp;</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><img width=387 height=108 id="Picture 6"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image003.png"></p>
+
width=387 height=108 id="Picture 6" src="Modelling222_files/image003.png"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>&nbsp;</span></p>
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-size:13.5pt;font-family:"Arial",sans-serif'>Transcription
+
normal'><span style='font-size:16.0pt;font-family:"Arial",sans-serif'>Transcription
 
rate k1 is estimated from literature.</span></p>
 
rate k1 is estimated from literature.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'> </span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'> </span></p>
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-size:13.5pt;font-family:"Arial",sans-serif'>Translation
+
normal'><span style='font-size:16.0pt;font-family:"Arial",sans-serif'>Translation
 
rate k2 is estimated from the literature</span></p>
 
rate k2 is estimated from the literature</span></p>
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-size:13.5pt;font-family:"Arial",sans-serif'>&nbsp;</span></p>
+
normal'><span style='font-size:16.0pt;font-family:"Arial",sans-serif'>&nbsp;</span></p>
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-size:13.5pt;font-family:"Arial",sans-serif'>mRNA
+
normal'><span style='font-size:16.0pt;font-family:"Arial",sans-serif'>mRNA
 
degradation (d1) and Protein degradation rate (d2) are known for Ecoli through
 
degradation (d1) and Protein degradation rate (d2) are known for Ecoli through
 
literature.</span></p>
 
literature.</span></p>
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-size:13.5pt;font-family:"Arial",sans-serif'>&nbsp;</span></p>
+
normal'><span style='font-size:16.0pt;font-family:"Arial",sans-serif'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>&nbsp;</span></p>
 +
 
 +
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>&nbsp;</span></p>
 +
 
 +
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>Since
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>Since
 
SdsA1 (alkyl sulfatase) a extracellular enzyme, it was essential to understand
 
SdsA1 (alkyl sulfatase) a extracellular enzyme, it was essential to understand
 
effect of secretion efficiencies of our enzyme from Ecoli cells, in order to
 
effect of secretion efficiencies of our enzyme from Ecoli cells, in order to
Line 198: Line 191:
 
) degradation.</span></p>
 
) degradation.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>We
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>We
 
tried to model our protein secretion using a empirical secretion law used by
 
tried to model our protein secretion using a empirical secretion law used by
 
iGEM Stuttgart 2017 team.</span></p>
 
iGEM Stuttgart 2017 team.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>  
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>  
 
</span></p>
 
</span></p>
 
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>&nbsp;</span></p>
 
  
 
<p class=MsoNormal><a href="https://static.igem.org/mediawiki/2017/3/31/Secretion.png"><span
 
<p class=MsoNormal><a href="https://static.igem.org/mediawiki/2017/3/31/Secretion.png"><span
style='font-size:14.0pt;line-height:107%;color:black;text-decoration:none'><img
+
style='font-size:16.0pt;line-height:107%;color:black;text-decoration:none'><img
border=0 width=479 height=48 id="Picture 4"
+
border=0 width=479 height=70 id="Picture 4"
src="Modelling111_files/image004.png"
+
src="Modelling222_files/image004.png"
 
alt="https://static.igem.org/mediawiki/2017/3/31/Secretion.png"></span></a></p>
 
alt="https://static.igem.org/mediawiki/2017/3/31/Secretion.png"></span></a></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>r<sub>secretion</sub>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>&nbsp;</span></p>
: secretion rate </span></p>
+
 
 +
<p class=MsoNormal><span style='font-size:22.0pt;line-height:107%;color:black'>r</span><sub><span
 +
style='font-size:16.0pt;line-height:107%;color:black'>secretion</span></sub><span
 +
style='font-size:16.0pt;line-height:107%;color:black'> : secretion rate </span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>[enzyme]
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>[enzyme]
 
: enzyme concentration </span></p>
 
: enzyme concentration </span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>s
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>s
 
: secretion efficiency </span></p>
 
: secretion efficiency </span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%;color:black'>t
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:black'>t
 
: time </span></p>
 
: time </span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Here the
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Here the
secretion efficiency is a value between zero and one ().</span></p>
+
secretion efficiency is a value between zero and one .</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'> </span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Since
 
+
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Since
+
 
reliable data on expression of SdsA1 and its extracellular expression in Ecoli
 
reliable data on expression of SdsA1 and its extracellular expression in Ecoli
 
was not available we concluded that our model could only provide a qualitative
 
was not available we concluded that our model could only provide a qualitative
understanding various factors on these .</span></p>
+
understanding various factors on these.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><a href="https://static.igem.org/mediawiki/2017/3/31/Secretion.png"><span
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
style='font-size:14.0pt;line-height:107%;color:black;text-decoration:none'><img
+
border=0 width=479 height=48 id="Picture 18"
+
src="Modelling111_files/image005.png"
+
alt="https://static.igem.org/mediawiki/2017/3/31/Secretion.png"></span></a><img
+
border=0 width=602 height=276 id="Picture 8"
+
src="Modelling111_files/image006.png"
+
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44185937_2064200740556003_6694159164534423552_n.png?_nc_cat=105&amp;oh=040a1b04709ea79fa27d8959210921b6&amp;oe=5C482425"></p>
+
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal align=center style='text-align:center'><span
 +
style='font-size:16.0pt;line-height:107%'><img border=0 width=602 height=317
 +
id="Picture 8" src="Modelling222_files/image005.png"
 +
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44185937_2064200740556003_6694159164534423552_n.png?_nc_cat=105&amp;oh=040a1b04709ea79fa27d8959210921b6&amp;oe=5C482425"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal align=center style='text-align:center'><span
 +
style='font-size:16.0pt;line-height:107%'>Fig 1.Simbiology implementation of
 +
our Model</span></p>
  
<p class=MsoNormal><img border=0 width=560 height=363 id="Picture 2"
+
<p class=MsoNormal align=center style='text-align:center'><span
src="Modelling111_files/image007.png"
+
style='font-size:16.0pt;line-height:107%'><img border=0 width=560 height=363
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44351672_551274411976028_2657043464260157440_n.png?_nc_cat=102&amp;oh=ebd37b04550aef2d5e8d2f15364d230b&amp;oe=5C50AC06"></p>
+
id="Picture 2" src="Modelling222_files/image006.png"
 +
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44351672_551274411976028_2657043464260157440_n.png?_nc_cat=102&amp;oh=ebd37b04550aef2d5e8d2f15364d230b&amp;oe=5C50AC06"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Fig.1 Effect
+
<p class=MsoNormal align=center style='text-align:center'><span
of secretion efficiency on enzyme production</span></p>
+
style='font-size:16.0pt;line-height:107%'>Fig.2 Effect of secretion efficiency
 +
on enzyme production</span></p>
  
<p class=MsoNormal><img border=0 width=560 height=374 id="Picture 7"
+
<p class=MsoNormal align=center style='text-align:center'><span
src="Modelling111_files/image008.png"
+
style='font-size:16.0pt;line-height:107%'><img border=0 width=560 height=374
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44203308_1781628528626872_7513042899114655744_n.png?_nc_cat=111&amp;oh=9400d852e101215b021771e1a18d90f4&amp;oe=5C3F00B1"></p>
+
id="Picture 7" src="Modelling222_files/image007.png"
 +
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44203308_1781628528626872_7513042899114655744_n.png?_nc_cat=111&amp;oh=9400d852e101215b021771e1a18d90f4&amp;oe=5C3F00B1"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal align=center style='text-align:center'><span
 +
style='font-size:16.0pt;line-height:107%'>Fig.3 Effect of promoter strength on
 +
enzyme production</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Fig.2 Effect
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
of promoter strength on enzyme production</span></p>
+
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>­­­­­­­­</span><span
 
+
style='font-size:20.0pt;line-height:107%;color:#C00000'>___________________________________________________________________________________________________________________________</span></p>
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
  
<p class=MsoNormal><span style='font-size:18.0pt;line-height:107%;color:#333F50'>Enzyme
+
<p class=MsoNormal><span style='font-size:48.0pt;line-height:107%;color:#FFC000'>Enzyme
 
Kinetics</span></p>
 
Kinetics</span></p>
  
<p class=MsoNormal>We use the simple Michaelis-Menten formula to describe our enzymes’
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>We use the
kinetics.</p>
+
simple Michaelis-Menten formula to describe our enzymes’ kinetics.</span></p>
  
<p class=MsoNormal><img border=0 width=252 height=65 id="Picture 1"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image009.png"></p>
+
border=0 width=252 height=80 id="Picture 1"
 +
src="Modelling222_files/image008.jpg"></span></p>
  
