Team:Lethbridge/Project/Compartamentalization
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The compartment we are using is made up from a single protein (lumazine synthase or LS) that forms an icosahedral by assembling 60, 120 or 180 of the monomers and if found in <i>Aquifex aeolicus</i> (Seebeck <i>et al.</i>, 2006). This protein has been characterized and shown that it forms this structure with a cavity that is able to encapsulate other molecules. In the previous characterization it was shown that by selectively mutating five of the interior amino acids of the compartment to glutamate and by attaching a positively charged arginine tag to the C-terminus of the protein for targeting you can selectively target the tagged protein into the compartment (Seebeck <i>et al.</i>, 2006)<font color="red"> link 2009 Lethbridge Modeling<font color="white">. We will be using these features to selectively target our catechol-2,3-dioxygenase into the compartment <font color="red"> link<font color="white">. | The compartment we are using is made up from a single protein (lumazine synthase or LS) that forms an icosahedral by assembling 60, 120 or 180 of the monomers and if found in <i>Aquifex aeolicus</i> (Seebeck <i>et al.</i>, 2006). This protein has been characterized and shown that it forms this structure with a cavity that is able to encapsulate other molecules. In the previous characterization it was shown that by selectively mutating five of the interior amino acids of the compartment to glutamate and by attaching a positively charged arginine tag to the C-terminus of the protein for targeting you can selectively target the tagged protein into the compartment (Seebeck <i>et al.</i>, 2006)<font color="red"> link 2009 Lethbridge Modeling<font color="white">. We will be using these features to selectively target our catechol-2,3-dioxygenase into the compartment <font color="red"> link<font color="white">. | ||
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+ | To characterize the means of targeting the tagged protein we will be using another expression construct as shown in Figure 1 that contains the IPTG inducible LS that also has two fluorescent proteins – cyan fluorescent protein (CFP) and yellow fluorescent protein (YFP) – that are controlled by an arabinose induced inverter. This would allow us to selectively express the LS by adding IPTG and repressing the fluorescent protein expression by adding arabinose. We have chosen to work with CFP and YFP due their ability to undergo fluorescence resonance energy transfer (FRET) that will allow us to observe their colocalization within the LS microcompartment (for a general overview of FRET visit <font color="red"> link Wikipedia<font color="white"> or <font color="red"> link 2009 Lethbridge Wiki<font color="white">). By observing FRET within the microcompartment it will demonstrate our ability to selectively localize multiple proteins within it. | ||
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+ | With our ability to control the production of LS and the florescent proteins separately we will be able to determine the optimal conditions that will allow the colocalization of the proteins. By varying both the concentrations of arabinose and IPTG as well as the times of induction we will be able to determine the optimal conditions. Examples of conditions we will attempt in the future are shown in Figure 2. This will allow us to determine if the microcompartments form before entry of the proteins, after or simultaneously for a better understanding of the system. | ||
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<p><font color="white">(A)</p> | <p><font color="white">(A)</p> | ||
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<p><font color="white">(B)</p> | <p><font color="white">(B)</p> | ||
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<p><font color="white">(C)</p> | <p><font color="white">(C)</p> | ||
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<th align="left"><p><font color="white">(D) coming soon!</p> | <th align="left"><p><font color="white">(D) coming soon!</p> | ||
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By characterizing LS microcompartment formation we will be able to optimize the system getting maximum protein withing the compartment. We will then use the comparment to isolate the catechol-2,3-dioxygenase (Figure 3), purify the complex and use for application on tailings ponds water<font color="red"> link<font color="white"> . Once we have demonstrated that we are successfully able to isolate the catechol-2,3-dioxygenase we will then add more enzymes for the bioremediation of the tailings ponds. | By characterizing LS microcompartment formation we will be able to optimize the system getting maximum protein withing the compartment. We will then use the comparment to isolate the catechol-2,3-dioxygenase (Figure 3), purify the complex and use for application on tailings ponds water<font color="red"> link<font color="white"> . Once we have demonstrated that we are successfully able to isolate the catechol-2,3-dioxygenase we will then add more enzymes for the bioremediation of the tailings ponds. | ||
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This work will be a proof of principle that will show the compartmentalization of the proteins within the LS microcomparment for use in other systems. By isolating pathways within the compartment it will increase the pathway's efficiency by localizing the products of each reaction to an area where the next enzyme in the pathway is located. We will apply this principle to our system so that we can isolate the microcompartments containing the pathway from the cell and apply it to the tailings. A tool such as we are working to produce and characterize for selectively targeting proteins into a compartment has many applications for any lab that is using molecular biology techniques such as isolateing a toxic protein from the cell and increasing a pathways efficiency. | This work will be a proof of principle that will show the compartmentalization of the proteins within the LS microcomparment for use in other systems. By isolating pathways within the compartment it will increase the pathway's efficiency by localizing the products of each reaction to an area where the next enzyme in the pathway is located. We will apply this principle to our system so that we can isolate the microcompartments containing the pathway from the cell and apply it to the tailings. A tool such as we are working to produce and characterize for selectively targeting proteins into a compartment has many applications for any lab that is using molecular biology techniques such as isolateing a toxic protein from the cell and increasing a pathways efficiency. | ||
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