Team:NTU Taida/Circuit3
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- | <a href="#" > <img src=" | + | <a href="#" > <img src="https://static.igem.org/mediawiki/2014/0/05/NTU_Taida_Ketinase_circuit.jpg" height="520px" align="center"> </a> |
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<p> <strong>Since</strong> the second part share the ideas with the first part, the principle mechanism is the same. The fad promoter is repressed by fadR protein. And the fadR protein can be repressed by acyl-coA, which is transformed from fatty acid. Therefore, the CI gene will be activated if there is fatty acid exists in the cell. Then, the CI protein will accumulate to a threshold concentration and repress the pCI promoter. At last, the expression of keratinase will be shut down after a period of time. </p> | <p> <strong>Since</strong> the second part share the ideas with the first part, the principle mechanism is the same. The fad promoter is repressed by fadR protein. And the fadR protein can be repressed by acyl-coA, which is transformed from fatty acid. Therefore, the CI gene will be activated if there is fatty acid exists in the cell. Then, the CI protein will accumulate to a threshold concentration and repress the pCI promoter. At last, the expression of keratinase will be shut down after a period of time. </p> | ||
<p> <strong>In addition,</strong> the time period of keratinase expression can be adjusted by two different ways. The first one is to enhance the expression of CI protein, and the second way is to use ribosome binding sites with different affinity. Since degrading too much keratin might cause our skin become vulnerable to allergy and infection, we can control the amount of keratinase by changing this time period.</p> | <p> <strong>In addition,</strong> the time period of keratinase expression can be adjusted by two different ways. The first one is to enhance the expression of CI protein, and the second way is to use ribosome binding sites with different affinity. Since degrading too much keratin might cause our skin become vulnerable to allergy and infection, we can control the amount of keratinase by changing this time period.</p> | ||
- | <strong>Degrading too much keratin</strong> might cause our skin become vulnerable to allergy and infection. Also, we don’t want keratinase being produced before the bacteria live on human skin. So our gene circuit must function like this:</p><p><img src=" | + | <strong>Degrading too much keratin</strong> might cause our skin become vulnerable to allergy and infection. Also, we don’t want keratinase being produced before the bacteria live on human skin. So our gene circuit must function like this:</p><p><img src="https://static.igem.org/mediawiki/2014/c/cc/NTU_Taida_Keratinase_model.jpg" style="width:360px;height:160px"></p><p><strong>The model</strong> can be simulated by these equations, which is based on Hill functions. The simulating result shows the expression of target protein is repressed effectively after a specific time interval.</p><p><img src="https://static.igem.org/mediawiki/2014/2/24/NTU_Taida_Keratinase_model_2.jpg" style="width:360px;height:160px"> |
- | </p><p><strong>It sould be</strong> activated by sensing fatty acid in environment and it has to be shut down after a specific time interval. The transcriptional cascade model composes a repressing protein, a promoter and a target protein, which could be green fluorescence protein, keratinase or any other protein. The repressing protein CI can shut down the promoter preceding the target protein, as long as it has accumulated to a threshold concentration.</p><p><img src=" | + | </p><p><strong>It sould be</strong> activated by sensing fatty acid in environment and it has to be shut down after a specific time interval. The transcriptional cascade model composes a repressing protein, a promoter and a target protein, which could be green fluorescence protein, keratinase or any other protein. The repressing protein CI can shut down the promoter preceding the target protein, as long as it has accumulated to a threshold concentration.</p><p><img src="https://static.igem.org/mediawiki/2014/f/f0/NTU_Taida_Keratinase_model_3.jpg" style="width:360px;height:300px" ></p><div style="float:right"></p> |
To secrete the enzyme outside the bacteria, a gene which functions as a signal sequence is inserted before the keratinase coding region. The signal peptide can guide the enzyme to the cell membrane. To further details, please check out the description above.</div></h5> | To secrete the enzyme outside the bacteria, a gene which functions as a signal sequence is inserted before the keratinase coding region. The signal peptide can guide the enzyme to the cell membrane. To further details, please check out the description above.</div></h5> | ||