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>     </span><img
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>     </span><span
border=0 width=178 height=77 id="Picture 10"
+
style='font-size:16.0pt;line-height:107%'><img border=0 width=178 height=93
src="Modelling111_files/image010.png"> </p>
+
id="Picture 10" src="Modelling222_files/image009.jpg"> </span></p>
  
<p class=MsoNormal>Here, <em><span style='font-size:12.0pt;line-height:107%;
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Here, <em><span
font-family:"Calibri",sans-serif'>V</span></em><sub><span style='font-size:
+
style='font-family:"Calibri",sans-serif'>V</span></em><sub>max</sub> represents
12.0pt;line-height:107%'>max</span></sub> represents the maximum velocity
+
the maximum velocity achieved by the system, at maximum (saturating) substrate
achieved by the system, at maximum (saturating) substrate concentrations. <em><span
+
concentrations. <em><span style='font-family:"Calibri",sans-serif'>K<sub>M</sub></span></em>
style='font-size:12.0pt;line-height:107%;font-family:"Calibri",sans-serif'>K<sub>M</sub></span></em>
+
 
(the Michaelis constant; sometimes represented as <em><span style='font-family:
 
(the Michaelis constant; sometimes represented as <em><span style='font-family:
 
"Calibri",sans-serif'>K<sub>S</sub></span></em> instead) is the substrate
 
"Calibri",sans-serif'>K<sub>S</sub></span></em> instead) is the substrate
concentration at which the reaction velocity is 50% of the<span
+
concentration at which the reaction velocity is 50% of the <em><span
style='font-size:12.0pt;line-height:107%'> <em><span style='font-family:"Calibri",sans-serif'>V</span></em><sub>max</sub></span>.
+
style='font-family:"Calibri",sans-serif'>V</span></em><sub>max</sub>. [<em><span
[<em><span style='font-family:"Calibri",sans-serif'>S</span></em>] is the
+
style='font-family:"Calibri",sans-serif'>S</span></em>] is the concentration of
concentration of the substrate <em><span style='font-family:"Calibri",sans-serif'>S</span></em>.</p>
+
the substrate <em><span style='font-family:"Calibri",sans-serif'>S</span></em>.</span></p>
  
<p class=MsoNormal><span style='font-size:12.0pt;line-height:107%'>Our enzyme (E)
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Our enzyme (E)
 
being SDS, substrate S being SdsA1 and P being our final product 1-Dodecanol.</span></p>
 
being SDS, substrate S being SdsA1 and P being our final product 1-Dodecanol.</span></p>
  
<p class=MsoNormal><img border=0 width=511 height=53 id="Picture 11"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image011.png"></p>
+
border=0 width=511 height=59 id="Picture 11"
 +
src="Modelling222_files/image010.jpg"></span></p>
  
<p class=MsoNormal><span style='font-size:12.0pt;line-height:107%'>Here k1 is
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Here k1 is
 
rate of forward and k-1 being rate of backword reactions and k2 being rate of
 
rate of forward and k-1 being rate of backword reactions and k2 being rate of
 
product formation.</span></p>
 
product formation.</span></p>
  
<p class=MsoNormal><span style='font-size:12.0pt;line-height:107%'>In terms of
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>In terms of
specific </span><span style='font-family:"Arial",sans-serif'>Michaelis-Menten
+
specific </span><span style='font-size:16.0pt;line-height:107%;font-family:
reaction, these constants are quoted in the literature as:</span></p>
+
"Arial",sans-serif'>Michaelis-Menten reaction, these constants are quoted in
 +
the literature as:</span></p>
  
<p class=MsoNormal><img border=0 width=254 height=145 id="Picture 13"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image012.png"></p>
+
border=0 width=254 height=145 id="Picture 13"
 +
src="Modelling222_files/image011.png"></span></p>
  
<p class=MsoNormal><span style='font-size:12.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>We assumed a
 +
average SDS concentration of 5-10 mg/L in domestic wastewater discharges. </span></p>
  
<p class=MsoNormal>We assumed a average SDS concentration of 5-10 mg/L in
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
domestic wastewater discharges. </p>
+
  
 
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
 
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:22.0pt;line-height:107%;color:#C00000'>_____________________________________________________________________________________________________________________________</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
 
+
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
  
<p class=MsoNormal><span style='font-size:18.0pt;line-height:107%;color:#595959'>Continuous
+
<p class=MsoNormal><span style='font-size:48.0pt;line-height:107%;color:#FFC000'>Continuous
 
Culture Modelling</span></p>
 
Culture Modelling</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
 
<p class=MsoNormal><img width=273 height=358
 
<p class=MsoNormal><img width=273 height=358
src="Modelling111_files/image013.jpg" align=left hspace=12
+
src="Modelling222_files/image012.jpg" align=left hspace=12
 
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44236260_489616118186439_8807087846427983872_n.png?_nc_cat=105&amp;oh=12547d5feeea7af7a9a5ca9f30244400&amp;oe=5C52B499"></p>
 
alt="https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44236260_489616118186439_8807087846427983872_n.png?_nc_cat=105&amp;oh=12547d5feeea7af7a9a5ca9f30244400&amp;oe=5C52B499"></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal align=center style='text-align:center'><span
 +
style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Fig4. Our SDS
 +
biodegradation chemostat illustration.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>In order to
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>In order to
 
understand if our project could be implemented in a real world we decided to check
 
understand if our project could be implemented in a real world we decided to check
 
its economic sustainability by trying to estimate the yearly cost of operation of
 
its economic sustainability by trying to estimate the yearly cost of operation of
 
our bioreactor.</span></p>
 
our bioreactor.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>To do so we
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>To do so we
 
implement a model based on previous model developed by iGEM 2017 Manchester
 
implement a model based on previous model developed by iGEM 2017 Manchester
 
team who were trying to estimate cost of chemostat operation for cleaning Phosphate
 
team who were trying to estimate cost of chemostat operation for cleaning Phosphate
 
in wastewater.</span></p>
 
in wastewater.</span></p>
  
<p class=MsoNormal>The growth of bacteria in its exponential phase can be
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>The growth
represented in the following exponential growth equation:</p>
+
of bacteria in its exponential phase can be represented in the following
 +
exponential growth equation:</span></p>
  
<p class=MsoNormal><img border=0 width=602 height=66 id="Picture 25"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image014.jpg"></p>
+
border=0 width=672 height=66 id="Picture 25"
 +
src="Modelling222_files/image013.jpg"></span></p>
  
<p class=MsoNormal>where: <br>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>where: <br>
<br>
+
</span><span class=mi><i><span style='font-size:16.0pt;line-height:107%;
<span class=mi></span><i><span style='font-size:15.0pt;line-height:107%;
+
font-family:"MathJax_Math",serif'>x</span></span></i></span></span><span
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
+
style='font-size:16.0pt;line-height:107%'></span></span></span></nobr></span>
id=MathJax-Span-33><span style='color:inherit'><span
+
is the <i>bacteria concentration</i> (dry weight mass/unit volume) at time </span><span
id=MathJax-Element-2-Frame><span style='display:inline-block'><span
+
class=mi></span><i><span style='font-size:16.0pt;line-height:107%;font-family:
style='clip:rect(2.035em, 1000em, 2.834em, -1000em)'><span id=MathJax-Span-34><span
+
id=MathJax-Span-35>x</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></nobr></span>
+
is the <i>bacteria concentration</i> (dry weight mass/unit volume) at time <span
+
class=mi></span><i><span style='font-size:15.0pt;line-height:107%;font-family:
+
 
