Difference between revisions of "Team:Peking"

 
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         <title>Home</title>
 
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         <meta name="description" content="Wiki of Peking iGEM 2016" />
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         <meta name="description" content="Wiki of Peking iGEM 2018" />
         <meta name="author" content="Li Jiamian & Wang Yuqing"/>
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                     <p><span style="font-family:Verdana;font-size:15px">iGEM 2016</span></p>
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                     <p><span style="font-family:Verdana;font-size:15px">iGEM 2018</span></p>
 
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                    <p class="georgia">Welcome to our website</p>
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                    <h1>We are newave</h1>
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                    <a href="#we-are-newave" class="newave-button medium white outline">See What we do</a>
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                             <li class="dropdown menu-3"><a class="dropdown-toggle" data-toggle="dropdown" href="#" >Modeling</a>
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                             <li class="menu-3"><a class="colapse-menu1" href="https://2018.igem.org/Team:Peking/Model">Modeling</a>
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                                    <li><a href="https://2018.igem.org/Team:Peking/Model">Overview</a></li>
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                                    <li><a href="https://2018.igem.org/Team:Peking/SPOT_Formation" class="barfont1">SPOT Formation</a></li>
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                                    <li><a href="https://2018.igem.org/Team:Peking/Application" class="barfont1">Application</a></li>
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                             <li class="menu-4"><a class="colapse-menu1" href="https://2018.igem.org/Team:Peking/Software">Software</a>
 
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                                <li class="dropdown menu-6"><a class="dropdown-toggle" data-toggle="dropdown" href="#">Human Practices</a>
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                            <li class="menu-6"><a class="colapse-menu1" href="https://2018.igem.org/Team:Peking/Human_Practices">Human Practices</a>
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                                        <li><a href="https://2018.igem.org/Team:Peking/Human_Practices" class="barfont1">Overview</a></li>
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                                        <li><a href="https://2018.igem.org/Team:Peking/Statistics" class="barfont1">Statistics</a></li>
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                                        <li><a href="https://2018.igem.org/Team:Peking/Other" class="barfont1">Other</a></li>
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                                 <li class="dropdown menu-7"><a class="dropdown-toggle" data-toggle="dropdown" href="#" >Achievement</a>
 
                                 <li class="dropdown menu-7"><a class="dropdown-toggle" data-toggle="dropdown" href="#" >Achievement</a>
 
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                    <h1>Peking 2018</h1>
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                    <h1>Synthetic Organelles</h1>
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                    <font size="6" color="gray">Synthetic Phase separation-based Organelle Platform (SPOT)</font>
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                                    <div class="texttitle">Abstract</div>
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                                  <div class="texttitle">Background and motivation</div>
                                     <p class="lead add-bottom" style="color:#5E5656">The problem of uranium contamination is a source of great concern. Uranium could have severe detrimental health effects (it is particularly harmful to the liver, kidney and bone) and lead to environment issues (chemical and radioactive hazards). <a href="https://2016.igem.org/Team:Peking/HP/311">Current treatment options</a> available for uranium leaks in nuclear power plants or uranium pollution around ore-fields, such as ion exchange, flocculation-setting and phytoremediation, all have limitations including their high cost, low efficiency and the sheer complexity of the involved procedures.</p>
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                                     <p class="lead add-bottom" style="color:#5E5656">Ever since the beginning of life, compartmentalization has been playing a crucial role in biological systems. The famous Miller-Urey experiment shows that inorganic molecules can be transformed into organic substances under extreme conditions, for example, lightnings. However, homogeneously distributed organic matter is not enough for life to emerge. It is almost impossible that all conditions are appropriate for life in the entire primordial soup. That is where the compartments come in.</p>
 
                                      
 