<div class="container" style="width:1200px;line-height:4em;padding:200px;padding-top:10px;padding-right:100px;padding-bottom:10px;" float="left" id="test"> | <div class="container" style="width:1200px;line-height:4em;padding:200px;padding-top:10px;padding-right:100px;padding-bottom:10px;" float="left" id="test"> | ||
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<h5 style="line-height:1.4em;font-size:110%;"> | <h5 style="line-height:1.4em;font-size:110%;"> | ||
The expression of GFP protein decreases significantly after the bacteria senses fatty acid. At the beginning, bacteria still utilize nutrient component in LB medium (mainly yeast extract) as carbon source. Therefore, the metabolism of fatty acid has not started yet and repression of CI protein keeps going. This is the main reason that causes the increasing of GFP amount at the beginning of the curve. After the carbon containing material in LB medium being exhausted, the fatty acid metabolism started and the CI protein begins to be expressed. As a result, the amount of GFP keep decreases at the later part of the curve.</p> | The expression of GFP protein decreases significantly after the bacteria senses fatty acid. At the beginning, bacteria still utilize nutrient component in LB medium (mainly yeast extract) as carbon source. Therefore, the metabolism of fatty acid has not started yet and repression of CI protein keeps going. This is the main reason that causes the increasing of GFP amount at the beginning of the curve. After the carbon containing material in LB medium being exhausted, the fatty acid metabolism started and the CI protein begins to be expressed. As a result, the amount of GFP keep decreases at the later part of the curve.</p> | ||
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<strong style="font-size:110%">Conclusion:</strong></p> | <strong style="font-size:110%">Conclusion:</strong></p> | ||
<p id="back">FadR/FadL(+) E.coli strain grows better in the critical environment, compared to the control group. The phenomenon suggests FadR and FadL protein play important roles in the uptake and metabolism of fatty acid in E.coli. Fatty acid sensing system can be designed on the basis of the dynamic interaction between FadR-acyl-coA complex , fatty acid molecules and pfadBA promoter </p> | <p id="back">FadR/FadL(+) E.coli strain grows better in the critical environment, compared to the control group. The phenomenon suggests FadR and FadL protein play important roles in the uptake and metabolism of fatty acid in E.coli. Fatty acid sensing system can be designed on the basis of the dynamic interaction between FadR-acyl-coA complex , fatty acid molecules and pfadBA promoter </p> | ||
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<h4 style="color:#00A0E9">Background Knowledge :</h4></p> | <h4 style="color:#00A0E9">Background Knowledge :</h4></p> | ||
<h5 style="line-height:1.4em;font-size:110%;"> | <h5 style="line-height:1.4em;font-size:110%;"> | ||
- | <p><img src=" | + | <p><img src="https://2014.igem.org/File:NTU_Taida_Keratinase_background.jpg"></p> |
The outermost layer of human skin is called keratin layer (F.g1), which acts as a protective barrier against outside environment. Keratin is the key structural material making up this outer layer. Although keratin layer is an essential structure of healthy skin, excessive accumulation of keratin can cause pigmentation and dryness of epidermis. Therefore, degrading keratin moderately is helpful . It can cause hydration of skin and increase skin elasticity. This property is proved by studies and degrading keratin has also come to cosmetic uses already.</p> | The outermost layer of human skin is called keratin layer (F.g1), which acts as a protective barrier against outside environment. Keratin is the key structural material making up this outer layer. Although keratin layer is an essential structure of healthy skin, excessive accumulation of keratin can cause pigmentation and dryness of epidermis. Therefore, degrading keratin moderately is helpful . It can cause hydration of skin and increase skin elasticity. This property is proved by studies and degrading keratin has also come to cosmetic uses already.</p> | ||
Keratinase is an enzyme composes degrading capability. It hydrolyzes keratin by attacking disulfide bond of the substrate . It exists in a kind of bacteria, Bacillus licheniformis. And we got gene sequence of the enzyme by extracting whole genome of the bacteria. In addition, the keratinase exhibits mold dehairing capability. | Keratinase is an enzyme composes degrading capability. It hydrolyzes keratin by attacking disulfide bond of the substrate . It exists in a kind of bacteria, Bacillus licheniformis. And we got gene sequence of the enzyme by extracting whole genome of the bacteria. In addition, the keratinase exhibits mold dehairing capability. |
Revision as of 23:09, 17 October 2014