"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
id=MathJax-Span-36><span style='color:inherit'><span
 
id=MathJax-Span-36><span style='color:inherit'><span
 
id=MathJax-Element-3-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-3-Frame><span style='display:inline-block'><span
 
style='clip:rect(1.851em, 1000em, 2.834em, -1000em)'><span id=MathJax-Span-37><span
 
style='clip:rect(1.851em, 1000em, 2.834em, -1000em)'><span id=MathJax-Span-37><span
id=MathJax-Span-38>t</span></span></span></i><span style='display:inline-block'></span><br>
+
id=MathJax-Span-38>t</span></span></span></i><span style='display:inline-block'></span><span
</span></span></span></span></nobr></span><span class=mo></span><i><span
+
style='font-size:16.0pt;line-height:107%'></span><br>
style='font-size:15.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
+
</span></span></span></nobr></span></span><span class=mo></span><i><span
 +
style='font-size:16.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
 
role=math style='display:inline-block' id=MathJax-Span-39><span
 
role=math style='display:inline-block' id=MathJax-Span-39><span
 
style='color:inherit'><span id=MathJax-Element-4-Frame><span style='display:
 
style='color:inherit'><span id=MathJax-Element-4-Frame><span style='display:
 
inline-block'><span style='clip:rect(2.035em, 1000em, 3.039em, -1000em)'><span
 
inline-block'><span style='clip:rect(2.035em, 1000em, 3.039em, -1000em)'><span
 
id=MathJax-Span-40><span id=MathJax-Span-41><span id=MathJax-Span-42><span
 
id=MathJax-Span-40><span id=MathJax-Span-41><span id=MathJax-Span-42><span
id=MathJax-Span-43>&#956;</span></span></span></i></span></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-43>&#956;</span></span></span></i></span></span></span><span
 +
style='font-size:16.0pt;line-height:107%'></span></span></span></nobr></span>
 
is the <i>specific growth rate</i><br>
 
is the <i>specific growth rate</i><br>
<span class=mi></span><i><span style='font-size:15.0pt;line-height:107%;
+
</span><span class=mi></span><i><span style='font-size:16.0pt;line-height:107%;
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
id=MathJax-Span-44><span style='color:inherit'><span
 
id=MathJax-Span-44><span style='color:inherit'><span
Line 405: Line 401:
 
style='clip:rect(1.563em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-45><span
 
style='clip:rect(1.563em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-45><span
 
id=MathJax-Span-46><span style='display:inline-block'><span style='clip:rect(3.176em, 1000em, 4.158em, -1000em)'><span
 
id=MathJax-Span-46><span style='display:inline-block'><span style='clip:rect(3.176em, 1000em, 4.158em, -1000em)'><span
id=MathJax-Span-47>t</span></span><span style='display:inline-block'></i></span><span
+
id=MathJax-Span-47>t</span></span><span id=MathJax-Span-48>d<span
class=mi></span><i><span style='font-size:10.5pt;line-height:107%;font-family:
+
style='display:inline-block;overflow:hidden'></span></i></span><span
"MathJax_Math",serif'></span><span id=MathJax-Span-48>d<span style='display:
+
style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></span></span></nobr></span>
inline-block;overflow:hidden'></span></i></span></span></span></span></span></span></span></span></span></nobr></span>
+
 
is the <i>doubling time</i> (time required for the concentration of organism to
 
is the <i>doubling time</i> (time required for the concentration of organism to
double)</p>
+
double)</span></p>
  
<p class=MsoNormal>Monod showed that there is a relationship between the
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Monod showed
specific growth rate and the concentration of a limiting growth substrate that
+
that there is a relationship between the specific growth rate and the
can be represented in this equation:</p>
+
concentration of a limiting growth substrate that can be represented in this
 +
equation:</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>                            
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>                       
</span><img border=0 width=601 height=76 id="Picture 26"
+
</span><span style='font-size:16.0pt;line-height:107%'><img border=0 width=622
src="Modelling111_files/image015.jpg"></p>
+
height=76 id="Picture 26" src="Modelling222_files/image014.jpg"></span><span
 +
style='font-size:16.0pt;line-height:107%'>     </span></p>
  
<p class=MsoNormal><img width=81 height=43 src="Modelling111_files/image016.jpg"
+
<p class=MsoNormal><img width=81 height=43 src="Modelling222_files/image015.jpg"
align=left hspace=12>where: <br>
+
align=left hspace=12><span style='font-size:16.0pt;line-height:107%'>where: <br>
 
<br>
 
<br>
<span class=mi></span><i><span style='font-size:15.0pt;line-height:107%;
+
</span><span class=mi></span><i><span style='font-size:16.0pt;line-height:107%;
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
id=MathJax-Span-80><span style='color:inherit'><span
 
id=MathJax-Span-80><span style='color:inherit'><span
 
id=MathJax-Element-7-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-7-Frame><span style='display:inline-block'><span
 
style='clip:rect(2.035em, 1000em, 2.833em, -1000em)'><span id=MathJax-Span-81><span
 
style='clip:rect(2.035em, 1000em, 2.833em, -1000em)'><span id=MathJax-Span-81><span
id=MathJax-Span-82>s</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-82>s</span></span></span></i><span style='display:inline-block'></span><span
 +
style='font-size:16.0pt;line-height:107%'></span></span></span></span></nobr></span>
 
the <i>concentration of a limiting growth substrate</i><br>
 
the <i>concentration of a limiting growth substrate</i><br>
<span class=mo></span><i><span style='font-size:15.0pt;line-height:107%;
+
</span><span class=mo></span><i><span style='font-size:16.0pt;line-height:107%;
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
id=MathJax-Span-83><span style='color:inherit'><span
 
id=MathJax-Span-83><span style='color:inherit'><span
Line 438: Line 436:
 
id=MathJax-Span-86><span id=MathJax-Span-87><span id=MathJax-Span-88>&#956;</span></span></span></i></span></span><span
 
id=MathJax-Span-86><span id=MathJax-Span-87><span id=MathJax-Span-88>&#956;</span></span></span></i></span></span><span
 
style='display:inline-block'><span class=mi></span><i><span style='font-size:
 
style='display:inline-block'><span class=mi></span><i><span style='font-size:
10.5pt;line-height:107%;font-family:"MathJax_Math",serif'></span><span
+
16.0pt;line-height:107%;font-family:"MathJax_Math",serif'></span><span
 
id=MathJax-Span-89><span id=MathJax-Span-90><span id=MathJax-Span-91>m</span><span
 
id=MathJax-Span-89><span id=MathJax-Span-90><span id=MathJax-Span-91>m</span><span
id=MathJax-Span-92>a</span><span id=MathJax-Span-93>x</span></span></span></i></span></span></span></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-92>a</span><span id=MathJax-Span-93>x</span></span></span></i></span></span><span
 +
style='display:inline-block'><span style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></span></nobr></span>
 
is the <i>maximum growth rate</i> (growth rate when organism is placed in
 
is the <i>maximum growth rate</i> (growth rate when organism is placed in
excess nutrients without any limiting factors) </p>
+
excess nutrients without any limiting factors) </span></p>
  
<p class=MsoNormal><span class=mi><i><span style='font-size:15.0pt;line-height:
+
<p class=MsoNormal><span class=mi><i><span style='font-size:16.0pt;line-height:
107%;font-family:"MathJax_Math",serif'>K<span style='display:inline-block;
+
107%;font-family:"MathJax_Math",serif'>K</span></span><span id=MathJax-Span-98>s</span></span></i><span
overflow:hidden'></span></i></span><span class=mi></span><i><span
+
style='display:inline-block'></span><i><span style='font-size:16.0pt;
style='font-size:10.5pt;line-height:107%;font-family:"MathJax_Math",serif'></span></span><span
+
line-height:107%'></span></span></span></span></span></span></span></nobr></span>
id=MathJax-Span-98>s</span></span></i><span style='display:inline-block'></span><i></span></span></span></span></span></span></span></nobr></span>
+
</span></i><span style='font-size:16.0pt;line-height:107%'>is the <i>saturation
</i>is the <i>saturation constant</i> – the value of <span class=mi></span><i><span
+
constant</i> – the value of </span><span class=mi></span><i><span
style='font-size:15.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
+
style='font-size:16.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
 
role=math style='display:inline-block' id=MathJax-Span-99><span
 
role=math style='display:inline-block' id=MathJax-Span-99><span
 
style='color:inherit'><span id=MathJax-Element-10-Frame><span style='display:
 
style='color:inherit'><span id=MathJax-Element-10-Frame><span style='display:
 
inline-block'><span style='clip:rect(2.035em, 1000em, 2.833em, -1000em)'><span
 
inline-block'><span style='clip:rect(2.035em, 1000em, 2.833em, -1000em)'><span
 
id=MathJax-Span-100><span id=MathJax-Span-101>s</span></span></span></i><span
 
id=MathJax-Span-100><span id=MathJax-Span-101>s</span></span></span></i><span
style='display:inline-block'></span></span></span></span></span></nobr></span>
+
style='display:inline-block'></span><span style='font-size:16.0pt;line-height:
when:                                                            </p>
+
107%'></span></span></span></span></nobr></span> when:                                             </span><span
 +
style='font-size:16.0pt;line-height:107%'>               </span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal>Bacterial  growth and utilization of substrate is depicted
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
by the Monod by the equation:</p>
+
  
<p class=MsoNormal><img border=0 width=600 height=75 id="Picture 27"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Bacterial  growth
src="Modelling111_files/image017.png"></p>
+
and utilization of substrate is depicted by the Monod by the equation:</span></p>
  
<p class=MsoNormal style='line-height:normal'><span style='font-size:12.0pt;
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
 +
border=0 width=600 height=75 id="Picture 27"
 +
src="Modelling222_files/image016.png"></span></p>
 +
 