                                      
                                     <p class="lead add-bottom" style="color:#5E5656">To address these problems, Peking iGEM team aims to construct <a href="https://2016.igem.org/Team:Peking/Description">a novel functional biomaterial</a> consisting of multiple functional protein modules. This material is designed to be produced and secreted by bacteria, and self-assembled to form a polymer network. In combination with a specific <a href="https://2016.igem.org/Team:Peking/Uranyl-adsorption">Super Uranyl-binding Protein</a>, it obtains the ability to adsorb uranyl ions. After very short contacting with polluted water, the uranyl-laden biomaterial, which also contains a <a href="https://2016.igem.org/Team:Peking/Clearance">monomeric streptavidin module</a>, could be easily cleared using biotinylated magnetic beads.
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                                     <p class="lead add-bottom" style="color:#5E5656">Only after coacervate droplets form and organic molecules condense inside, can a completely different environment be attained within, thus enabling the emergence of bio-macromolecules, or in other words, making life possible.In highly-evolved cells, compartmentalization is mainly achieved by different organelles, i.e. mitochondria, chloroplasts, lysosomes, etc. They play three major roles: isolation, special environment and localization.</p>
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                                     <p class="lead add-bottom" style="color:#5E5656">This uranyl-binding biomaterial shows a series of advantages, such as high specificity, high efficiency, self-assembly and renewability. Furthermore, the uranyl-binding module could be replaced or combined with modules that are capable of binding other heavy metal ions, as well as fluorescent proteins, obtaining <a href="https://2016.igem.org/Team:Peking/Proof">multi-functionality</a>. By taking advantage of modularization in the design, additional applications beyond uranium adsorption could be developed based on this material in the future.</p>
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                                     <p class="lead add-bottom" style="color:#5E5656">Intuitively, for an organelle to remain a stable compartment, it requires a material boundary, or more precisely, a membrane. Membrane-bound organelles are indeed common and stable, but from the perspective of synthesis, they are way too complicated. However, there are also non-membrane-bound organelles, for instance, stress granules, P granules and nucleoli. More importantly, their formation is guided by simple physical principles. Then comes the question how we can synthesize membrane-less organelles.</p>
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                                                                <div class="texttitle">Principles and design</div>
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                                    <p class="lead add-bottom" style="color:#5E5656">There are a large number of phase separation phenomena in cells, which can be summarized by the principle that interaction and multivalence are two preconditions of phase separation in cells. Based on this principle, we used SUMO-SIM, FKBP-Frb, and similar interacting pairs as interaction modules to provide diverse induction of the condensation, while we fused homo-oligomeric tags (HOTags) to introduce multivalency. We named our system <a href="https://2018.igem.org/Team:Peking/Design">SPOT (Synthetic Phase separation-based Organelle Platform)</a> because it can form granules in yeast (we can see fluorescent spots in yeast under the microscope).</p>                             
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                                                                <div class="texttitle">SPOT construction and verification</div>
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                                    <p class="lead add-bottom" style="color:#5E5656">We tested different interaction modules to construct the synthetic organelles and then modeled our system according to the theory of phase separation. As this model predicts, different promoters alter the features and kinetics of our system, which was also validated by the experiments.</p>                                   
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                                                                <div class="texttitle">Functions of synthetic organelles</div>
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                                    <p class="lead add-bottom" style="color:#5E5656">We verified the feasibility of several potential functions, both theoretically and experimentally, including reaction compartment, sensor, etc. In the future, by replacing functional modules with other parts, this system can be reprogrammed to conduct functions not included in the current project.</p>
 
                                      
 
                                      
 
                                
 
                                
 
                                      
 
                                      
 
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                                 <p style="text-align:center;"><a href="https://2016.igem.org/Team:Peking/Crosslinking"><img style="width:  %;" src="https://static.igem.org/mediawiki/2016/b/b3/T--Peking--image_H1.png " alt="" /></p></a>
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                                 <p style="text-align:center;"><a href="https://2018.igem.org/Team:Peking/Project"><img style="width:  %;" src="https://static.igem.org/mediawiki/2018/e/ea/T--Peking--home1.png" width="70%" alt="" /></p></a>
                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;">Crosslinking</p>
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                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;"><a href="https://2018.igem.org/Team:Peking/Project">Background</a></p>
                                <p style="font-family:raleway-regular, sans-serif !important; font-weight:100;font-size:18px !important; text-align:justify;">By taking advantage of the covalent crosslinking of SpyTag and SpyCatcher, a polymer network was designed to possess special properties, such as strong mechanical strength, large contact area and stable structure. </p>
+
                                                               
