Team:Tsinghua-A/Modeling

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<P><FONT FACE="Arial, sans-serif"><FONT SIZE=5 STYLE="font-size: 20pt"><SPAN LANG="en-US">Modeling
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<P ALIGN=LEFT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#548dd4"><FONT FACE="Arial Unicode MS, sans-serif"><FONT SIZE=6 STYLE="font-size: 22pt"><SPAN LANG="en-US"><B>Introduction
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Section</SPAN></FONT></FONT></P>
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to Model                        </B></SPAN></FONT></FONT></FONT><FONT COLOR="#548dd4">
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<P ALIGN=CENTER><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#99284c"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">Overview</SPAN></FONT></FONT></FONT><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US">
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<IMG SRC="https://static.igem.org/mediawiki/2011/2/2b/000.png" NAME="图形1" ALIGN=BOTTOM WIDTH=23 HEIGHT=23 BORDER=0 ISMAP></FONT><A HREF="http://www.renren.com/"><FONT COLOR="#ff950e"><I><U>Download
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</SPAN></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US">|</SPAN></FONT></FONT></FONT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US">
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the full text </U></I></FONT></A></SPAN></FONT>
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</SPAN></FONT><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P1A">Accurate
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Model</A> </SPAN></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US">|</SPAN></FONT></FONT></FONT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US">
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</SPAN></FONT><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P2A">Simplified
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Model</A> </SPAN></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US">|
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</SPAN></FONT></FONT></FONT><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P3A">Dimensionless
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Model</A> </SPAN></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US">|
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</SPAN></FONT></FONT></FONT><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P4">Quorum-sensing
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Effect</A> </SPAN></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US">|
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</SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/REF"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><SPAN LANG="en-US">Reference</SPAN></FONT></FONT></A></SPAN></FONT></P>
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<P ALIGN=CENTER><BR><BR>
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</P>
</P>
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<P ALIGN=LEFT><FONT FACE="Arial, sans-serif"><FONT SIZE=5 STYLE="font-size: 20pt"><SPAN LANG="en-US"><FONT SIZE=4 STYLE="font-size: 15pt"><I>PART
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">In
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0</I></FONT><FONT COLOR="#800080"> Intro </FONT></SPAN></FONT></FONT>
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our project, we designed a quorum-sensing oscillator which consists
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</P>
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of two types of cells. The expression of the reporter genes (GFP of
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<P STYLE="margin-left: 1.53cm"><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US">In
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one cell type and GFP of another) of the cells of the same type can
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our project, we are dedicated to design a quorum-sensing oscillator
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which consists of two types of cells. Cells of the same type can
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fluctuate synchronously and certain designs were made to adjust the
fluctuate synchronously and certain designs were made to adjust the
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phase and the amplitude of oscillation. These are the things that our
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phase and the period of oscillation.</SPAN></FONT></P>
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modeling part aims to simulate. We built and simplified our
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<P ALIGN=CENTER STYLE="text-indent: 0.74cm"><IMG SRC="https://static.igem.org/mediawiki/2011/0/03/001.png" NAME="图形2" ALIGN=BOTTOM WIDTH=511 HEIGHT=204 BORDER=0></P>
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simulation system step by step and deepened into further
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<P ALIGN=CENTER STYLE="text-indent: 0.74cm"><IMG SRC="https://static.igem.org/mediawiki/2011/b/b0/002.png" NAME="图形3" ALIGN=BOTTOM WIDTH=510 HEIGHT=173 BORDER=0></P>
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characteristics of the system, which would provide firm evidence
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<P ALIGN=LEFT>  <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">To
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proving that our design does work.</SPAN></FONT></P>