 +
<p class=MsoNormal style='line-height:normal'><span style='font-size:16.0pt;
 
font-family:"Times New Roman",serif'>where </span><i><span style='font-size:
 
font-family:"Times New Roman",serif'>where </span><i><span style='font-size:
15.0pt;font-family:"MathJax_Math",serif'>Y</span></i><span style='font-size:
+
16.0pt;font-family:"MathJax_Math",serif'>Y</span></i><span style='font-size:
12.0pt;font-family:"Times New Roman",serif'> is known as the <i>yield constant</i>.</span></p>
+
16.0pt;font-family:"Times New Roman",serif'> is known as the <i>yield constant</i>.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Here</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Here</span></p>
  
<p class=MsoNormal><img border=0 width=253 height=66 id="Picture 20"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
src="Modelling111_files/image018.png"></p>
+
 
 +
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
 +
border=0 width=253 height=66 id="Picture 20"
 +
src="Modelling222_files/image017.png"></span></p>
  
<p class=MsoNormal>In the chemostat fresh growth medium is added into the
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>In the
vessel at a <i>steady flow-rate</i> (<span class=mi></span><i><span
+
chemostat fresh growth medium is added into the vessel at a <i>steady flow-rate</i>
style='font-size:15.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
+
(</span><span class=mi></span><i><span style='font-size:16.0pt;line-height:
role=math style='display:inline-block' id=MathJax-Span-180><span
+
107%;font-family:"MathJax_Math",serif'><nobr><span role=math style='display:
style='color:inherit'><span id=MathJax-Element-19-Frame><span style='display:
+
inline-block' id=MathJax-Span-180><span style='color:inherit'><span
inline-block'><span style='clip:rect(1.797em, 1000em, 2.823em, -1000em)'><span
+
id=MathJax-Element-19-Frame><span style='display:inline-block'><span
id=MathJax-Span-181><span id=MathJax-Span-182>F<span style='display:inline-block;
+
style='clip:rect(1.797em, 1000em, 2.823em, -1000em)'><span id=MathJax-Span-181><span
overflow:hidden'></span></i></span></span></span></span></span></span></span></nobr></span>)
+
id=MathJax-Span-182>F<span style='display:inline-block;overflow:hidden'></span></i></span><span
 +
style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></nobr></span>)
 
and culture liquid exits at the same rate and the growth medium is uniformly
 
and culture liquid exits at the same rate and the growth medium is uniformly
 
dispersed. The rate of nutrient is exchange is given by the <i>dilution rate</i>
 
dispersed. The rate of nutrient is exchange is given by the <i>dilution rate</i>
(<span class=mi></span><i><span style='font-size:15.0pt;line-height:107%;
+
(</span><span class=mi></span><i><span style='font-size:16.0pt;line-height:
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
+
107%;font-family:"MathJax_Math",serif'><nobr><span role=math style='display:
id=MathJax-Span-183><span style='color:inherit'><span
+
inline-block' id=MathJax-Span-183><span style='color:inherit'><span
 
id=MathJax-Element-20-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-20-Frame><span style='display:inline-block'><span
 
style='clip:rect(1.794em, 1000em, 2.823em, -1000em)'><span id=MathJax-Span-184><span
 
style='clip:rect(1.794em, 1000em, 2.823em, -1000em)'><span id=MathJax-Span-184><span
id=MathJax-Span-185>D</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></nobr></span>):</p>
+
id=MathJax-Span-185>D</span></span></span></i><span style='display:inline-block'></span><span
 +
style='font-size:16.0pt;line-height:107%'></span></span></span></span></nobr></span>):</span></p>
  
<p class=MsoNormal><img border=0 width=602 height=63 id="Picture 28"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image019.jpg"></p>
+
border=0 width=602 height=63 id="Picture 28"
 +
src="Modelling222_files/image018.jpg"></span></p>
  
<p class=MsoNormal>Assuming every organism will have an equal probability of
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Assuming every
leaving the vessel within a given time. The <i>wash-out rate</i> (rate in which
+
organism will have an equal probability of leaving the vessel within a given
organism initially present in the vessel will be washed out) can be expressed
+
time. The <i>wash-out rate</i> (rate in which organism initially present in the
as:</p>
+
vessel will be washed out) can be expressed as:</span></p>
  
<p class=MsoNormal><img border=0 width=602 height=65 id="Picture 29"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image020.jpg"></p>
+
border=0 width=602 height=65 id="Picture 29"
 +
src="Modelling222_files/image019.jpg"></span></p>
  
<p>where <span class=mi><nobr><span role=math style='display:inline-block'
+
<p><span style='font-size:16.0pt'>where </span><span class=mi><nobr><span role=math
id=MathJax-Span-226><i><span style='font-size:15.0pt;font-family:"MathJax_Math",serif'><span
+
style='display:inline-block' id=MathJax-Span-226><i><span style='font-size:
style='display:inline-block'><span id=MathJax-Element-23-Frame><span
+
16.0pt;font-family:"MathJax_Math",serif'><span style='display:inline-block'><span
style='clip:rect(2.035em, 1000em, 2.834em, -1000em)'><span id=MathJax-Span-227><span
+
id=MathJax-Element-23-Frame><span style='clip:rect(2.035em, 1000em, 2.834em, -1000em)'><span
id=MathJax-Span-228>x</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-227><span id=MathJax-Span-228>x</span></span></span></i><span
is the concentration of organisms in the vessel</p>
+
style='display:inline-block'></span><span style='font-size:16.0pt'></span></span></span></span></nobr></span>
 +
is the concentration of organisms in the vessel</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-size:12.0pt;font-family:"Times New Roman",serif'>&nbsp;</span></p>
+
normal'><span style='font-size:16.0pt;font-family:"Times New Roman",serif'>&nbsp;</span></p>
  
<p class=MsoNormal style='line-height:normal'><b><span style='font-size:12.0pt;
+
<p class=MsoNormal style='line-height:normal'><b><span style='font-size:16.0pt;
font-family:"Times New Roman",serif'>1. Changes in concentration of organism</span></b></p>
+
font-family:"Times New Roman",serif;color:#00B050'>1. Changes in concentration
 +
of organism</span></b></p>
  
<p class=MsoNormal style='line-height:normal'><span style='font-size:12.0pt;
+
<p class=MsoNormal style='line-height:normal'><span style='font-size:16.0pt;
 
font-family:"Times New Roman",serif'>In a continuous culture, combining growth (1)
 
font-family:"Times New Roman",serif'>In a continuous culture, combining growth (1)
 
and washout rate (5) we have the net rate of increase is therefore:</span></p>
 
and washout rate (5) we have the net rate of increase is therefore:</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><img border=0 width=595 height=49 id="Picture 39"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image021.jpg"></p>
+
border=0 width=595 height=49 id="Picture 39"
 +
src="Modelling222_files/image020.jpg"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><img border=0 width=601 height=70 id="Picture 30"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image022.jpg"></p>
+
border=0 width=601 height=70 id="Picture 30"
 +
src="Modelling222_files/image021.jpg"></span></p>
  
<p><b>2. Changes in substrate concentration</b></p>
+
<p><b><span style='font-size:16.0pt;color:#00B050'>2. Changes in substrate
 +
concentration</span></b></p>
  
<p>Assuming  substrate enters the vessel at a concentration <span class=mi><nobr><span
+
<p><span style='font-size:16.0pt'>Assuming  substrate enters the vessel at a
role=math style='display:inline-block' id=MathJax-Span-347><i><span
+
concentration </span><span class=mi><nobr><span role=math style='display:inline-block'
style='font-size:15.0pt;font-family:"MathJax_Math",serif'><span
+
id=MathJax-Span-347><i><span style='font-size:16.0pt;font-family:"MathJax_Math",serif'><span
 
style='display:inline-block'><span id=MathJax-Element-33-Frame><span
 
style='display:inline-block'><span id=MathJax-Element-33-Frame><span
 
style='clip:rect(1.484em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-348><span
 
style='clip:rect(1.484em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-348><span
 
id=MathJax-Span-349><span style='display:inline-block'><span style='clip:rect(3.097em, 1000em, 4.169em, -1000em)'><span
 
id=MathJax-Span-349><span style='display:inline-block'><span style='clip:rect(3.097em, 1000em, 4.169em, -1000em)'><span
id=MathJax-Span-350>S<span style='display:inline-block;overflow:hidden'></span></i></span><span
+
id=MathJax-Span-350>S</span></span><span id=MathJax-Span-351><span
class=mi></span><i><span style='font-size:10.5pt;font-family:"MathJax_Math",serif'></span></span><span
+
id=MathJax-Span-352><span id=MathJax-Span-353>i</span><span
id=MathJax-Span-351><span id=MathJax-Span-352><span id=MathJax-Span-353>i</span><span
+
id=MathJax-Span-354>n</span></span></span></i></span></span><span
id=MathJax-Span-354>n</span></span></span></i></span></span></span></span></span></span></span></span></nobr></span>,
+
style='display:inline-block'><span style='font-size:16.0pt'></span></span></span></span></span></span></span></nobr></span>,
 
