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+ | <script src="http://code.jquery.com/jquery-2.1.0.min.js"></script> | ||
+ | <link href="https://fonts.googleapis.com/css?family=Quicksand:300,400|Roboto:400,400i" rel="stylesheet"> | ||
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font-family: 'Quicksand', sans-serif; | font-family: 'Quicksand', sans-serif; | ||
+ | font-size: 20px; | ||
+ | line-height:30px; | ||
+ | } | ||
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+ | #please h3 { | ||
+ | font-family: 'quicksand', sans-serif; | ||
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− | <div class="container-fluid"> | + | <div class="container-fluid" id = "please" align = "center"> |
− | <div class = "row" style ="background-color:#e2e2e2;margin-top: 60px;"> | + | <div class = "row" style ="background-color:#e2e2e2;margin-top:60px;"> |
− | <img class="crispy | + | <img class="crispy" src="https://static.igem.org/mediawiki/2017/d/d1/T--Sydney_Australia--description-banner.png" width="70%"> |
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<h4>As the global incidence of diabetes has risen, so has the price of insulin. Governments that cover insulin for their citizens under public health insurance schemes are left to shoulder the price of insulin at a great financial cost. For those who do not have access to insurance, the price of insulin has reached a point where it is completely unaffordable for many people. These people are left in near impossible situations, in which they are forced to make difficult sacrifices to survive. <br><br> | <h4>As the global incidence of diabetes has risen, so has the price of insulin. Governments that cover insulin for their citizens under public health insurance schemes are left to shoulder the price of insulin at a great financial cost. For those who do not have access to insurance, the price of insulin has reached a point where it is completely unaffordable for many people. These people are left in near impossible situations, in which they are forced to make difficult sacrifices to survive. <br><br> | ||
Many insulins are also required to be kept at low temperatures. This poses difficulties for transportation of insulin, especially in remote areas where insulin transportation and storage facilities are scarce. Consequently remote areas, particularly in developing countries, can frequently experience insulin shortages, further increasing insulin prices and leaving many unable to obtain insulin. Overall, the global issues of insulin affordability and accessibility pose dire problems for millions around the world</h4> | Many insulins are also required to be kept at low temperatures. This poses difficulties for transportation of insulin, especially in remote areas where insulin transportation and storage facilities are scarce. Consequently remote areas, particularly in developing countries, can frequently experience insulin shortages, further increasing insulin prices and leaving many unable to obtain insulin. Overall, the global issues of insulin affordability and accessibility pose dire problems for millions around the world</h4> | ||
+ | </div> | ||
+ | <div class = "col-xs-6"> | ||
+ | <img class = "img-responsive" src = "https://static.igem.org/mediawiki/2017/7/7a/T--Sydney_Australia--description2.png" width="70%"> | ||
+ | </div> | ||
+ | </div> | ||
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+ | <div class="para_container"> | ||
+ | <br> | ||
+ | <div class = "col-xs-6"> | ||
+ | <br><br> | ||
+ | <h4>Furthermore, many insulins are also required to be kept at low temperatures. This poses difficulties for transportation of insulin, especially in remote areas where insulin transportation and storage facilities are scarce. Consequently remote areas, particularly in developing countries, can frequently experience insulin shortages, further increasing insulin prices and leaving many unable to obtain insulin. Overall, the global issues of insulin affordability and accessibility pose dire problems for millions around the world.</h4> | ||
+ | </div> | ||
+ | <div class = "col-xs-6"> | ||
+ | <img class = "img-responsive" src = "https://static.igem.org/mediawiki/2017/c/c0/T--Sydney_Australia--description3.png" width="70%"> | ||
+ | </div> | ||
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+ | <img class = "img-responsive" src = "https://static.igem.org/mediawiki/2017/d/db/T--Sydney_Australia--description4.png" width="70%"> | ||
<h4>If there was an insulin that was both thermodynamically stable and cheap to produce, these problems could be overcome. Simplifying the production method of insulin would reduce the costs associated with producing insulin, allowing the overall price of insulin to be reduced. Furthermore, a more stable insulin would be much easier to transport as it would not require any specific conditions to be maintained over long distances and long periods of time. Reducing costs associated with insulin transportation would also allow for reductions in the price of insulin. | <h4>If there was an insulin that was both thermodynamically stable and cheap to produce, these problems could be overcome. Simplifying the production method of insulin would reduce the costs associated with producing insulin, allowing the overall price of insulin to be reduced. Furthermore, a more stable insulin would be much easier to transport as it would not require any specific conditions to be maintained over long distances and long periods of time. Reducing costs associated with insulin transportation would also allow for reductions in the price of insulin. | ||
