Part:BBa_K2334014
J23113 4.1.1.97 + J23107 pucM + K2334001
Combination of J23113 + RiboJ + B0034 + 4.1.1.97, OHCU decarboxylase generator, J23107 + RiboJ + B0034 + pucM, HIU hydrolase generator & BBa_K2334001(J23100 + RiboJ + B0034 + pucL, Urate Oxidase Generator)
The stereospecific oxidative degradation of uric acid to (S)-allantoin was recently shown to proceed via three enzymatic steps. The final conversion is a decarboxylation of the unstable intermediate 2-oxo-4-hydroxy-4-carboxy-5-ureidoimidazoline (OHCU) and is catalyzed by OHCU decarboxylase. In our project, the OHCU decarboxylase is used as the important enzyme in urate degradation, whose expression is driven by J23113. RiboJ is used for the quantitive pathway construction.
The ureide pathway, which produces ureides from uric acid, is an essential purine catabolic process for storing and transporting the nitrogen fixed in leguminous plants and some bacteria. PucM from Bacillus subtilis was recently characterized and found to catalyze the second reaction of the pathway, hydrolyzing 5-hydroxyisourate (HIU), a product of uricase in the first step. PucM has 121 amino acid residues and shows high sequence similarity to the functionally unrelated protein transthyretin (TTR), a thyroid hormone-binding protein. Therefore, PucM belongs to the TTRrelated proteins (TRP) family. In our project, PucM is used as the important enzyme in urate degradation, whose expression is driven by J23107 in this part. RiboJ is used for the quantitive pathway construction.
Urate oxidase (uricase, EC 1.7.3.4) is an enzyme with copper bonds that catalyze the oxidative opening of the purine ring of uric acid to form allantoin which is 5–10 times more soluble than uric acid. In Bacilus Subtilis, the gene is coded by pucL gene. This enzyme can be used therapeutically to reduce toxic urate accumulation. In our project, uricase is used as the most important enzyme in urate degradation, whose expression is driven by J23100. RiboJ is used for the quantitive pathway construction.
We used the crude bacteria extraction to test the partial or the partial pathway(pucL + pucM) function directly. Before we started to react, the total protein quantity of each sample was made the same. 100ul crude extraction was added into 900ul PBS with urate (PH=8.0). HPLC was performed after reaction for 2h and 100 ℃ heat for 10min.The results show that, pucM did work. The tendency can be explained as follows: when the promoter is too strong, it causes excessive consuming of energy in the bacteria, and the expression of the main enzyme pucL is thus limited; when the promoter is too weak, the reaction can’t attain equilibrium as quickly as with a stronger promoter. So when measured at the time, if the equilibrium was not attained, the performance of the pathway with weaker promoter would be worse. Our modeling result is consistent with our experiment result here. However, the result of separated crude extraction mix experiment can't be explained with the same theory, because when the continuous measurement was performed, performances of different reaction systems with PucL protein were always the same when measured at a time.
Sequence and Features
- 10COMPATIBLE WITH RFC[10]
- 12INCOMPATIBLE WITH RFC[12]Illegal NheI site found at 7
Illegal NheI site found at 30
Illegal NheI site found at 782
Illegal NheI site found at 805
Illegal NheI site found at 1170
Illegal NheI site found at 1401
Illegal NheI site found at 1424 - 21COMPATIBLE WITH RFC[21]
- 23COMPATIBLE WITH RFC[23]
- 25INCOMPATIBLE WITH RFC[25]Illegal NgoMIV site found at 203
- 1000INCOMPATIBLE WITH RFC[1000]Illegal SapI.rc site found at 1054
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