consumed by the bacterial cell in the vessel and then exits the vessel at
 
consumed by the bacterial cell in the vessel and then exits the vessel at
concentration <span class=mi><nobr><span role=math style='display:inline-block'
+
concentration </span><span class=mi><nobr><span role=math style='display:inline-block'
id=MathJax-Span-355><i><span style='font-size:15.0pt;font-family:"MathJax_Math",serif'><span
+
id=MathJax-Span-355><i><span style='font-size:16.0pt;font-family:"MathJax_Math",serif'><span
 
style='display:inline-block'><span id=MathJax-Element-34-Frame><span
 
style='display:inline-block'><span id=MathJax-Element-34-Frame><span
 
style='clip:rect(1.484em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-356><span
 
style='clip:rect(1.484em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-356><span
 
id=MathJax-Span-357><span style='display:inline-block'><span style='clip:rect(3.097em, 1000em, 4.169em, -1000em)'><span
 
id=MathJax-Span-357><span style='display:inline-block'><span style='clip:rect(3.097em, 1000em, 4.169em, -1000em)'><span
id=MathJax-Span-358>S<span style='display:inline-block;overflow:hidden'></span></i></span><span
+
id=MathJax-Span-358>S</span></span><span id=MathJax-Span-359><span
class=mi></span><i><span style='font-size:10.5pt;font-family:"MathJax_Math",serif'></span></span><span
+
id=MathJax-Span-360><span id=MathJax-Span-361>o</span><span
id=MathJax-Span-359><span id=MathJax-Span-360><span id=MathJax-Span-361>o</span><span
+
id=MathJax-Span-362>u</span><span id=MathJax-Span-363>t</span></span></span></i></span></span><span
id=MathJax-Span-362>u</span><span id=MathJax-Span-363>t</span></span></span></i></span></span></span></span></span></span></span></span></nobr></span>.
+
style='display:inline-block'><span style='font-size:16.0pt'></span></span></span></span></span></span></span></nobr></span>.
The net rate of change is therefore:</p>
+
The net rate of change is therefore:</span></p>
  
<p class=MsoNormal><img border=0 width=414 height=87 id="Picture 35"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image023.png"></p>
+
border=0 width=414 height=87 id="Picture 35"
 +
src="Modelling222_files/image022.png"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><img border=0 width=602 height=226 id="Picture 32"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image024.jpg"></p>
+
border=0 width=602 height=226 id="Picture 32"
 +
src="Modelling222_files/image023.jpg"></span></p>
  
<p class=MsoNormal>When <span class=mi></span><i><span style='font-size:10.5pt;
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
line-height:107%;font-family:"MathJax_Math",serif'><nobr><span role=math
+
 
style='display:inline-block' id=MathJax-Span-545><span style='color:inherit'><span
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
 +
 
 +
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>When </span><span
 +
class=mi></span><i><span style='font-size:16.0pt;line-height:107%;font-family:
 +
"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 +
id=MathJax-Span-545><span style='color:inherit'><span
 
id=MathJax-Element-45-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-45-Frame><span style='display:inline-block'><span
 
style='clip:rect(1.272em, 1000em, 2.951em, -1000em)'><span id=MathJax-Span-546><span
 
style='clip:rect(1.272em, 1000em, 2.951em, -1000em)'><span id=MathJax-Span-546><span
Line 576: Line 598:
 
id=MathJax-Span-550>x</span></span></span><span style='clip:rect(3.311em, 1000em, 4.155em, -1000em)'><span
 
id=MathJax-Span-550>x</span></span></span><span style='clip:rect(3.311em, 1000em, 4.155em, -1000em)'><span
 
id=MathJax-Span-551><span id=MathJax-Span-552>/d</span><span
 
id=MathJax-Span-551><span id=MathJax-Span-552>/d</span><span
id=MathJax-Span-553>t</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-553>t</span></span></span></i><span style='display:inline-block'></span><span
and <span class=mi></span><i><span style='font-size:10.5pt;line-height:107%;
+
style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></span></span></nobr></span>
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
+
and </span><span class=mi></span><i><span style='font-size:16.0pt;line-height:
id=MathJax-Span-554><span style='color:inherit'><span
+
107%;font-family:"MathJax_Math",serif'><nobr><span role=math style='display:
 +
inline-block' id=MathJax-Span-554><span style='color:inherit'><span
 
id=MathJax-Element-46-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-46-Frame><span style='display:inline-block'><span
 
style='clip:rect(1.273em, 1000em, 2.951em, -1000em)'><span id=MathJax-Span-555><span
 
style='clip:rect(1.273em, 1000em, 2.951em, -1000em)'><span id=MathJax-Span-555><span
Line 586: Line 609:
 
id=MathJax-Span-559>s</span></span></span><span style='clip:rect(3.311em, 1000em, 4.155em, -1000em)'><span
 
id=MathJax-Span-559>s</span></span></span><span style='clip:rect(3.311em, 1000em, 4.155em, -1000em)'><span
 
id=MathJax-Span-560><span id=MathJax-Span-561>/d</span><span
 
id=MathJax-Span-560><span id=MathJax-Span-561>/d</span><span
id=MathJax-Span-562>t</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-562>t</span></span></span></i><span style='display:inline-block'></span><span
 +
style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></span></span></nobr></span>
 
is 0, the system is said to be in a ‘steady state’ because the concentration of
 
is 0, the system is said to be in a ‘steady state’ because the concentration of
 
organism and substrate within the continuous culture is kept constant. The
 
organism and substrate within the continuous culture is kept constant. The
values of steady state <span class=mi></span><i><span style='font-size:15.0pt;
+
values of steady state </span><span class=mi></span><i><span style='font-size:
line-height:107%;font-family:"MathJax_Math",serif'><nobr><span role=math
+
16.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span role=math
 
style='display:inline-block' id=MathJax-Span-563><span style='color:inherit'><span
 
style='display:inline-block' id=MathJax-Span-563><span style='color:inherit'><span
 
id=MathJax-Element-47-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-47-Frame><span style='display:inline-block'><span
 
style='clip:rect(2.035em, 1000em, 2.834em, -1000em)'><span id=MathJax-Span-564><span
 
style='clip:rect(2.035em, 1000em, 2.834em, -1000em)'><span id=MathJax-Span-564><span
id=MathJax-Span-565>x</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-565>x</span></span></span></i><span style='display:inline-block'></span><span
and <span class=mi></span><i><span style='font-size:15.0pt;line-height:107%;
+
style='font-size:16.0pt;line-height:107%'></span></span></span></span></nobr></span>
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
+
and </span><span class=mi></span><i><span style='font-size:16.0pt;line-height:
id=MathJax-Span-566><span style='color:inherit'><span
+
107%;font-family:"MathJax_Math",serif'><nobr><span role=math style='display:
 +
inline-block' id=MathJax-Span-566><span style='color:inherit'><span
 
id=MathJax-Element-48-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-48-Frame><span style='display:inline-block'><span
 
style='clip:rect(2.035em, 1000em, 2.833em, -1000em)'><span id=MathJax-Span-567><span
 
style='clip:rect(2.035em, 1000em, 2.833em, -1000em)'><span id=MathJax-Span-567><span
id=MathJax-Span-568>s</span></span></span></i><span style='display:inline-block'></span></span></span></span></span></nobr></span>,
+
id=MathJax-Span-568>s</span></span></span></i><span style='display:inline-block'></span><span
 +
style='font-size:16.0pt;line-height:107%'></span></span></span></span></nobr></span>,
 
designated as <em><span style='font-family:"Calibri",sans-serif'></span><span
 
designated as <em><span style='font-family:"Calibri",sans-serif'></span><span
 
style='color:inherit'><span id=MathJax-Element-49-Frame><nobr><span role=math
 
style='color:inherit'><span id=MathJax-Element-49-Frame><nobr><span role=math
Line 607: Line 633:
 
id=MathJax-Span-571><span id=MathJax-Span-572><span id=MathJax-Span-573><span
 
id=MathJax-Span-571><span id=MathJax-Span-572><span id=MathJax-Span-573><span
 
style='display:inline-block'><span style='clip:rect(3.36em, 1000em, 4.158em, -1000em)'><span
 
style='display:inline-block'><span style='clip:rect(3.36em, 1000em, 4.158em, -1000em)'><span
id=MathJax-Span-574>x~ and s~</span></em> are expressed as:</p>
+
id=MathJax-Span-574>x~ and s~</span></em> are expressed as:</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><img border=0 width=602 height=125 id="Picture 33"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image025.jpg"></p>
+
border=0 width=602 height=125 id="Picture 33"
 +
src="Modelling222_files/image024.jpg"></span></p>
  