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understand the property of our system, we built a mathematical model
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<P STYLE="margin-left: 1.53cm"><BR><BR>
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based on ODEs (Ordinary Differential Equations) and DDEs (Delayed
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Differential Equations) to model and characterize this system. The
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simulation results helped us to deepen into further characteristics
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of the system.</SPAN></FONT></P>
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<P ALIGN=LEFT STYLE="text-indent: 0.74cm; border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
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<BR><BR>
</P>
</P>
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<P ALIGN=LEFT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 15pt"><I>PART
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<P ALIGN=LEFT STYLE="border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
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1</I></FONT></FONT> <FONT COLOR="#355e00"><FONT FACE="Arial, sans-serif"><FONT SIZE=5 STYLE="font-size: 20pt">Accurate
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<FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#7030a0"><FONT FACE="Arial Unicode MS, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US"><B>Original
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Model </FONT></FONT></FONT></SPAN></FONT>
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Full Model                                                         
 +
      </B></SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P1A"><FONT COLOR="#ff950e"><FONT FACE="Times New Roman, serif"><FONT SIZE=3><SPAN LANG="en-US"><I><U><SPAN STYLE="font-weight: normal">Read
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more</SPAN></U></I></SPAN></FONT></FONT></FONT></A></SPAN></FONT></P>
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<P ALIGN=LEFT><FONT COLOR="#ff0000">  <FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US"><B>Firstly</B></SPAN></FONT></FONT>
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<FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">we
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wanted to describe the system thoroughly without leaving out any
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seemingly unimportant actions and factors. As a result, the
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description of the system contains every possible mass actions as
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well as some hill kinetics, Henri-Michaelis-Menten kinetics, and the
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parameters were got from literature. The model was represented and
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simulated in the Matlab toolbox SIMBIOLOGY. We listed all 19 ODEs in
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the attached pdf file, you can see more details there.</SPAN></FONT></SPAN></FONT></P>
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<P ALIGN=LEFT STYLE="border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
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<BR><BR>
</P>
</P>
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<P ALIGN=RIGHT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#666600"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P1A">construction</A>
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<P ALIGN=LEFT STYLE="border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
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</SPAN></FONT></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">|</SPAN></FONT></FONT></FONT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US">
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<FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#7030a0"><FONT FACE="Arial Unicode MS, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US"><B>Simplified
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</SPAN></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P1B"><FONT COLOR="#666600"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">parameters</SPAN></FONT></FONT></FONT></A><FONT COLOR="#000000"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">
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DDE Model                                                           
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</SPAN></FONT></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">|
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</B></SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P2A"><FONT COLOR="#ff950e"><FONT FACE="Times New Roman, serif"><FONT SIZE=3><SPAN LANG="en-US"><I><U><SPAN STYLE="font-weight: normal">Read
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</SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P1C"><FONT COLOR="#666600"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">results</SPAN></FONT></FONT></FONT></A></SPAN></FONT></P>
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more</SPAN></U></I></SPAN></FONT></FONT></FONT></A></SPAN></FONT></P>
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<P STYLE="margin-left: 1.53cm"><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US">In
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">The
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our first step, we wanted to describe the system thoroughly without