                                <p><a href="https://2016.igem.org/Team:Peking/Crosslinking">Learn more...</a></p>
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                                 </div>
 
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                                 <div class="four columns" style="text-align:center;">
                                 <p style="text-align:center;"><a href="https://2016.igem.org/Team:Peking/Secretion"><img style="width:  %;" src="https://static.igem.org/mediawiki/2016/1/1f/T--Peking--image_H2.png" /></p></a>
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                                 <p style="text-align:center;"><a href="https://2018.igem.org/Team:Peking/Design"><img style="width:  %;" src="https://static.igem.org/mediawiki/2018/e/ea/T--Peking--home2.png" width="70%" alt=""/></p></a>
                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;">Secretion</p>
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                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;"><a href="https://2018.igem.org/Team:Peking/Design">Design</a></p>
                                <p style="font-family:raleway-regular, sans-serif !important; font-weight:100;font-size:18px !important; text-align:justify;">To make the polymer network reproductive and economical, a signal peptide library was constructed. We carried out a series of experiments to find an optimal secretion strategy.</p>
+
                                                             
                                <p><a href="https://2016.igem.org/Team:Peking/Secretion">Learn more...</a></p>
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                                 </div>
 
                                 </div>
 
                                  
 
                                  
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                                 <div class="four columns" style="text-align:center;">
                                 <p style="text-align:center;"><a href="https://2016.igem.org/Team:Peking/Clearance"><img style="width:  %;" src="https://static.igem.org/mediawiki/2016/9/95/T--Peking--image_H3.png" alt=""/></p></a>
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                                 <p style="text-align:center;"><a href="https://2018.igem.org/Team:Peking/Demonstrate#A"><img style="width:  %;" src="https://static.igem.org/mediawiki/2018/8/87/T--Peking--home3.png" width="70%" alt=""/></p></a>
                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;">Clearance</p>
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                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;"><a href="https://2018.igem.org/Team:Peking/Demonstrate#A">Characterization</a></p>
                                <p style="font-family:raleway-regular, sans-serif !important; font-weight:100;font-size:18px !important; text-align:justify;">The monomeric streptavidin constructed in the polymer network could realize the clearance of Spy Crosslinking Network in the environment by interacting with biotinylated magnetic beads. </p>
+
                                                               