<p class=MsoNormal>So the two parameters D and <span class=mi></span><i><span
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>So the two parameters
style='font-size:15.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
+
D and </span><span class=mi></span><i><span style='font-size:16.0pt;line-height:
role=math style='display:inline-block' id=MathJax-Span-686><span
+
107%;font-family:"MathJax_Math",serif'><nobr><span role=math style='display:
style='color:inherit'><span id=MathJax-Element-54-Frame><span style='display:
+
inline-block' id=MathJax-Span-686><span style='color:inherit'><span
inline-block'><span style='clip:rect(1.484em, 1000em, 2.692em, -1000em)'><span
+
id=MathJax-Element-54-Frame><span style='display:inline-block'><span
id=MathJax-Span-687><span id=MathJax-Span-688><span style='display:inline-block'><span
+
style='clip:rect(1.484em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-687><span
style='clip:rect(3.097em, 1000em, 4.169em, -1000em)'><span id=MathJax-Span-689>S<span
+
id=MathJax-Span-688><span style='display:inline-block'><span style='clip:rect(3.097em, 1000em, 4.169em, -1000em)'><span
style='display:inline-block;overflow:hidden'></span></i></span><span class=mi></span><i><span
+
id=MathJax-Span-689>S</span></span><span id=MathJax-Span-690><span
style='font-size:10.5pt;line-height:107%;font-family:"MathJax_Math",serif'></span></span><span
+
id=MathJax-Span-691><span id=MathJax-Span-692>i</span><span
id=MathJax-Span-690><span id=MathJax-Span-691><span id=MathJax-Span-692>i</span><span
+
id=MathJax-Span-693>n</span></span></span></i></span></span><span
id=MathJax-Span-693>n</span></span></span></i></span></span></span></span></span></span></span></span></nobr></span>
+
style='display:inline-block'><span style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></span></nobr></span>
 
control the steady state within the chemostat. Since we have been also using
 
control the steady state within the chemostat. Since we have been also using
 
E.coli for SDS degradation we use values constants of (growth constant <span
 
E.coli for SDS degradation we use values constants of (growth constant <span
Line 631: Line 658:
 
id=MathJax-Span-695><span id=MathJax-Span-696><span style='display:inline-block'><span
 
id=MathJax-Span-695><span id=MathJax-Span-696><span style='display:inline-block'><span
 
style='clip:rect(3.36em, 1000em, 4.363em, -1000em)'><span id=MathJax-Span-697><span
 
style='clip:rect(3.36em, 1000em, 4.363em, -1000em)'><span id=MathJax-Span-697><span
id=MathJax-Span-698><span id=MathJax-Span-699>)<span class=mo><i><span
+
id=MathJax-Span-698><span id=MathJax-Span-699>) </span><span class=mo><i><span
style='font-size:15.0pt;line-height:107%;font-family:"MathJax_Math",serif'>&#956;</span></span></i></span></span></span><span
+
style='font-size:16.0pt;line-height:107%;font-family:"MathJax_Math",serif'>&#956;</span></span></i></span></span></span><span
class=mi><i><span style='font-size:10.5pt;line-height:107%;font-family:"MathJax_Math",serif'></span><span
+
class=mi><i><span style='font-size:16.0pt;line-height:107%;font-family:"MathJax_Math",serif'></span><span
 
id=MathJax-Span-700><span id=MathJax-Span-701><span id=MathJax-Span-702>m</span><span
 
id=MathJax-Span-700><span id=MathJax-Span-701><span id=MathJax-Span-702>m</span><span
id=MathJax-Span-703>a</span><span id=MathJax-Span-704>x</span></span></span></i></span></span></span></span></span></span></span></span></nobr></span>,
+
id=MathJax-Span-703>a</span><span id=MathJax-Span-704>x</span></span></span></i></span></span><span
<span class=mi></span><i><span style='font-size:15.0pt;line-height:107%;
+
style='display:inline-block'><span style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></span></nobr></span>,
 +
</span><span class=mi></span><i><span style='font-size:16.0pt;line-height:107%;
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
 
id=MathJax-Span-705><span style='color:inherit'><span
 
id=MathJax-Span-705><span style='color:inherit'><span
Line 642: Line 670:
 
style='clip:rect(1.506em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-706><span
 
style='clip:rect(1.506em, 1000em, 2.692em, -1000em)'><span id=MathJax-Span-706><span
 
id=MathJax-Span-707><span style='display:inline-block'><span style='clip:rect(3.119em, 1000em, 4.147em, -1000em)'><span
 
id=MathJax-Span-707><span style='display:inline-block'><span style='clip:rect(3.119em, 1000em, 4.147em, -1000em)'><span
id=MathJax-Span-708>K<span style='display:inline-block;overflow:hidden'></span></i></span><span
+
id=MathJax-Span-708>K</span></span><span id=MathJax-Span-709>s</span></span><span
class=mi></span><i><span style='font-size:10.5pt;line-height:107%;font-family:
+
style='display:inline-block'></i></span><span style='font-size:16.0pt;
"MathJax_Math",serif'></span></span><span id=MathJax-Span-709>s</span></span></i><span
+
line-height:107%'></span></span></span></span></span></span></span></nobr></span>
style='display:inline-block'></span></span></span></span></span></span></span></span></nobr></span>
+
and </span><span class=mi></span><i><span style='font-size:16.0pt;line-height:
and <span class=mi></span><i><span style='font-size:15.0pt;line-height:107%;
+
107%;font-family:"MathJax_Math",serif'><nobr><span role=math style='display:
font-family:"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
+
inline-block' id=MathJax-Span-710><span style='color:inherit'><span
id=MathJax-Span-710><span style='color:inherit'><span
+
 
id=MathJax-Element-57-Frame><span style='display:inline-block'><span
 
id=MathJax-Element-57-Frame><span style='display:inline-block'><span
 
style='clip:rect(1.794em, 1000em, 2.822em, -1000em)'><span id=MathJax-Span-711><span
 
style='clip:rect(1.794em, 1000em, 2.822em, -1000em)'><span id=MathJax-Span-711><span
id=MathJax-Span-712>Y<span style='display:inline-block;overflow:hidden'></span></i></span></span></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-712>Y<span style='display:inline-block;overflow:hidden'></span></i></span><span
same as used by team iGEM Manchester 2017</p>
+
style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></nobr></span>
 +
same as used by team iGEM Manchester 2017.</span></p>
  
<p class=MsoNormal><img border=0 width=602 height=259 id="Picture 34"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
src="Modelling111_files/image026.jpg"></p>
+
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal align=center style='text-align:center'><span
 +
style='font-size:16.0pt;line-height:107%'>We use values of these constants as
 +
referenced here by iGEM Manchester 2017.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal align=center style='text-align:center'><span
 +
style='font-size:16.0pt;line-height:107%'><img border=0 width=602 height=259
 +
id="Picture 34" src="Modelling222_files/image025.jpg"></span></p>
  
<p class=MsoNormal>Finally output is modelled through the equation:</p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><img border=0 width=414 height=87 id="Picture 36"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
src="Modelling111_files/image023.png"></p>
+
  
<p class=MsoNormal>So there two design parameters in our bioreactor design
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Finally
model required for consideration. <span class=mi></span><i><span
+
output is modelled through the equation:</span></p>
style='font-size:13.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
+
 
role=math style='display:inline-block' id=MathJax-Span-1045><span
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
style='color:inherit'><span id=MathJax-Element-71-Frame><span style='display:
+
border=0 width=414 height=87 id="Picture 36"
inline-block'><span style='clip:rect(1.705em, 1000em, 2.7em, -1000em)'><span
+
src="Modelling222_files/image022.png"></span></p>
id=MathJax-Span-1046><span id=MathJax-Span-1047>D</span></span></span></i><span
+
 