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original model contains too many factors for analyzing the general
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leaving out any seemingly unimportant actions and factors. As a
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property of system. To understand the essential characters of the
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result, the description of the system contains every possible mass
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oscillator, we <FONT COLOR="#ff0000"><B>simplify the original model</B></FONT>
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actions as well as some hill kinetics, Henri-Michaelis-Menten. We
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according to certain appropriate assumptions, like Quasi-equilibrium
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came up a set of ODEs with 19 equations.</SPAN></FONT></P>
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for fast reactions.</SPAN></FONT></P>
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<P STYLE="margin-left: 1.53cm"><BR><BR>
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">After
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</P>
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series of derivation based on those assumptions (see the attached pdf
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<P><FONT FACE="Arial, sans-serif"><FONT SIZE=5 STYLE="font-size: 20pt"><SPAN LANG="en-US"><FONT SIZE=4 STYLE="font-size: 15pt"><I>PART
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file), we came up with the following set of DDEs (Delay Differential
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2</I></FONT> <FONT COLOR="#dc2300">Simplified Model</FONT></SPAN></FONT></FONT></P>
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Equations)</SPAN></FONT></P>
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<P ALIGN=RIGHT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P2A"><FONT COLOR="#c5000b"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">preparation</SPAN></FONT></FONT></FONT></A><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">
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<P ALIGN=CENTER><IMG SRC="https://static.igem.org/mediawiki/2011/b/b0/003.png" NAME="图形4" ALT="说明: C:\Users\Harry\AppData\Roaming\Tencent\Users\806995810\QQ\WinTemp\RichOle\RH%W~L%6JQ)ZX06RH76VYV3.jpg" ALIGN=BOTTOM WIDTH=531 HEIGHT=312 BORDER=0></P>
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</SPAN></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">|</SPAN></FONT></FONT></FONT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US">
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<P ALIGN=LEFT> <FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">We
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</SPAN></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P2B"><FONT COLOR="#c5000b"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">parameters</SPAN></FONT></FONT></FONT></A><FONT COLOR="#000000"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">
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coded the system by DDE description in MATLAB and did simulation
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</SPAN></FONT></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">|
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analysis accordingly. The result showed that the system could
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</SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P2C"><FONT COLOR="#c5000b"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">results</SPAN></FONT></FONT></FONT></A></SPAN></FONT></P>
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oscillate under certain parameters .</SPAN></FONT></SPAN></FONT></P>
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<P STYLE="margin-left: 1.53cm"><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US">Although
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<P ALIGN=CENTER><IMG SRC="https://static.igem.org/mediawiki/2011/d/d5/004.png" NAME="图形5" ALT="说明: D:\b1.bmp" ALIGN=BOTTOM WIDTH=395 HEIGHT=296 BORDER=0></P>
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ODEs provide a thorough, precise description of the whole system,
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">To
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they contain too many equations and parameters which would act as a
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further understand what parameters could make the system oscillate,
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barrier for simulation and further analysis. A simplification of
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we did bifurcation analysis on the Hill parameters. What we had to do
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complicated ODEs is necessary. We simplify every single ODE according
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was find the critical points where the system can nearly oscillate
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to certain appropriate assumptions. Finally, we came up with a set of
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but a little disruption may lead to a steady state like that:</SPAN></FONT></P>
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DDE equations.</SPAN></FONT></P>
