Team:UESTC-China/Modeling1

From 2014.igem.org

(Difference between revisions)
 
(15 intermediate revisions not shown)
Line 337: Line 337:
}
}
#top{
#top{
-
background-image:url('https://static.igem.org/mediawiki/2014/4/42/Top3.png');
+
background-image: url('https://static.igem.org/mediawiki/2014/8/89/Uestc_top2.png');
-
width: 53px;
+
width: 65px;
-
height: 84px;
+
height: 138px;
-
position: fixed;
+
position: fixed;
-
top: 80%;
+
top: 70%;
-
margin-left: 1220px;
+
margin-left: 1200px;
-
cursor: pointer;
+
cursor: pointer;
 +
z-index: 999;
 +
 
}
}
#logo{
#logo{
Line 410: Line 412:
-
#SensorEditingArea{position:absolute; left:0px; top:280px; height:6000px; width:1183px; background-color:#ffffff; padding:60px 0px 0px 30px;}
+
#SensorEditingArea{position:absolute; left:0px; top:280px; height:6800px; width:1183px; background-color:#ffffff; padding:60px 0px 0px 30px;}
.SensorEditingAreaClass p{position:relative;left:0px; width:1140px; font-size:23px; font-family: calibri, arial, helvetica, sans-serif;  text-align:justify;}
.SensorEditingAreaClass p{position:relative;left:0px; width:1140px; font-size:23px; font-family: calibri, arial, helvetica, sans-serif;  text-align:justify;}
Line 520: Line 522:
-
  <h1 style="color:#1b1b1b; position:relative; left:0px; padding:15 5px; font-size:35px; font-family: calibri, arial, helvetica, sans-serif; font-weight: bold;font-style: Italic; text-align:center; width:1140px;">Photosynthetic HCHO assimilation pathway</h1>
+
  <h1 style="color:#1b1b1b; position:relative; left:0px; padding:15 5px; font-size:35px; font-family: calibri, arial, helvetica, sans-serif; font-weight: bold;font-style: Italic; text-align:center; width:1140px;">Photosynthetic formaldehyde assimilation pathway</h1>
  <br/>
  <br/>
-
  <h1 class="SectionTitles" style=" width:1100px;">Mathematical Principles</h1>
+
  <h1 class="SectionTitles" style=" width:1100px;">Mathematical principles</h1>
<br/>
<br/>
<p style="color:#1b1b1b;">Almost all chemical reactions obey the law of constant proportion:</p>
<p style="color:#1b1b1b;">Almost all chemical reactions obey the law of constant proportion:</p>
Line 550: Line 552:
-
  <h1 class="SectionTitles" style=" width:1100px;">Photosynthetic HCHO assimilation pathway</h1>
+
  <h1 class="SectionTitles" style=" width:1100px;">Photosynthetic formaldehyde assimilation pathway</h1>
<br/>
<br/>
-
<p style="color:#1b1b1b;">The metabolism of photosynthetic HCHO assimilation was shown on Fig.1. Since the substrate (Ru5P) and product (F6P) of the sequential reactions catalyzed by HPS and PHI are intermediates of the Calvin cycle in plants, photosynthesis could provide sufficient substrates for the reactions catalyzed by HPS and PHI if the two enzymes were expressed in plant <i>(Song, Orita et al. 2010)</i>. It has been proved that over-expressing the HPS/PHI fusion protein can enhance the ability of the plants to absorb and assimilate exogenous HCHO <i>(Chen, Yurimoto et al. 2010)</i>. In this case, we utilize the mathematical principles described above to analyze the metabolism.</p>
+
<p style="color:#1b1b1b;">The metabolism of photosynthetic formaldehyde assimilation was shown on Fig.1. Since the substrate (Ru5P) and product (F6P) of the sequential reactions catalyzed by HPS and PHI are intermediates of the Calvin cycle in plants, photosynthesis could provide sufficient substrates for the reactions catalyzed by HPS and PHI if the two enzymes were expressed in plant <i>(Song et al., 2010)</i>. It has been proved that over-expressing the HPS/PHI fusion protein can enhance the ability of the plants to absorb and assimilate exogenous formaldehyde <i>(Chen et al., 2010)</i>. In this case, we utilize the mathematical principles described above to analyze the metabolism.</p>
<br/>
<br/>
<div align="center">
<div align="center">
-
<div><img style="width:50% ;" src="https://static.igem.org/mediawiki/2014/a/a8/Figuestc.jpg"></div>