<br><br> | <br><br> | ||
Human proinsulin, the precursor to insulin, is an 11kDa molecule made up of three chains: an A-chain, a B-chain and a C-chain. To make active insulin from inactive proinsulin, the body cuts the C-chain off from the proinsulin, leaving the A and B chains of the active insulin. | Human proinsulin, the precursor to insulin, is an 11kDa molecule made up of three chains: an A-chain, a B-chain and a C-chain. To make active insulin from inactive proinsulin, the body cuts the C-chain off from the proinsulin, leaving the A and B chains of the active insulin. | ||
<br><br> | <br><br> | ||
+ | <img class = "img-responsive" src = "https://static.igem.org/mediawiki/2017/0/01/T--Sydney_Australia--description5.png" width="100%"> | ||
+ | <br><br> | ||
+ | <img class = "img-responsive" src = "https://static.igem.org/mediawiki/2017/f/fe/T--Sydney_Australia--description-6.png" width="70%"> | ||
+ | <br> | ||
Recent investigations into insulin production have focused on single-chain insulins. These are structurally similar to human insulin in that they lack the C-chain, and only contain the functionally active A and B chains joined by a linker peptide. Single chain insulins are regarded as being more stable and more active than proinsulin, making them an increasingly viable alternative to human proinsulin. | Recent investigations into insulin production have focused on single-chain insulins. These are structurally similar to human insulin in that they lack the C-chain, and only contain the functionally active A and B chains joined by a linker peptide. Single chain insulins are regarded as being more stable and more active than proinsulin, making them an increasingly viable alternative to human proinsulin. | ||
+ | <br><br> | ||
+ | For more informaiton, please see our <a href="https://2017.igem.org/Team:Sydney_Australia/Design">Design Page</a>. | ||
</h4> | </h4> | ||
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<br><br> | <br><br> | ||
We expressed each of our insulins in strains of Escherichia coli or Bacillus subtilis using the expression systems: | We expressed each of our insulins in strains of Escherichia coli or Bacillus subtilis using the expression systems: | ||
− | <div | + | <div class = "col-xs-6"> |
− | + | <h3>Cytoplasmic expression in Shuffle<i>E. coli</i></h3> | |
− | < | + | <div class = "divider41"></div><br> |
+ | <h4>This method simplifies the molecular processes involved in directing insulin expression. | ||
+ | Therefore our Cytoplasmic Constructs were: <br> | ||
+ | • Cytoplasmic Proinsulin | ||
+ | <br> | ||
+ | • Cytoplasmic Winsulin | ||
+ | </h4> | ||
+ | |||
+ | |||
+ | <h3>Periplasmic expression in BL21 <i>E. coli</i></h3> | ||
+ | <div class = "divider41"></div><br> | ||
+ | <h4>This method is expected to enhance the folding of insulin, thus increasing the efficiency and safety of the insulin we produce. | ||
+ | Our Secretory Constructs are:<br> | ||
+ | • Ecotin Proinsulin | ||
+ | <br> | ||
+ | • Ecotin Winsulin</h4> | ||
</center></li> | </center></li> | ||
− | + | <h3>Secretion by WB800 <i>Bacillus subtilis</i></h3> | |
− | + | <div class = "divider41"></div><br> | |
− | + | <h4>This method greatly simplifies insulin purification. Our Secretory Constructs are:<br> | |
− | + | • YncM Proinsulin | |
− | </ | + | <br> |
+ | • YncM Winsulin | ||
+ | <br><br> | ||
+ | </div> | ||
+ | <div class = "col-xs-6"> | ||
+ | <img class = "img-responsive" src = "https://static.igem.org/mediawiki/2017/8/85/T--Sydney_Australia--description7.png" width = "100%"> | ||
+ | </div> | ||
+ | </div> | ||
</div> | </div> | ||
<br><br> | <br><br> | ||
− | The expression system performed is dependent on a molecular tag at the N-terminus end of the insulin. Ecotin is used to tag proteins for periplasmic expression in BL21 E. coli, while YNCM is used to tag proteins for secretion by WB800 Bacillus subtilis. Proteins expressed in the cytoplasm do not require a molecular tag. | + | <div class = "row content" align = "center" id = "please"> |
+ | <h4>The expression system performed is dependent on a molecular tag at the N-terminus end of the insulin. Ecotin is used to tag proteins for periplasmic expression in BL21 E. coli, while YNCM is used to tag proteins for secretion by WB800 Bacillus subtilis. Proteins expressed in the cytoplasm do not require a molecular tag. | ||
<br><br> | <br><br> | ||
Both of our insulins – proinsulin and single-chain Winsulin – were each expressed in all three systems, requiring the creation of <i>six</i> different insulin constructs: | Both of our insulins – proinsulin and single-chain Winsulin – were each expressed in all three systems, requiring the creation of <i>six</i> different insulin constructs: | ||
</h4> | </h4> | ||
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Revision as of 14:32, 1 November 2017