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<P ALIGN=CENTER><IMG SRC="https://static.igem.org/mediawiki/2011/2/20/005.png" NAME="图形6" ALT="说明: C:\Users\Harry\AppData\Roaming\Tencent\Users\806995810\QQ\WinTemp\RichOle\)D6IYP[O_UD]}LB_9)SO(Q5.jpg" ALIGN=BOTTOM WIDTH=557 HEIGHT=260 BORDER=0></P>
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<P STYLE="margin-left: 1.53cm"><BR><BR>
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">Depicting
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</P>
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all those critical points, as shown in the figure, the system could
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<P><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US"><FONT SIZE=4 STYLE="font-size: 15pt"><I>PART
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oscillate when cellB&rsquo;s Hiill parameters were located in the
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3 </I></FONT><FONT COLOR="#006b6b"><FONT SIZE=5 STYLE="font-size: 20pt">Dimensionless
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<FONT COLOR="#00b0f0"><B>area</B></FONT> named <FONT COLOR="#00b0f0">&lsquo;</FONT><FONT COLOR="#00b0f0"><I><B>Bistable</B></I></FONT><FONT COLOR="#00b0f0"><B>&rsquo;</B></FONT>.</SPAN></FONT></P>
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Model</FONT></FONT></SPAN></FONT></P>
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<P ALIGN=CENTER><IMG SRC="https://static.igem.org/mediawiki/2011/1/18/006.png" NAME="图形7" ALT="说明: D:\b2.bmp" ALIGN=BOTTOM WIDTH=438 HEIGHT=329 BORDER=0></P>
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<P ALIGN=RIGHT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P3A"><FONT COLOR="#198a8a"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">preparation</SPAN></FONT></FONT></FONT></A><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">By
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</SPAN></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">|</SPAN></FONT></FONT></FONT><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US">
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adjusting certain parameters, we saw that the oscillation&rsquo;s
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</SPAN></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P3B"><FONT COLOR="#006b6b"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">parameters</SPAN></FONT></FONT></FONT></A><FONT COLOR="#000000"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">
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period and phase could be controlled properly, which is the most
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</SPAN></FONT></FONT></FONT><FONT COLOR="#6b4794"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">|
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impressive character of our system. Here we present a figure that the
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</SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P3C"><FONT COLOR="#006b6b"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">results</SPAN></FONT></FONT></FONT></A></SPAN></FONT></P>
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oscillation phase was adjusted by adding araC, which could induce the
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<P STYLE="margin-left: 1.56cm"><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US">In
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pBad promoter, in cell type B. After adding araC to our system at
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order to make a further analysis on stability of the system,
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certain time, the oscillation was interrupted at beginning, but could
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sensitivity of parameters, feedback factors-we manipulate all the
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gradually recover and finally, the phase was changed.</SPAN></FONT></P>
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arguments and parameters to make them dimensionless. Analysis of this
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<P ALIGN=CENTER STYLE="text-indent: 0.74cm"><IMG SRC="https://static.igem.org/mediawiki/2011/e/e8/007.png" NAME="图形8" ALIGN=BOTTOM WIDTH=380 HEIGHT=285 BORDER=0></P>
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part is crucial since parameters in vivo experiment may be different
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and even at odds with modeling ones but a proper dimensionless can
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reveal the mathematical essence of our model.</SPAN></FONT></P>
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<P STYLE="margin-left: 1.56cm"><BR><BR>
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</P>
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<P><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US"><FONT SIZE=4 STYLE="font-size: 15pt"><I>PART
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4 </I></FONT><FONT COLOR="#666600"><FONT SIZE=5 STYLE="font-size: 20pt">Quorum-sensing
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Effect</FONT></FONT></SPAN></FONT></P>
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<P ALIGN=RIGHT><FONT COLOR="#663300"><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P4"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">results</SPAN></FONT></FONT></A></SPAN></FONT></FONT></P>
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<P STYLE="margin-left: 1.59cm"><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US">What
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we have done insofar is focused on two-cell oscillation.
