Difference between revisions of "Part:BBa K2382001"
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==Characterization of the MSMEG_5998== | ==Characterization of the MSMEG_5998== | ||
− | === | + | ===Expression results=== |
+ | ====IPTG induction==== | ||
<div style="text-align:justify;"> | <div style="text-align:justify;"> | ||
MSMEG_5998 ( plasmid is from Australia) were transformed into E. coli BL21 (DE3) | MSMEG_5998 ( plasmid is from Australia) were transformed into E. coli BL21 (DE3) | ||
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confirm the suitable concentration of cell supernatant, we do western blot. The results are demonstrated in figure 1. After centrifuging for two times, we could find a high percentage of proteins in the | confirm the suitable concentration of cell supernatant, we do western blot. The results are demonstrated in figure 1. After centrifuging for two times, we could find a high percentage of proteins in the | ||
cell supernatant (the 13000 Su group). | cell supernatant (the 13000 Su group). | ||
− | + | First, we transformed plasmid (encodes MSMEG_5998) from Australia into E. coli BL21 (DE3) strain to express protein. Then IPTG was used to induce the expression system since all plasmids in our project had T7 promoter. We sonicated E. coli and did 9500 rpm and 13000 rpm centrifugation to remove the cell pellet and obtain the supernatant. To confirm the suitable concentration of cell supernatant, we did SDS-PAGE electrophoresis and coomassie brilliant blue staining. The result is demonstrated in the Fig. 1A. After centrifuging two times, we could find a high percentage of proteins in the cell supernatant (the 13000 Su group). | |
− | |||
− | |||
− | |||
− | + | [[File:Fig 1A.png|350px|thumb|left|'''Fig. 1A''': Cell lysates were analyzed by SDS-PAGE and coomassie brilliant blue staining. 9500 T meant the initial sample obtained after sonication; 9500 P and 13000 T meant the pellet and the supernatant gotten after 9500 rpm for 20 min; 13000 P and 13000 Su meant the pellet and the supernatant obtained after 13000 rpm for 20 min.]] | |
<br style="clear: both" /> | <br style="clear: both" /> | ||
+ | |||
+ | ====Protein purification, and dialysis==== | ||
+ | After extracting the cell lysates, we used nickel-resin column to purify our target proteins from the cell lysates because all of our proteins were tagged with 6 histidines at their C-terminal ends. After protein purification, protein dialysis with diaysis buffer containing 150 mM NaCl, 20 mM Tris-HCl (pH=7.5), and 20% glycerol to remove imidazole in our purified proteins, we did SDS-PAGE gel electrophoresis to ensure our target proteins were successfully purified (Fig. 2A ). The molecular weights of these proteins are listed in the Table 1. The standard BSA proteins were used to quantify the concentration of target proteins. | ||
+ | |||
+ | <table cellpadding="2" border="1px" cellspacing="0" align="center" width="70%"> | ||
+ | <caption><p align="justify"><b>Table 1: Two expressed recombinant proteins and their molecular weights are listed.</b></p></caption> | ||
+ | <td><b>Proteins</b></td> | ||
+ | <td>Molecular weight</td> | ||
+ | |||
+ | <tr> | ||
+ | <td><b>Australian MSMEG5998</b></td> | ||
+ | <td>18.9 kDa</td> | ||
+ | </tr> | ||
+ | <tr> | ||
+ | <td><b>Australian FGD</b></td> | ||
+ | <td>37.7 kDa</td> | ||
+ | </tr> | ||
+ | </table> | ||
+ | |||
+ | |||
+ | |||
+ | |||
+ | |||
===Protein Expression Over Time=== | ===Protein Expression Over Time=== |
Revision as of 13:29, 31 October 2017
MSMEG_5998
Sequence and Features
- 10COMPATIBLE WITH RFC[10]
- 12COMPATIBLE WITH RFC[12]
- 21COMPATIBLE WITH RFC[21]
- 23COMPATIBLE WITH RFC[23]
- 25INCOMPATIBLE WITH RFC[25]Illegal AgeI site found at 428
- 1000COMPATIBLE WITH RFC[1000]
Usage and Biology
This is an enzyme that could degrade aflatoxin with the aid of coenzyme F420. It belongs to the F420H2-dependent reductases family from Mycobacterium Smegmatis.