style='display:inline-block'></span></span></span></span></span></nobr></span>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>So there two
(<i>dilution rate</i>) and <span class=mi></span><i><span style='font-size:
+
design parameters in our bioreactor design model required for consideration. </span><span
13.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span role=math
+
class=mi></span><i><span style='font-size:16.0pt;line-height:107%;font-family:
style='display:inline-block' id=MathJax-Span-1048><span style='color:inherit'><span
+
"MathJax_Math",serif'><nobr><span role=math style='display:inline-block'
id=MathJax-Element-72-Frame><span style='display:inline-block'><span
+
id=MathJax-Span-1045><span style='color:inherit'><span
style='clip:rect(1.32em, 1000em, 2.494em, -1000em)'><span id=MathJax-Span-1049><span
+
id=MathJax-Element-71-Frame><span style='display:inline-block'><span
id=MathJax-Span-1050><span style='display:inline-block'><span style='clip:rect(3.137em, 1000em, 4.176em, -1000em)'><span
+
style='clip:rect(1.705em, 1000em, 2.7em, -1000em)'><span id=MathJax-Span-1046><span
id=MathJax-Span-1051>S<span style='display:inline-block;overflow:hidden'></span></i></span><span
+
id=MathJax-Span-1047>D</span></span></span></i><span style='display:inline-block'></span><span
class=mi></span><i><span style='font-size:9.0pt;line-height:107%;font-family:
+
style='font-size:16.0pt;line-height:107%'></span></span></span></span></nobr></span>
"MathJax_Math",serif'></span></span><span id=MathJax-Span-1052><span
+
(<i>dilution rate</i>) and </span><span class=mi></span><i><span
 +
style='font-size:16.0pt;line-height:107%;font-family:"MathJax_Math",serif'><nobr><span
 +
role=math style='display:inline-block' id=MathJax-Span-1048><span
 +
style='color:inherit'><span id=MathJax-Element-72-Frame><span style='display:
 +
inline-block'><span style='clip:rect(1.32em, 1000em, 2.494em, -1000em)'><span
 +
id=MathJax-Span-1049><span id=MathJax-Span-1050><span style='display:inline-block'><span
 +
style='clip:rect(3.137em, 1000em, 4.176em, -1000em)'><span
 +
id=MathJax-Span-1051>S</span></span><span id=MathJax-Span-1052><span
 
id=MathJax-Span-1053><span id=MathJax-Span-1054>i</span><span
 
id=MathJax-Span-1053><span id=MathJax-Span-1054>i</span><span
id=MathJax-Span-1055>n</span></span></span></i></span></span></span></span></span></span></span></span></nobr></span>
+
id=MathJax-Span-1055>n</span></span></span></i></span></span><span
(<i>initial substrate concentration</i>)</p>
+
style='display:inline-block'><span style='font-size:16.0pt;line-height:107%'></span></span></span></span></span></span></span></nobr></span>
 +
(<i>initial substrate concentration</i>)</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
 
<p class=MsoNormal style='line-height:normal'><span style='font-size:16.0pt;
 
<p class=MsoNormal style='line-height:normal'><span style='font-size:16.0pt;
Line 697: Line 735:
 
molasses.</span></p>
 
molasses.</span></p>
  
<p style='margin-left:30.0pt'>-Molasses cost $0.07/kg</p>
+
<p style='margin-left:30.0pt'><span style='font-size:16.0pt'>-Molasses cost
 +
$0.07/kg</span></p>
  
<p style='margin-left:30.0pt'>-The density of molasses is roughly 1.4 kg/L</p>
+
<p style='margin-left:30.0pt'><span style='font-size:16.0pt'>-The density of
 +
molasses is roughly 1.4 kg/L</span></p>
  
<p style='margin-left:30.0pt'>-Therefore, 1 L of molasses will cost $0.07 x 1.4
+
<p style='margin-left:30.0pt'><span style='font-size:16.0pt'>-Therefore, 1 L of
= $0.098</p>
+
molasses will cost $0.07 x 1.4 = $0.098</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><img border=0 width=438 height=66 id="Picture 37"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image027.png"></p>
+
border=0 width=438 height=66 id="Picture 37"
 +
src="Modelling222_files/image026.png"></span></p>
  
<p class=MsoNormal><img border=0 width=433 height=148 id="Picture 38"
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'><img
src="Modelling111_files/image028.png"></p>
+
border=0 width=433 height=148 id="Picture 38"
 +
src="Modelling222_files/image027.png"></span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Dodecanol
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>1-Dodecanol
 
manufactured by conventional methods usually is contaminated by long carbon
 
manufactured by conventional methods usually is contaminated by long carbon
chain compounds, hence are associated with expensive purification  costs.The
+
chain compounds, hence are associated with expensive purification costs. The
 
low downstream processing costs of our final product 1-dodecanol obtained from
 
low downstream processing costs of our final product 1-dodecanol obtained from
 
bacterial degradation of SDS may help us cut down our costs, hence this could
 
bacterial degradation of SDS may help us cut down our costs, hence this could
 
lead to development of economically viable product.</span></p>
 
lead to development of economically viable product.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>So based our
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>So based our
 
model we get the necessary cost for production of 1 kg of E.coli that would be
 
model we get the necessary cost for production of 1 kg of E.coli that would be
 
needed for SDS degradation.</span></p>
 
needed for SDS degradation.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Also market
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>Also market
 
price of detergent grade SDS is about Rs 160/kg = $2.18</span></p>
 
price of detergent grade SDS is about Rs 160/kg = $2.18</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>     And price
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'> And price
of of 1-dodecanol (98%) is about Rs 9070/kg =</span></p>
+
of of 1-dodecanol (98%) is about Rs 9070/kg =123.3</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>Based on
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
these rough estimate of prices we can estimate our yearly cost of operation.</span></p>
+
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%;color:#1F4E79'>Based
 +
on these rough estimate of prices we can estimate our yearly cost of operation.</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
+
<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
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<p class=MsoNormal><span style='font-size:16.0pt;line-height:107%'>&nbsp;</span></p>
  
<p class=MsoNormal><i><span style='font-size:14.0pt;line-height:107%'>References:</span></i></p>
+
<p class=MsoNormal><span style='font-size:20.0pt;line-height:107%;color:#C00000'>___________________________________________________________________________________________________________________________</span></p>
  
<p class=MsoNormal>Towards the Identification of Type II Secretion Signals in a
+
<p class=MsoNormal><i><span style='font-size:48.0pt;line-height:107%;
Nonacylated Variant of Pullulanase from <i>Klebsiella oxytoca</i> (2005),
+
color:#C55A11'>References:</span></i></p>
Olivera Franceti&#263; and Anthony P. Pugsley.</p>
+
  
<p class=MsoNormal>Guy-Bart Stan. Modelling in Biology. Lecture notes, 2017. </p>
+
<p class=MsoNormal><span class=MsoSubtleEmphasis>*Towards the Identification of
 +
Type II Secretion Signals in a Nonacylated Variant of Pullulanase from Klebsiella
 +
oxytoca (2005), Olivera Franceti&#263; and Anthony P. Pugsley.</span></p>
  
<p class=MsoNormal>http://www.bg.ic.ac.uk/research/g.stan/2010_Course_MiB_article.pdf,
+
<p class=MsoNormal><span class=MsoSubtleEmphasis>*http://www.bg.ic.ac.uk/research/g.stan/2010_Course_MiB_article.pdf,
Accessed 04/08/2017.</p>
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Accessed 04/08/2017.</span></p>
 
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<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
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<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
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normal'><span style='font-family:"Calibri Light",sans-serif'>American Journal
+
of Analytical Chemistry,2014, 5, 8-16</span></p>
+
 
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<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
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normal'><span style='font-family:"Calibri Light",sans-serif'>Published Online
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January 2014 (http://www.scirp.org/journal/ajac) http://dx.doi.org/10.4236/ajac.2014.51002</span></p>
+
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-family:"Calibri Light",sans-serif'>OPEN ACCESS AJAC Commercial
+
normal'><span class=MsoSubtleEmphasis>*</span><span class=MsoSubtleEmphasis>Commercial
 
Laundry Water CharacterisationJ. K. Braga*, M. B. A. Varesche</span></p>
 
Laundry Water CharacterisationJ. K. Braga*, M. B. A. Varesche</span></p>
  
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-family:"Calibri Light",sans-serif'>Department of
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normal'><span class=MsoSubtleEmphasis>Department of Hydraulics and Sanitation,
Hydraulics and Sanitation, Engineering School of São Carlos, São Paulo
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Engineering School of São Carlos, São Paulo University, </span></p>
University, </span></p>
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<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
 
<p class=MsoNormal style='margin-bottom:0cm;margin-bottom:.0001pt;line-height:
normal'><span style='font-family:"Calibri Light",sans-serif'>São Carlos, Brazil</span></p>
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normal'><span class=MsoSubtleEmphasis>São Carlos, Brazil</span></p>
  
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
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<p class=MsoNormal><span class=MsoSubtleEmphasis>*Guy-Bart Stan. Modelling in
 +
Biology. Lecture notes, 2017. </span></p>
  
<p class=MsoNormal><span style='font-size:12.0pt;line-height:107%'>https://math.la.asu.edu/~halsmith/bacteriagrow.pdf</span></p>
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<p class=MsoNormal><span class=MsoSubtleEmphasis>*https://math.la.asu.edu/~halsmith/bacteriagrow.pdf</span></p>
  
 
<p class=MsoNormal><span style='font-size:14.0pt;line-height:107%'>&nbsp;</span></p>
 
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Revision as of 01:22, 18 October 2018

Modelling

Overview

Mathematical modelling is fundamental to synthetic biology, a tool that allows for deeper understanding of biological systems, acting as a link between the conception and the physical realisation of a biological circuit. Being able stimulate and understand our system behaviour before actual implementation saves both time and resources.