+
<div><img style="width:50% ;" src="https://static.igem.org/mediawiki/2014/3/3f/Regu1.png"></div>
-
<div><p style="position:relative; left:0px; padding:15 5px; font-size:20px; font-family: calibri, arial, helvetica, sans-serif; font-style: calibri; text-align:justify; width:650px; color:#1b1b1b;">
+
<div><p style="position:relative; left:0px; padding:15 5px; font-size:20px; font-family: calibri, arial, helvetica, sans-serif; font-style: calibri; text-align:justify; width:1100px; color:#1b1b1b;">
-
<strong>Fig.1</strong> Schematic diagram of photosynthetic HCHO assimilation pathway. Ru5P, D-ribulose 5-phosphate; Hu6P, D-arabino-3-hexulose 6-phosphate; F6P, fructose 6-phosphate; Xu5P, xylulose 5-phosphate; RuBP, ribulose 1,5-bisphosphate; 3-PGA, glycerate 3-phosphate; FBP, fructose-1,6-bisphosphatase;
+
<strong>Fig.1</strong> Schematic diagram of photosynthetic formaldehyde assimilation pathway. Ru5P, D-ribulose 5-phosphate; Hu6P, D-arabino-3-hexulose 6-phosphate; F6P, fructose 6-phosphate; Xu5P, xylulose 5-phosphate; RuBP, ribulose 1,5-bisphosphate; 3-PGA, glycerate 3-phosphate; FBP, fructose-1,6-bisphosphatase;
<br>
<br>
</p>
</p>
Line 564: Line 566:
</div>
</div>
<br/>
<br/>
-
<p style="color:#1b1b1b;">Simplify the system (Fig.2), consist of the input of HCHO and CO2, the recycle of Ru5P and the output of F6P:</p>
+
<p style="color:#1b1b1b;">Simplify the system (Fig.2), consist of the input of formaldehyde and CO2, the recycle of Ru5P and the output of F6P:</p>
<br/>
<br/>
<div align="center">
<div align="center">
<div><img style="width:50% ;" src="https://static.igem.org/mediawiki/2014/4/45/MFig-2.jpg"></div>
<div><img style="width:50% ;" src="https://static.igem.org/mediawiki/2014/4/45/MFig-2.jpg"></div>
-
<div><p style="position:relative; left:0px; padding:15 5px; font-size:20px; font-family: calibri, arial, helvetica, sans-serif; font-style: calibri; text-align:justify; width:650px; color:#1b1b1b;">
+
<div><p style="position:relative; left:10px; padding:15 5px; font-size:20px; font-family: calibri, arial, helvetica, sans-serif; font-style: calibri; text-align:justify; width:600px; color:#1b1b1b;">
<strong>Fig.2</strong> A simplified version of photosynthetic HCHO assimilation pathway
<strong>Fig.2</strong> A simplified version of photosynthetic HCHO assimilation pathway
Line 608: Line 610:
<h1 class="SectionTitles" style="width:1100px;">Results</h1>
<h1 class="SectionTitles" style="width:1100px;">Results</h1>
<br/>
<br/>
-
<p style="color:#1b1b1b;">By changing the value of those parameters (<i>k1, k2</i> … ), we obtained the relationship (Fig.3) between the concentration of different components (Ru5P, F6P and HCHO) versus the time. </p>
+
<p style="color:#1b1b1b;">By changing the value of those parameters (<i>k1, k2</i> … ), we obtained the relationship (Fig.3) between the concentration of different components (Ru5P, F6P and formaldehyde) versus the time. </p>
<br/>
<br/>
<div align="center">
<div align="center">
-
<div><img style="width:90% ;" src="https://static.igem.org/mediawiki/2014/4/40/%E5%9B%BE%E7%89%872.jpg"></div>
+
<div><img style="width:60% ;" src="https://static.igem.org/mediawiki/2014/d/d2/Uestc_newModel1.jpg"></div>
-
<div><p style="position:relative; left:50px; padding:15 5px; font-size:20px; font-family: calibri, arial, helvetica, sans-serif; font-style: calibri; text-align:justify; width:1050px; color:#1b1b1b;">
+
<div><p style="position:relative; left:60px; padding:15 5px; font-size:20px; font-family: calibri, arial, helvetica, sans-serif; font-style: calibri; text-align:justify; width:1050px; color:#1b1b1b;">
<strong>Fig.3</strong> The diagram of concentration versus time. A for Ru5P and F6P, B for HCHO and C for those three components
<strong>Fig.3</strong> The diagram of concentration versus time. A for Ru5P and F6P, B for HCHO and C for those three components

Latest revision as of 01:55, 18 October 2014

UESTC-China