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Quorum-sensing oscillator is not simply a matter of expansion in
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magnitude, but a matter of robustness in allowing difference of each
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individual cell. Moreover, we test the adjustment of phase and
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amplitude of oscillation in this part.</SPAN></FONT></P>
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<P STYLE="margin-left: 1.59cm"><BR><BR>
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</P>
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<P><FONT FACE="Arial, sans-serif"><SPAN LANG="en-US"><FONT SIZE=4 STYLE="font-size: 15pt"><I>PART
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5</I></FONT> <FONT COLOR="#c5000b"><FONT SIZE=5 STYLE="font-size: 20pt">Reference</FONT></FONT></SPAN></FONT></P>
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<P ALIGN=RIGHT><FONT COLOR="#b84700"><FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/REF"><FONT FACE="Arial, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US">reference</SPAN></FONT></FONT></A></SPAN></FONT></FONT></P>
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<BR><BR>
<BR><BR>
</P>
</P>
<P ALIGN=LEFT STYLE="border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
<P ALIGN=LEFT STYLE="border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
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<FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#7030a0"><FONT FACE="Arial Unicode MS, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US"><B>Analysis
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<FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#7030a0"><FONT FACE="Arial Unicode MS, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US"><B>Dimensionless
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based on dimensionless model                         </B></SPAN></FONT></FONT></FONT><FONT COLOR="#00b050"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US"><I><U>Read
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model                                                            
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more</U></I></SPAN></FONT></FONT></SPAN></FONT></P>
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</B></SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P3A"><FONT COLOR="#ff950e"><FONT FACE="Times New Roman, serif"><FONT SIZE=3><SPAN LANG="en-US"><I><U><SPAN STYLE="font-weight: normal">Read
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<P ALIGN=LEFT><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US"> In
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more</SPAN></U></I></SPAN></FONT></FONT></FONT></A></SPAN></FONT></P>
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">In
order to make a further analysis on stability of the system, and
order to make a further analysis on stability of the system, and
sensitivity of parameters, we further simplified the model to make
sensitivity of parameters, we further simplified the model to make
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<P ALIGN=LEFT STYLE="border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
<P ALIGN=LEFT STYLE="border-top: none; border-bottom: 1px solid #000000; border-left: none; border-right: none; padding-top: 0cm; padding-bottom: 0.07cm; padding-left: 0cm; padding-right: 0cm">
<FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#7030a0"><FONT FACE="Arial Unicode MS, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US"><B>Quorum
<FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT COLOR="#7030a0"><FONT FACE="Arial Unicode MS, sans-serif"><FONT SIZE=4 STYLE="font-size: 16pt"><SPAN LANG="en-US"><B>Quorum
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Sensing Effect                                                  
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Sensing Effect                                                      
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</B></SPAN></FONT></FONT></FONT><FONT COLOR="#00b050"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US"><I><U>Read
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  </B></SPAN></FONT></FONT></FONT><A HREF="https://2011.igem.org/Team:Tsinghua-A/Modeling/P4"><FONT COLOR="#ff950e"><FONT FACE="Times New Roman, serif"><FONT SIZE=3><SPAN LANG="en-US"><I><U><SPAN STYLE="font-weight: normal">Read
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more</U></I></SPAN></FONT></FONT></SPAN></FONT></P>
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more</SPAN></U></I></SPAN></FONT></FONT></FONT></A></SPAN></FONT></P>
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<P ALIGN=LEFT><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US"> What
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">What
we have analyzed so far is focused on two-cell oscillation.
we have analyzed so far is focused on two-cell oscillation.
<FONT COLOR="#ff0000"><B>Quorum-sensing oscillator</B></FONT> is not
<FONT COLOR="#ff0000"><B>Quorum-sensing oscillator</B></FONT> is not
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in allowing difference of each individual cell. Moreover, we test the
in allowing difference of each individual cell. Moreover, we test the
adjustment of phase and period of oscillation in this part.</SPAN></FONT></P>
adjustment of phase and period of oscillation in this part.</SPAN></FONT></P>
