Difference between revisions of "Part:BBa K4724024"

 
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__NOTOC__
 
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<partinfo>BBa_K4724023 short</partinfo>
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<partinfo>BBa_K4724024 short</partinfo>
  
The hydrophobicity of the PET surface prevents <i>Is</i>PETase from binding to PET, which prevents <i>Is</i>PETase from functioning well. By adding a hydrophobic domain CBM11 to <i>Is</i>PETase, the hydrophobic domain of <i>Is</i>PETase can bind to the hydrophobic surface of PET more easily under the force of water molecule movement.
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The hydrophobicity of the PET surface prevents <i>Is</i>PETase from binding to PET, which prevents <i>Is</i>PETase from functioning well. By adding a hydrophobic domain LSChi4CBM to <i>Is</i>PETase, the hydrophobic domain of <i>Is</i>PETase can bind to the hydrophobic surface of PET more easily under the force of water molecule movement.
 
<h1>Construction</h1>
 
<h1>Construction</h1>
A recombinant plasmid containing this complex element was constructed using pET-22b(+) as a vector. The recombinant plasmid was obtained by fusing <i>Is</i>PETase with CBM11, a hydrophobic domain with a linker, using the Gibson assembly method. The recombinant plasmid was transformed into an <i>E.coli</i> BL21(DE3) sensory state. Colony PCR was performed using T7 and the post primer of the amplified domain as primers as shown in Fig.1.
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A recombinant plasmid containing this complex element was constructed using pET-22b(+) as a vector. The recombinant plasmid was obtained by fusing <i>Is</i>PETase with LSChi4CBM, a hydrophobic domain with a linker, using the Gibson assembly method. The recombinant plasmid was transformed into an <i>E.coli</i> BL21(DE3) sensory state. Colony PCR was performed using T7 and the post primer of the amplified domain as primers as shown in Fig.1.
 
https://static.igem.wiki/teams/4724/wiki/2-fig-1-3-fig-1-4-fig-1-5-fig-1.png
 
https://static.igem.wiki/teams/4724/wiki/2-fig-1-3-fig-1-4-fig-1-5-fig-1.png
  
Fig.1 10-14 Colony PCR bands of pET22b-<i>Is</i>PETase-CBM11
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Fig.1 15-19 Colony PCR bands of pET22b-<i>Is</i>PETase-LSChi4CBM
 
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<h1>Characterization</h1>
 
<h1>Characterization</h1>
 
<b>1. SDS-PAGE</b>
 
<b>1. SDS-PAGE</b>
  
After the protein was induced by 1 mM IPTG, we used a nickel column to purify the protein because CBM11 incorporates 6xHis Tag. After the column was equilibrated, 30 mM and 300 mM imidazole buffer were added to rinse the column, and the target protein eluted with 300 mM imidazole buffer was collected. After purification, SDS-PAGE was performed to confirm the successful expression, as shown in Fig.2.
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After the protein was induced by 1 mM IPTG, we used a nickel column to purify the protein because LSChi4CBM incorporates 6xHis Tag. After the column was equilibrated, 30 mM and 300 mM imidazole buffer were added to rinse the column, and the target protein eluted with 300 mM imidazole buffer was collected. After purification, SDS-PAGE was performed to confirm the successful expression, as shown in Fig.2.
 
https://static.igem.wiki/teams/4724/wiki/3-fig-2-4-fig-2-5-fig-2.png
 
https://static.igem.wiki/teams/4724/wiki/3-fig-2-4-fig-2-5-fig-2.png
  
Fig.2 SDS-PAGE of <i>Is</i>PETase-CBM11 supernatant, starch, and purified protein after the introduction of the molecular chaperone pGro7.
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Fig.2 SDS-PAGE of <i>Is</i>PETase-LSChi4CBM supernatant, starch, and purified protein after the introduction of the molecular chaperone pGro7.
  
 
M:180kDa Prestained Protein Marker
 
M:180kDa Prestained Protein Marker
 
   
 
   
10-12:<i>Is</i>PETase-CBM11 supernatant, precipitate, and purified enzyme solution (protein size~46kDa)
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13-15:<i>Is</i>PETase-LSChi4CBM supernatant, precipitate, and purified enzyme solution (protein size~46kDa)
  
 
<b>2. HPLC</b>
 
<b>2. HPLC</b>
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https://static.igem.wiki/teams/4724/wiki/1-fig-3c-2-fig-3c-3-fig-3c-4-fig-3c-5-fig-3c-6-fig-3c.png
 
https://static.igem.wiki/teams/4724/wiki/1-fig-3c-2-fig-3c-3-fig-3c-4-fig-3c-5-fig-3c-6-fig-3c.png
  
Fig.3 Concentrations of TPA and MHET products of 500 nM <i>Is</i>PETase-CBM11 reacted with PET powder for 48 h at different temperatures. (A) is the product concentration at 30°C, (B) is the product concentration at 37°C, and (C) is the product concentration at 45°C. The product concentration was determined by the reaction of 500 nM <i>Is</i>PETase- CBM11 with PET powder for 48 h at different temperatures.
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Fig.3 Concentrations of TPA and MHET products of 500 nM <i>Is</i>PETase-LSChi4CBM reacted with PET powder for 48 h at different temperatures. (A) is the product concentration at 30°C, (B) is the product concentration at 37°C, and (C) is the product concentration at 45°C. The product concentration was determined by the reaction of 500 nM <i>Is</i>PETase-LSChi4CBM with PET powder for 48 h at different temperatures.
  