Contents
Characterization of the MSMEG_5998
Expression results
IPTG induction
MSMEG_5998 ( plasmid is from Australia) were transformed into E. coli BL21 (DE3) strain to express the protein. Then IPTG was used to induce the expression system, since the plasmid in our project had T7 promoter. We sonicated E. coli and did 9500 rpm and 13000 rpm centrifugation to remove the cell pellet and obtain the supernatant. To confirm the suitable concentration of cell supernatant, we do western blot. The results are demonstrated in figure 1. After centrifuging for two times, we could find a high percentage of proteins in the cell supernatant (the 13000 Su group). First, we transformed plasmid (encodes MSMEG_5998) from Australia into E. coli BL21 (DE3) strain to express protein. Then IPTG was used to induce the expression system since all plasmids in our project had T7 promoter. We sonicated E. coli and did 9500 rpm and 13000 rpm centrifugation to remove the cell pellet and obtain the supernatant. To confirm the suitable concentration of cell supernatant, we did SDS-PAGE electrophoresis and coomassie brilliant blue staining. The result is demonstrated in the Fig. 1A. After centrifuging two times, we could find a high percentage of proteins in the cell supernatant (the 13000 Su group).
Protein purification, and dialysis
After extracting the cell lysates, we used nickel-resin column to purify our target proteins from the cell lysates because all of our proteins were tagged with 6 histidines at their C-terminal ends. After protein purification, protein dialysis with diaysis buffer containing 150 mM NaCl, 20 mM Tris-HCl (pH=7.5), and 20% glycerol to remove imidazole in our purified proteins, we did SDS-PAGE gel electrophoresis to ensure our target proteins were successfully purified (Fig. 2A ). The molecular weights of these proteins are listed in the Table 1. The standard BSA proteins were used to quantify the concentration of target proteins.
Proteins | Molecular weight |
Australian MSMEG5998 | 18.9 kDa |
Australian FGD | 37.7 kDa |
Protein Expression Over Time
We transformed the plasmids that contained MSMEG_5998(BBa_K2382001) and Thioredoxin-MSMEG_5998 fusion protein(BBa_K2382009) respectively into competent cell E.coli BL21. After cultured overnight, measure the ABS600 and diluting the LB medium to O.D.=0.1. Then incubate at 37℃, 150 rpm until the O.D. of the samples reach 0.4 to 0.6 . Add 80ul 100mM IPTG( final concentration : 0.4mM ) to 125 ml flask and return to 37°C. From then on, after measure the O.D. values, transfer 1 ml from the induced sample and centrifuge at maximum speed for 60 seconds at RT and remove supernatant at 0, 1, 2, 3, 4, 5, 6, 7, 8 hours and 0, 0.5, 1.0, 1.5, 2.0 ,2.5 , 3.0, 3.5, 4 hours. Then we use Western Blot mehtod to amalyze the quantaty of MSMEG_5998 at each time spot. </p>
Discussion
According to the data shown above, the growth curve of E.coli BL21 with Synthetic MSMEG_5998 reached the ceiling when the O.D. value was approximately at 2 while the amount of Synthetic MSMEG_5998 were still increasing.
Though the amount of Synthetic MSMEG_5998 increased consistently with time, we could not jump to conclusions that it was proper to incubate E.coli as long as possible. Another consideration was the time it would take. Just as our expected, it growed fast at the first 2.5 hours. That’s why we also chose 2.5hr after induced by IPTG when we extracted Synthetic MSMEG_5998 from total cell lysate in other experiments.
Based on previous experience, if the E.coli was incubated over 4 hours, the protein that it expressed may be degraded or mis-folded, leading to malfunction. As a result, it was also an important issue for this modeling. However, because of the lack of F420, we did not have the chance to check the enzyme activity of each time spot. It was still unknown whether the titer of the Synthetic MSMEG_5998 would change or not and awaited further research.
References
(1)Taylor, M.C., et al., Identification and characterization of two families of F420H2‐dependent reductases from Mycobacteria that catalyse aflatoxin degradation. Molecular microbiology, 2010. 78(3): p. 561-575.
(2)Lapalikar, G.V., et al., F420H2-dependent degradation of aflatoxin and other furanocoumarins is widespread throughout the Actinomycetales. PLoS One, 2012. 7(2): p. e30114.