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<P ALIGN=LEFT STYLE="text-indent: 0.64cm"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">As
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">As
we all know, no two things in this world are exactly the same, so do
we all know, no two things in this world are exactly the same, so do
cells. The major differences between individual cells that we take
cells. The major differences between individual cells that we take
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initial amount of AHL may be disproportionally distributed among
initial amount of AHL may be disproportionally distributed among
cells.</B></SPAN></FONT></FONT></SPAN></FONT></P>
cells.</B></SPAN></FONT></FONT></SPAN></FONT></P>
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<P ALIGN=LEFT STYLE="text-indent: 0.64cm"><A NAME="OLE_LINK67"></A><A NAME="OLE_LINK66"></A>
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<P ALIGN=LEFT><A NAME="OLE_LINK67"></A><A NAME="OLE_LINK66"></A> <FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">The
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<FONT FACE="Times New Roman, serif"><SPAN LANG="en-US"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">The
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rate of generating AHL is closely related to parameter m and n.
rate of generating AHL is closely related to parameter m and n.
Therefore, we introduce randomness to both parameters by letting them
Therefore, we introduce randomness to both parameters by letting them
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</SPAN></FONT>
</SPAN></FONT>
</P>
</P>
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<P ALIGN=LEFT STYLE="text-indent: 0.74cm"><A NAME="OLE_LINK63"></A><A NAME="OLE_LINK62"></A>
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<P ALIGN=LEFT><A NAME="OLE_LINK63"></A><A NAME="OLE_LINK62"></A> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">&mu;<SPAN LANG="en-US">1
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<FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">&mu;<SPAN LANG="en-US">1
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and &mu;2 are the average ability of generating 30C6HSL and 3012CHSL,
and &mu;2 are the average ability of generating 30C6HSL and 3012CHSL,
and normal distribution-- </SPAN><SPAN LANG="en-US"><I>N</I></SPAN><SPAN LANG="en-US">(0,&sigma;)--describes
and normal distribution-- </SPAN><SPAN LANG="en-US"><I>N</I></SPAN><SPAN LANG="en-US">(0,&sigma;)--describes
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environment is proportionally distributed.</SPAN></SPAN></FONT></P>
environment is proportionally distributed.</SPAN></SPAN></FONT></P>
<P ALIGN=CENTER><IMG SRC="https://static.igem.org/mediawiki/2011/1/17/008.png" NAME="图形11" ALT="说明: D:\b1.bmp" ALIGN=BOTTOM WIDTH=579 HEIGHT=430 BORDER=0></P>
<P ALIGN=CENTER><IMG SRC="https://static.igem.org/mediawiki/2011/1/17/008.png" NAME="图形11" ALT="说明: D:\b1.bmp" ALIGN=BOTTOM WIDTH=579 HEIGHT=430 BORDER=0></P>
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<P ALIGN=LEFT STYLE="text-indent: 0.74cm"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">The
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">The
figures indicate that our system can oscillate synchronically being
figures indicate that our system can oscillate synchronically being
able to tolerate differences at certain range among a population of
able to tolerate differences at certain range among a population of
cells.</SPAN></FONT></P>
cells.</SPAN></FONT></P>
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<P ALIGN=LEFT STYLE="text-indent: 0.74cm"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">We
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">We
also tested whether the oscillation is dependent on initial
also tested whether the oscillation is dependent on initial
distribution of AHL by changing the initial amount drastically by
distribution of AHL by changing the initial amount drastically by
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<P ALIGN=LEFT><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">Initial(i)
<P ALIGN=LEFT><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">Initial(i)
= <I>U</I>(0,20);</SPAN></FONT></P>
= <I>U</I>(0,20);</SPAN></FONT></P>
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<P ALIGN=LEFT STYLE="text-indent: 0.74cm"><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">Based
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">Based
on this distribution restraining the initial AHL concentration in
on this distribution restraining the initial AHL concentration in
each cell, we simulated out a figure as follows.</SPAN></FONT></P>
each cell, we simulated out a figure as follows.</SPAN></FONT></P>
<P ALIGN=CENTER STYLE="text-indent: 0.74cm"><IMG SRC="https://static.igem.org/mediawiki/2011/d/d2/009.png" NAME="图形12" ALT="说明: D:\b1.bmp" ALIGN=BOTTOM WIDTH=532 HEIGHT=399 BORDER=0></P>
<P ALIGN=CENTER STYLE="text-indent: 0.74cm"><IMG SRC="https://static.igem.org/mediawiki/2011/d/d2/009.png" NAME="图形12" ALT="说明: D:\b1.bmp" ALIGN=BOTTOM WIDTH=532 HEIGHT=399 BORDER=0></P>
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<P ALIGN=LEFT><FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US"> The
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<P ALIGN=LEFT> <FONT FACE="Arial Unicode MS, sans-serif"><SPAN LANG="en-US">The
results demonstratively give evidence proving that our system can
results demonstratively give evidence proving that our system can
start to oscillate synchronically given variant initial starting
start to oscillate synchronically given variant initial starting

