User:Jennifer Taylor/Sandbox 4

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Since the methyl side chain of alanine is nonreactive and cannot be phosphorylated, we decided to mutate all three amino acids in our putative catalytic triad to alanine (S164A, D193A, H196A). In addition, alanine is hydrophobic while serine, aspartate, and histidine are hydrophilic.
Since the methyl side chain of alanine is nonreactive and cannot be phosphorylated, we decided to mutate all three amino acids in our putative catalytic triad to alanine (S164A, D193A, H196A). In addition, alanine is hydrophobic while serine, aspartate, and histidine are hydrophilic.
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Figures 13 through 16 show our transformation results with four of our different PCR products. Our four primers included the D193A mutation, the H196A mutation, and the S164A mutation. Since two of our primers overlapped, we also had a single primer that took care of the two mutations, D193A and H196A, simultaneously. Each plate has colonies; the low transformation efficiency was expected because our cloned PCR products were lower in concentration.
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Figures 13 through 16 show our transformation results with four of our different PCR products. Our four primers included the D193A mutation, the H196A mutation, and the S164A mutation. Since two of our primers overlapped, we also had a single primer that took care of the two mutations, D193A and H196A, simultaneously. Each plate has colonies; low transformation efficiency was expected because our cloned PCR products were lower in concentration.
[[Image:4Q7Q_D193A_mutation.png|thumb|left|250px|Figure 13: D193A mutation, transformed in DH5α.]][[Image:4Q7Q_H196A_mutation.png|thumb|right|250px|Figure 14. H196A mutation, transformed in DH5α.]][[Image:4Q7Q_S164A_mutation.png|thumb|left|250px|Figure 15. S164A mutation, transformed in DH5α.]][[Image:4Q7Q_D193A_H196A_mutations.png|thumb|right|250px|Figure 16. D193A and H196A mutations, transformed in DH5α.]]
[[Image:4Q7Q_D193A_mutation.png|thumb|left|250px|Figure 13: D193A mutation, transformed in DH5α.]][[Image:4Q7Q_H196A_mutation.png|thumb|right|250px|Figure 14. H196A mutation, transformed in DH5α.]][[Image:4Q7Q_S164A_mutation.png|thumb|left|250px|Figure 15. S164A mutation, transformed in DH5α.]][[Image:4Q7Q_D193A_H196A_mutations.png|thumb|right|250px|Figure 16. D193A and H196A mutations, transformed in DH5α.]]
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==Future Directions==
==Future Directions==
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[[Image:Michaelis_Menten_equation.png|thumb|left|250px|Figure 17: Michaelis-Menten equation. Calculates the maximal rate of the reaction. K<sub>m</sub> is a measure of the concentration of the substrate when the velocity of the reaction is 1/2 V<sub>max</sub>. A lower K<sub>m</sub> value represents a stronger binding affinity; the reaction will reach V<sub>max</sub> faster.
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Due to time constraints, we were unable to perform another pNPB assay using the mutated catalytic triad to confirm that our putative catalytic triad was accurate.
Due to time constraints, we were unable to perform another pNPB assay using the mutated catalytic triad to confirm that our putative catalytic triad was accurate.
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Future directions include testing substrate specificity through using different types of lipids. Furthermore, we can attempt to optimize our enzymatic activity through varying pH, temperature, and other conditions. More assays using different concentrations of lipids are necessary to calculate We can also attempt to optimize our protein expression altogether, through varying concentrations of IPTG, since our concentration of protein was low.
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Future directions include testing substrate specificity through using different types of lipids. Furthermore, we can attempt to optimize our enzymatic activity through varying pH, temperature, and other conditions. More assays using different concentrations of lipid are necessary to calculate V<sub>max</sub> according to the Michaelis-Menten equation seen in figure 17. We can also attempt to optimize our protein expression altogether, through varying concentrations of IPTG, since the concentration of our protein was low.
</StructureSection>
</StructureSection>
== References ==
== References ==
<references/>
<references/>

Revision as of 17:22, 23 May 2018

4Q7Q

Structure of 4Q7Q

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References

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Jennifer Taylor

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