                                <p><a href="https://2016.igem.org/Team:Peking/Clearance">Learn more...</a></p>
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                                 <p style="text-align:center;"><a href="https://2016.igem.org/Team:Peking/Model"><img style="width:  %;" src="https://static.igem.org/mediawiki/2016/a/aa/T--Peking--image_H4.png
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                                 <p style="text-align:center;"><a href="https://2018.igem.org/Team:Peking/Demonstrate#C"><img style="width:  %;" src="https://static.igem.org/mediawiki/2018/0/01/T--Peking--home4.png" width="70%" /></p></a>
" /></p></a>
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                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;"><a href="https://2018.igem.org/Team:Peking/Demonstrate#C">Functions</a></p>
                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;">Model</p>
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                                <p style="font-family:raleway-regular, sans-serif !important; font-weight:100;font-size:18px !important; text-align:justify;">To accurately describe the Gel Point (GP) and the Mass Distribution (MD) for our polymer network, we built up two amendatory models that can adequately describe the characters and deepen our knowledge of our novel biomaterial.</p>
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                                <p><a href="https://2016.igem.org/Team:Peking/Mode">Learn more...</a></p>
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                                 <p style="text-align:center;"><a href="https://2016.igem.org/Team:Peking/Software"><img style="width:  %;" src="https://static.igem.org/mediawiki/2016/b/b3/T--Peking--image_H5.png
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                                 <p style="text-align:center;"><a href="https://2018.igem.org/Team:Peking/Model"><img style="width:  %;" src="https://static.igem.org/mediawiki/2018/f/f5/T--Peking--home5.png " width="70%" alt="" /></p></a>
" alt="" /></p></a>
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                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;"><a href="https://2018.igem.org/Team:Peking/Model">Model</a></p>
                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;">Software</p>
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                                <p style="font-family:raleway-regular, sans-serif !important; font-weight:100;font-size:18px !important; text-align:justify;">To calculate the Gel Point (GP) and the Mass Distribution (MD) for our polymer network, we established a useful software called SoP that can apply to all the crosslinking reactions between the chosen monomers.</p>
+
                                <p><a href="https://2016.igem.org/Team:Peking/Software">Learn more...</a></p>
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                                 <p style="text-align:center;"><a href="https://2016.igem.org/Team:Peking/HP/Gold"><img style="width:  %;" src="https://static.igem.org/mediawiki/2016/c/ce/T--Peking--image_H6.png
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                                 <p style="text-align:center;"><a href="https://2018.igem.org/Team:Peking/Human_Practices"><img style="width:  %;" src="https://static.igem.org/mediawiki/2018/1/15/T--Peking--home6.png" width="70%" alt=""/></p></a>
" alt=""/></p></a>
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                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;"><a href="https://2018.igem.org/Team:Peking/Human_Practices">Human Practices</a></p>
                                 <p style="font-family:raleway-bold, sans-serif !important;font-size:24px !important; text-align:center; margin-top:20px;">Human practices</p>
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                                <p style="font-family:raleway-regular, sans-serif !important; font-weight:100;font-size:18px !important; text-align:justify;">The Peking iGEM 2016 focuses on current treatments of uranium pollution worldwide, and looks for solutions using synthetic biology. We visited a institution of nuclear industry, conducted a questionnaire survey and provided public education.</p>
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                                <p><a href="https://2016.igem.org/Team:Peking/HP/Gold">Learn more...</a></p>
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Latest revision as of 01:11, 18 October 2018

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Peking 2018

Synthetic Organelles

Synthetic Phase separation-based Organelle Platform (SPOT)
Background and motivation

Ever since the beginning of life, compartmentalization has been playing a crucial role in biological systems. The famous Miller-Urey experiment shows that inorganic molecules can be transformed into organic substances under extreme conditions, for example, lightnings. However, homogeneously distributed organic matter is not enough for life to emerge. It is almost impossible that all conditions are appropriate for life in the entire primordial soup. That is where the compartments come in.

Only after coacervate droplets form and organic molecules condense inside, can a completely different environment be attained within, thus enabling the emergence of bio-macromolecules, or in other words, making life possible.In highly-evolved cells, compartmentalization is mainly achieved by different organelles, i.e. mitochondria, chloroplasts, lysosomes, etc. They play three major roles: isolation, special environment and localization.

Intuitively, for an organelle to remain a stable compartment, it requires a material boundary, or more precisely, a membrane. Membrane-bound organelles are indeed common and stable, but from the perspective of synthesis, they are way too complicated. However, there are also non-membrane-bound organelles, for instance, stress granules, P granules and nucleoli. More importantly, their formation is guided by simple physical principles. Then comes the question how we can synthesize membrane-less organelles.

Principles and design

There are a large number of phase separation phenomena in cells, which can be summarized by the principle that interaction and multivalence are two preconditions of phase separation in cells. Based on this principle, we used SUMO-SIM, FKBP-Frb, and similar interacting pairs as interaction modules to provide diverse induction of the condensation, while we fused homo-oligomeric tags (HOTags) to introduce multivalency. We named our system SPOT (Synthetic Phase separation-based Organelle Platform) because it can form granules in yeast (we can see fluorescent spots in yeast under the microscope).

SPOT construction and verification

We tested different interaction modules to construct the synthetic organelles and then modeled our system according to the theory of phase separation. As this model predicts, different promoters alter the features and kinetics of our system, which was also validated by the experiments.

Functions of synthetic organelles

We verified the feasibility of several potential functions, both theoretically and experimentally, including reaction compartment, sensor, etc. In the future, by replacing functional modules with other parts, this system can be reprogrammed to conduct functions not included in the current project.