Team:Wash U/Project
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== '''Organism''' == | == '''Organism''' == | ||
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- | ''Rhodobacter sphaeroides'' is a purple Alphaproteobacteria. It is | + | ''Rhodobacter sphaeroides'' is a purple Alphaproteobacteria. It is metabolically flexible: it can grow heterotrophically, via aerobic and anaerobic respiration, as well as phototrophically under anaerobic conditions with light. |
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- | ''R. sphaeroides'' is one of the best understood photosynthetic organisms. The photosystem is located in intracytoplasmic membrane invaginations and the main components are the Light Haresting Complex 2 (LH2), Light Harvesting Complex 1 (LH1), and the Reaction Center (RC). These pigment-protein complexes non-covalently bind bacteriochlorophylls and carotenoids. LH1 and RC make up the core complex and are often found in the ratio 1:1. LH2 is more peripheral and naturally ranges in the ratio to LH1/RC of 3.0:1 to 6.7:1 under varying light conditions (Scheuring et al., 2005). LH2 absorbs photons maximally at the wavelengths of 850 and 800 nm and funnels its energy to LH1 and the reaction center for photochemistry. (Scheuring et al., 2005). | + | ''R. sphaeroides'' is one of the best understood photosynthetic organisms. The photosystem is located in intracytoplasmic membrane invaginations and the main components are the Light Haresting Complex 2 (LH2), Light Harvesting Complex 1 (LH1), and the Reaction Center (RC). These pigment-protein complexes non-covalently bind bacteriochlorophylls and carotenoids. LH1 and RC make up the core complex and are often found in the ratio of 1:1. LH2 is more peripheral and naturally ranges in the ratio to LH1/RC of 3.0:1 to 6.7:1 under varying light conditions (Scheuring et al., 2005). LH2 absorbs photons maximally at the wavelengths of 850 and 800 nm and funnels its energy to LH1 and the reaction center for photochemistry. (Scheuring et al., 2005). |
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The two subunits of LH2 are coded for by the pucB/A genes and are naturally promoted by the puc promoter. | The two subunits of LH2 are coded for by the pucB/A genes and are naturally promoted by the puc promoter. | ||
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<div style="text-align: left;"> | <div style="text-align: left;"> | ||
- | [[Image:Tissue Flask | + | [[Image:Tissue Flask 2b.png| 450 px| left]][[Image:Tissue Flask 1b.png| 450px | right]]<br><br><br><br><br><br><br><br><br><br><br><br><br><br><br> |
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- | |<font size="2" style="color:#black;">'''b''' The Change in the Optical Density of the Tissue Flasks for | + | |<font size="2" style="color:#black;">'''b''' The Change in the Optical Density of the Tissue Flasks for DBComega |
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- | |<font size="2" style="color:#black;">'''a''' | + | |<font size="2" style="color:#black;">'''a''' R. sphaeroides Spectrum by Flask Distance from Source |
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- | |<font size="2" style="color:#black;">'''b''' | + | |<font size="2" style="color:#black;">'''b'''DBComega Spectrum by Flask Distance from Source |
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'''e''' Wild Type Absolute Irradiance Behind Flask 1: Day 6 | '''e''' Wild Type Absolute Irradiance Behind Flask 1: Day 6 | ||
[[Image: irradiance WT flask 1 day6.png| 450px | center]] | [[Image: irradiance WT flask 1 day6.png| 450px | center]] | ||
- | + | Figure 5 shows the results of the absolute irradiance data taken using the sprectroradiomter. A and B shows absolute irradiance on a given flask at each wavelength. Figure C and D represent the data for the same days as A and B in two dimensions. Figure E is the absolute irradiance behind only flask 1 on day 6. <br> | |
<div style="text-align: center;"> | <div style="text-align: center;"> | ||
- | + | {|style="background-color:#ffefd5; width:100%" <font size="2"> | |
- | '''Figure 6''' | + | | |
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- | + | |<font size="2" style="color:#black;">'''Figure 6''' | |
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+ | |<font size="2" style="color:#black;">'''Figure 7''' | ||
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- | + | {|style="background-color:#ffefd5; width:100%" <font size="2"> | |
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- | Simulated Optical Density of Mutant and Wild Type Bioreactors<br> | + | | |
- | Layers One and Two | + | | |
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+ | |<font size="2" style="color:#black;">Nonlinear least-squares estimation of WT LH2 saturation curve | ||
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+ | |<font size="2" style="color:#black;">Simulated Optical Density of Mutant and Wild Type Bioreactors<br>Layers One and Two Layers Three, Four and Five | ||
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+ | |} | ||
- | + | [[Image: saturation for WT as inferred.png| 450px | left]][[Image: OD after 3,4, and 5.jpg| 215px |right]][[Image: OD after flask 1 and 2.jpg| 215px | center]] | |
- | [[Image: | + | {|style="background-color:#ffefd5; width:100%" <font size="2"> |
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+ | |<font size="2" style="color:#black;">Figure 6 derived from absolute irradiance data from WT tissue flask experiment | ||
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+ | |<font size="2" style="color:#black;">Figure 7 shows the results of modeling the WT vs. mutant regulation system | ||
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+ | |} | ||
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<div style="text-align: left;"> | <div style="text-align: left;"> | ||
[https://2009.igem.org/Team:Wash_U/Project Back To Top] | [https://2009.igem.org/Team:Wash_U/Project Back To Top] |
Latest revision as of 00:48, 10 November 2009