Revision as of 15:48, 4 October 2011

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Introduction to Model Download the full text

In our project, we designed a quorum-sensing oscillator which consists of two types of cells. The expression of the reporter genes (GFP of one cell type and GFP of another) of the cells of the same type can fluctuate synchronously and certain designs were made to adjust the phase and the period of oscillation.

To understand the property of our system, we built a mathematical model based on ODEs (Ordinary Differential Equations) and DDEs (Delayed Differential Equations) to model and characterize this system. The simulation results helped us to deepen into further characteristics of the system.



Original Full Model Read more

Firstly we wanted to describe the system thoroughly without leaving out any seemingly unimportant actions and factors. As a result, the description of the system contains every possible mass actions as well as some hill kinetics, Henri-Michaelis-Menten kinetics, and the parameters were got from literature. The model was represented and simulated in the Matlab toolbox SIMBIOLOGY. We listed all 19 ODEs in the attached pdf file, you can see more details there.



Simplified DDE Model Read more

The original model contains too many factors for analyzing the general property of system. To understand the essential characters of the oscillator, we simplify the original model according to certain appropriate assumptions, like Quasi-equilibrium for fast reactions.

After series of derivation based on those assumptions (see the attached pdf file), we came up with the following set of DDEs (Delay Differential Equations)

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We coded the system by DDE description in MATLAB and did simulation analysis accordingly. The result showed that the system could oscillate under certain parameters .

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To further understand what parameters could make the system oscillate, we did bifurcation analysis on the Hill parameters. What we had to do was find the critical points where the system can nearly oscillate but a little disruption may lead to a steady state like that:

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Depicting all those critical points, as shown in the figure, the system could oscillate when cellB’s Hiill parameters were located in the area named Bistable.

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By adjusting certain parameters, we saw that the oscillation’s period and phase could be controlled properly, which is the most impressive character of our system. Here we present a figure that the oscillation phase was adjusted by adding araC, which could induce the pBad promoter, in cell type B. After adding araC to our system at certain time, the oscillation was interrupted at beginning, but could gradually recover and finally, the phase was changed.



Dimensionless model Read more

In order to make a further analysis on stability of the system, and sensitivity of parameters, we further simplified the model to make them dimensionless. In addition, we tried to introduce feedback to our system and made a brief analysis on different types of feedback we introduced.



Quorum Sensing Effect Read more

What we have analyzed so far is focused on two-cell oscillation. Quorum-sensing oscillator is not simply a matter of expansion in magnitude, but a matter of robustness in allowing difference of each individual cell. Moreover, we test the adjustment of phase and period of oscillation in this part.

As we all know, no two things in this world are exactly the same, so do cells. The major differences between individual cells that we take into consideration include:

Each cell’s activity of promoter is varied, so each cell has different rate to generate AHL.

The initial amount of AHL may be disproportionally distributed among cells.

The rate of generating AHL is closely related to parameter m and n. Therefore, we introduce randomness to both parameters by letting them obey normal distribution, that is:

m(i) = μ1+N(0,σ1);

n(i) = μ2+ N(0,σ2);

μ1 and μ2 are the average ability of generating 30C6HSL and 3012CHSL, and normal distribution-- N(0,σ)--describes the fluctuations of AHL generating rate in individual cell. We then expanded our equations from 2 cells to a population of cells. Each cell share a mutual environment in which we assume that AHL in environment is proportionally distributed.

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The figures indicate that our system can oscillate synchronically being able to tolerate differences at certain range among a population of cells.

We also tested whether the oscillation is dependent on initial distribution of AHL by changing the initial amount drastically by letting them follow uniform distribution. That is:

Initial(i) = U(0,20);

Based on this distribution restraining the initial AHL concentration in each cell, we simulated out a figure as follows.

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The results demonstratively give evidence proving that our system can start to oscillate synchronically given variant initial starting status.



References

[1] Uri Alon, (2007). Network motifs: theory and experimental approaches. Nature.

[2] Chunbo Lou, Xili Liu, Ming Ni, et al. (2010). Synthesizing a novel genetic sequential logic circuit: a push-on push-off switch. Molecular Systems Biology.

[3] Tal Danino, Octavio Mondragon-Palomino, Lev Tsimring & Jeff Hasty (2010). A synchronized quorum of genetic clocks. Nature.

[4] Marcel Tigges, Tatiana T. Marquez-Lago, Jorg Stelling & Martin Fussenegger (2009). A tunable synthetic mammalian oscillator. Nature.

[5] Sergi Regot, Javio Macia el al. (2010). Distributed biological computation with multicellular engineered networks. Nature.

[6] Martin Fussenegger, (2010). Synchronized bacterial clocks. Nature.

[7] Andrew H Babiskin and Christina D Smolke, (2011). A synthetic library of RNA control modules for predictable tuning of gene expression in yeast. Molecular Systems Biology.

[8] Santhosh Palani and Casim A Sarkar, (2011). Synthetic conversion of a graded receptor signal into a tunable, reversible switch. Molecular Systems Biology.

[9] Nancy Kopell, (2002). Synchronizing genetic relaxation oscillation by intercell signaling. PNS