 

 

Through our modelling we tried to gain insight into our system so that we could improve it and make it realistically achievable.

We tried to describe the whole system with a mathematical system of linear ODEs which could characterizes the expression and secretion of all enzymes, the associated substrate – enzyme kinetics.

In order to realize the long term goal of developing a detergent biodegradation device for household and commercial use we tried to implement continuous culture modelling on our bioreactor design in order to estimate yearly cost of detergent biodegradation.

 

 

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Single Cell Modelling

https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44177337_161118344832834_5155785162818060288_n.png?_nc_cat=110&oh=9e7779a555a3f3b881a5adfaa566230f&oe=5C581588

Allows to model our gene regulatory network (GRN) and the extracellular secretion of our enzyme alkyl sulfatase (SdsA1).

This model helped us gain insight into our system in order to understand dependence of rate of secretion of alkyl sulfatase in media under varying promoter strengths and secretion efficiencies due to the different secretion extracellular secretion tags PelB and OmpT.

Our model is based on overexpression of alkyl sulfatase under constitutive promoters from Anderson promoter collection in iGEM  registry. The concentration of our enzyme SdsA1 is then predicted using the rates of transcription, translation and degradation (of both mRNA and protein) that are known in literature.

Since under a constitutive gene expression is unregulated, it is always on and its strength could be modelled through the transcription rate constant k1.

 

 

Using the law of mass action

 

 

Transcription rate k1 is estimated from literature.

 

Translation rate k2 is estimated from the literature

 

mRNA degradation (d1) and Protein degradation rate (d2) are known for Ecoli through literature.

 

 

 

 

Since SdsA1 (alkyl sulfatase) a extracellular enzyme, it was essential to understand effect of secretion efficiencies of our enzyme from Ecoli cells, in order to determine concentration of SdsA1 in the media, which would be needed to model our enzyme substrate kinetics in order to understand SDS(Sodium Dodecyl Sulfate ) degradation.

We tried to model our protein secretion using a empirical secretion law used by iGEM Stuttgart 2017 team.

  

https://static.igem.org/mediawiki/2017/3/31/Secretion.png

 

rsecretion : secretion rate

[enzyme] : enzyme concentration

s : secretion efficiency

t : time

Here the secretion efficiency is a value between zero and one .

 

 

Since reliable data on expression of SdsA1 and its extracellular expression in Ecoli was not available we concluded that our model could only provide a qualitative understanding various factors on these.

 

 

 

https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44185937_2064200740556003_6694159164534423552_n.png?_nc_cat=105&oh=040a1b04709ea79fa27d8959210921b6&oe=5C482425

Fig 1.Simbiology implementation of our Model

https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44351672_551274411976028_2657043464260157440_n.png?_nc_cat=102&oh=ebd37b04550aef2d5e8d2f15364d230b&oe=5C50AC06

Fig.2 Effect of secretion efficiency on enzyme production

https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44203308_1781628528626872_7513042899114655744_n.png?_nc_cat=111&oh=9400d852e101215b021771e1a18d90f4&oe=5C3F00B1

Fig.3 Effect of promoter strength on enzyme production

 

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Enzyme Kinetics

We use the simple Michaelis-Menten formula to describe our enzymes’ kinetics.

      

Here, Vmax represents the maximum velocity achieved by the system, at maximum (saturating) substrate concentrations. KM (the Michaelis constant; sometimes represented as KS instead) is the substrate concentration at which the reaction velocity is 50% of the Vmax. [S] is the concentration of the substrate S.

Our enzyme (E) being SDS, substrate S being SdsA1 and P being our final product 1-Dodecanol.

Here k1 is rate of forward and k-1 being rate of backword reactions and k2 being rate of product formation.

In terms of specific Michaelis-Menten reaction, these constants are quoted in the literature as:

We assumed a average SDS concentration of 5-10 mg/L in domestic wastewater discharges.

 

 

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Continuous Culture Modelling

 

https://scontent-bom1-1.xx.fbcdn.net/v/t1.15752-9/44236260_489616118186439_8807087846427983872_n.png?_nc_cat=105&oh=12547d5feeea7af7a9a5ca9f30244400&oe=5C52B499

 

 

 

 

 

 

 

 

Fig4. Our SDS biodegradation chemostat illustration.

 

In order to understand if our project could be implemented in a real world we decided to check its economic sustainability by trying to estimate the yearly cost of operation of our bioreactor.

To do so we implement a model based on previous model developed by iGEM 2017 Manchester team who were trying to estimate cost of chemostat operation for cleaning Phosphate in wastewater.

The growth of bacteria in its exponential phase can be represented in the following exponential growth equation:

where:
x is the bacteria concentration (dry weight mass/unit volume) at time t
μ is the specific growth rate
td is the doubling time (time required for the concentration of organism to double)

Monod showed that there is a relationship between the specific growth rate and the concentration of a limiting growth substrate that can be represented in this equation:

                             

where:

s the concentration of a limiting growth substrate
μmax is the maximum growth rate (growth rate when organism is placed in excess nutrients without any limiting factors)

Ks is the saturation constant – the value of s when:                                                            

 

 

 

Bacterial  growth and utilization of substrate is depicted by the Monod by the equation:

where Y is known as the yield constant.

Here

 

In the chemostat fresh growth medium is added into the vessel at a steady flow-rate (F) and culture liquid exits at the same rate and the growth medium is uniformly dispersed. The rate of nutrient is exchange is given by the dilution rate (D):

Assuming every organism will have an equal probability of leaving the vessel within a given time. The wash-out rate (rate in which organism initially present in the vessel will be washed out) can be expressed as:

where x is the concentration of organisms in the vessel

 

 

1. Changes in concentration of organism

In a continuous culture, combining growth (1) and washout rate (5) we have the net rate of increase is therefore:

 

 

2. Changes in substrate concentration

Assuming  substrate enters the vessel at a concentration Sin, consumed by the bacterial cell in the vessel and then exits the vessel at concentration Sout. The net rate of change is therefore:

 

 

 

When dx/dt and ds/dt is 0, the system is said to be in a ‘steady state’ because the concentration of organism and substrate within the continuous culture is kept constant. The values of steady state x and s, designated as x~ and s~ are expressed as:

 

So the two parameters D and Sin control the steady state within the chemostat. Since we have been also using E.coli for SDS degradation we use values constants of (growth constant ) μmax, Ks and Y same as used by team iGEM Manchester 2017.

 

We use values of these constants as referenced here by iGEM Manchester 2017.

 

 

Finally output is modelled through the equation:

So there two design parameters in our bioreactor design model required for consideration. D (dilution rate) and Sin (initial substrate concentration)

 

Cost Estimation

In order to achieve economically viable bioreactor we need to use a cheap easily available source of growth medium like molasses.

-Molasses cost $0.07/kg

-The density of molasses is roughly 1.4 kg/L

-Therefore, 1 L of molasses will cost $0.07 x 1.4 = $0.098

 

 

1-Dodecanol manufactured by conventional methods usually is contaminated by long carbon chain compounds, hence are associated with expensive purification costs. The low downstream processing costs of our final product 1-dodecanol obtained from bacterial degradation of SDS may help us cut down our costs, hence this could lead to development of economically viable product.

 

So based our model we get the necessary cost for production of 1 kg of E.coli that would be needed for SDS degradation.

Also market price of detergent grade SDS is about Rs 160/kg = $2.18

 And price of of 1-dodecanol (98%) is about Rs 9070/kg =123.3

 

Based on these rough estimate of prices we can estimate our yearly cost of operation.

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

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References:

*Towards the Identification of Type II Secretion Signals in a Nonacylated Variant of Pullulanase from Klebsiella oxytoca (2005), Olivera Francetić and Anthony P. Pugsley.

*http://www.bg.ic.ac.uk/research/g.stan/2010_Course_MiB_article.pdf, Accessed 04/08/2017.

*Commercial Laundry Water CharacterisationJ. K. Braga*, M. B. A. Varesche

Department of Hydraulics and Sanitation, Engineering School of São Carlos, São Paulo University,

São Carlos, Brazil

*Guy-Bart Stan. Modelling in Biology. Lecture notes, 2017.

*https://math.la.asu.edu/~halsmith/bacteriagrow.pdf