 
<h1>Conclusion</h1>
 
<h1>Conclusion</h1>
The degradation of PET by <i>Is</i>PETase-CBM11 was significantly improved compared with that by WT at 30°C, 37°C and 45°C. The results showed that CBM11 was effective in improving the degradation of PET by <i>Is</i>PETase-CBM11. This indicates that CBM11 plays a role in enhancing the hydrophobicity of <i>Is</i>PETase.
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The degradation of PET by <i>Is</i>PETase-LSChi4CBM at 30°C, 37°C, and 45°C was significantly reduced compared with that by WT.
  
 
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<span class='h3bb'>Sequence and Features</span>
 
<span class='h3bb'>Sequence and Features</span>
<partinfo>BBa_K4724023 SequenceAndFeatures</partinfo>
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<partinfo>BBa_K4724024 SequenceAndFeatures</partinfo>
  
  
 
<!-- Uncomment this to enable Functional Parameter display  
 
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===Functional Parameters===
 
===Functional Parameters===
<partinfo>BBa_K4724023 parameters</partinfo>
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<partinfo>BBa_K4724024 parameters</partinfo>
 
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Latest revision as of 06:05, 12 October 2023

IsPETase-Linker- LSChi4CBM -6xHisTag

The hydrophobicity of the PET surface prevents IsPETase from binding to PET, which prevents IsPETase from functioning well. By adding a hydrophobic domain LSChi4CBM to IsPETase, the hydrophobic domain of IsPETase can bind to the hydrophobic surface of PET more easily under the force of water molecule movement.

Construction

A recombinant plasmid containing this complex element was constructed using pET-22b(+) as a vector. The recombinant plasmid was obtained by fusing IsPETase with LSChi4CBM, a hydrophobic domain with a linker, using the Gibson assembly method. The recombinant plasmid was transformed into an E.coli BL21(DE3) sensory state. Colony PCR was performed using T7 and the post primer of the amplified domain as primers as shown in Fig.1. 2-fig-1-3-fig-1-4-fig-1-5-fig-1.png

Fig.1 15-19 Colony PCR bands of pET22b-IsPETase-LSChi4CBM

Characterization

1. SDS-PAGE

After the protein was induced by 1 mM IPTG, we used a nickel column to purify the protein because LSChi4CBM incorporates 6xHis Tag. After the column was equilibrated, 30 mM and 300 mM imidazole buffer were added to rinse the column, and the target protein eluted with 300 mM imidazole buffer was collected. After purification, SDS-PAGE was performed to confirm the successful expression, as shown in Fig.2. 3-fig-2-4-fig-2-5-fig-2.png

Fig.2 SDS-PAGE of IsPETase-LSChi4CBM supernatant, starch, and purified protein after the introduction of the molecular chaperone pGro7.

M:180kDa Prestained Protein Marker

13-15:IsPETase-LSChi4CBM supernatant, precipitate, and purified enzyme solution (protein size~46kDa)

2. HPLC

After protein purification, an enzymatic reaction was performed to measure the enzyme activity. The substrate used was PET powder, which was decomposed into TPA and MHET by IsPETase, and the reaction solution was subjected to high performance liquid chromatography (HPLC), and the 6-min liquid phase result corresponded to TPA and the 8-min liquid phase result corresponded to MHET. The peak area of the product output from the liquid chromatograph was converted into the concentration of the product through a standardized line, as shown in Fig.3. 1-fig-3a-2-fig-3a-3-fig-3a-4-fig-3a-5-fig-3a-6-fig-3a.png 1-fig-3b-2-fig-3b-3-fig-3b-4-fig-3b-5-fig-3b-6-fig-3b.png 1-fig-3c-2-fig-3c-3-fig-3c-4-fig-3c-5-fig-3c-6-fig-3c.png

Fig.3 Concentrations of TPA and MHET products of 500 nM IsPETase-LSChi4CBM reacted with PET powder for 48 h at different temperatures. (A) is the product concentration at 30°C, (B) is the product concentration at 37°C, and (C) is the product concentration at 45°C. The product concentration was determined by the reaction of 500 nM IsPETase-LSChi4CBM with PET powder for 48 h at different temperatures.

Conclusion

The degradation of PET by IsPETase-LSChi4CBM at 30°C, 37°C, and 45°C was significantly reduced compared with that by WT.

Sequence and Features


Assembly Compatibility:
  • 10
    INCOMPATIBLE WITH RFC[10]
    Illegal PstI site found at 56
  • 12
    INCOMPATIBLE WITH RFC[12]
    Illegal PstI site found at 56
  • 21
    INCOMPATIBLE WITH RFC[21]
    Illegal XhoI site found at 790
  • 23
    INCOMPATIBLE WITH RFC[23]
    Illegal PstI site found at 56
  • 25
    INCOMPATIBLE WITH RFC[25]
    Illegal PstI site found at 56
    Illegal NgoMIV site found at 969
    Illegal AgeI site found at 546
  • 1000
    COMPATIBLE WITH RFC[1000]