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<div class="title">Accumulation Results</div> | <div class="title">Accumulation Results</div> | ||
− | <article>To test whether our accumulation system with the importers <i>oprC</i>, <i>hmtA</i>, <i>copC</i> and <i>copD</i> works as expected, we conducted experiments indicating Cu(II) ion uptake. We conducted growth experiments as due to its toxicity intracellular copper hinders cell growth and this would point to a working uptake system. We also conducted membrane permeability assays to show the location in the outer membrane and the channel nature of the proteins.</article> | + | <article>To test whether our accumulation system with the importers <i>oprC</i>, <i>hmtA</i>, <i>copC</i> and <i>copD</i> works as expected, we conducted experiments indicating Cu(II) ion uptake. We conducted growth experiments as due to its toxicity intracellular copper hinders cell growth and this would point to a working uptake system. We also conducted membrane permeability assays to show the location in the outer membrane and the channel nature of the proteins. We also conducted an experiment on the specifity of the ion uptake.</article> |
<h2>Toxicity assays</h2> | <h2>Toxicity assays</h2> | ||
<div class="article"> | <div class="article"> | ||
− | As intracellular copper triggers toxic effects on the cell (also see <a href="https://2018.igem.org/Team:Bielefeld-CeBiTec/Toxicity_Theory" target="_blank">Toxicity</a>), an increased uptake of Cu(II) ions should exacerbate cell growth. Therefore, we examined the growth of <i>E. coli</i> expressing <i>copC</i>, <i>copD</i>, <i>oprC</i>, <i>hmtA</i> and pSB1C3 as a control in lysogeny broth (LB) at different concentrations of CuSO<sub>4</sub> (0 mM, 1 mM, 2 mM, 3 mM, 4 mM, 8 mM) by measuring the optical density (OD) at a wavelength of 600 nm. The measurement was performed with the <a href="https://lifesciences.tecan.com/plate_readers/infinite_200_pro" target="_blank"> Infinite® 200 PRO</a> in a 24 wellplate with flat bottom ( | + | As intracellular copper triggers toxic effects on the cell (also see <a href="https://2018.igem.org/Team:Bielefeld-CeBiTec/Toxicity_Theory" target="_blank">Toxicity</a>), an increased uptake of Cu(II) ions should exacerbate cell growth. Therefore, we examined the growth of <i>E. coli</i> expressing <i>copC</i>, <i>copD</i>, <i>oprC</i>, <i>hmtA</i> and pSB1C3 as a control in lysogeny broth (LB) at different concentrations of CuSO<sub>4</sub> (0 mM, 1 mM, 2 mM, 3 mM, 4 mM, 8 mM) by measuring the optical density (OD) at a wavelength of 600 nm. The measurement was performed with the <a href="https://lifesciences.tecan.com/plate_readers/infinite_200_pro" target="_blank"> Infinite® 200 PRO</a> in a 24 wellplate with flat bottom (Greiner®). For expression the biobricks BBa_K525998 (T7 promoter with RBS) and a combination of BBa_I0500 (<i>pBAD/araC</i> promoter) and BBa_B0030 (RBS) were used each in combination with the basic parts BBa_K2638001 (<i>copC</i>), BBa_K2638002 (<i>copD</i>), BBa_K2638200 (<i>oprC</i>) and BBa_K2638000 (<i>hmtA</i>). The resulting parts are shown in table 1: |
</div> | </div> | ||
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<article>The growth of the T7 RBS strains expressing either <i>copC</i>, <i>copD</i>, <i>oprC</i> or <i>hmtA</i>after induction with 0.1 % rhamnose and 0.1 mM IPTG in comparison with non-induced cells is reduced at all tested Cu(II) concentrations in the medium. | <article>The growth of the T7 RBS strains expressing either <i>copC</i>, <i>copD</i>, <i>oprC</i> or <i>hmtA</i>after induction with 0.1 % rhamnose and 0.1 mM IPTG in comparison with non-induced cells is reduced at all tested Cu(II) concentrations in the medium. | ||
<br><br> | <br><br> | ||
− | Figure 1 shows the growth of <i>E. coli</i> | + | Figure 1 shows the growth of <i>E. coli</i> KRX with BBa_K2638201 (<i>oprC</i>). The right graph shows the growth after induction in comparison to the left graph without induction. Overall growth of the cells at 0 mM Cu(II) concentrations has decreased by 47% after 300 minutes. This effect is a consequence of the burden of expressing genes with a high throughput because of the strong T7 promoter. When growing in copper-containing medium there is also an increasing effect of further growth inhibition visible. The effect can be observed best at a concentration of 2 mM copper (see figure 1). The optical density does not only increase at a reduced rate, it even decreases after approximately 220 minutes. This indicates cell death. Both growth inhibitions can not be observed with <i>E. coli</i> carrying pSB1C3.</article> |
<figure role="group"> | <figure role="group"> | ||
<img class="figure hundred" src="https://static.igem.org/mediawiki/2018/7/72/T--Bielefeld-CeBiTec--ES--Growth_Curve_BBa_K2638201.png"> | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/7/72/T--Bielefeld-CeBiTec--ES--Growth_Curve_BBa_K2638201.png"> | ||
<figcaption> | <figcaption> | ||
− | <b>Figure 1:</b> Growth curves measuring OD 600 with <i>E. coli</i> | + | <b>Figure 1:</b> Growth curves measuring OD 600 with <i>E. coli</i> KRX BBa_K2638201 at different CuSO<sub>4</sub> concentrations. Left: No induction. Right: Induction started simultanously with inoculation with 0.1 % rhamnose and 0.1 mM IPTG. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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<img class="figure hundred" src="https://static.igem.org/mediawiki/2018/4/4f/T--Bielefeld-CeBiTec--ES--Growth_Curve_BBa_K2638201_2.png"> | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/4/4f/T--Bielefeld-CeBiTec--ES--Growth_Curve_BBa_K2638201_2.png"> | ||
<figcaption> | <figcaption> | ||
− | <b>Figure 2:</b> Growth curves measuring OD 600 with <i>E. coli</i> | + | <b>Figure 2:</b> Growth curves measuring OD 600 with <i>E. coli</i> KRX BBa_K2638201 at different CuSO<sub>4</sub> concentrations. Left: Induction with 0.1 % rhamnose and 0.1 mM IPTG 30 minutes before inoculation. Right: Induction with 0.1 % rhamnose and 0.1 mM IPTG 60 minutes before inoculation. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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<img class="figure hundred" src="https://static.igem.org/mediawiki/2018/c/c0/T--Bielefeld-CeBiTec--ES--Growth_Curve_BBa_K2638003.png"> | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/c/c0/T--Bielefeld-CeBiTec--ES--Growth_Curve_BBa_K2638003.png"> | ||
<figcaption> | <figcaption> | ||
− | <b>Figure 3:</b> Growth curves measuring OD 600 with <i>E. coli</i> | + | <b>Figure 3:</b> Growth curves measuring OD 600 with <i>E. coli</i> KRX BBa_K2638003 at different CuSO<sub>4</sub> concentrations. Left: No induction. Right: Induction started simultanously with inoculation with 0.1 % rhamnose and 0.1 mM IPTG. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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<figcaption> | <figcaption> | ||
− | <b>Figure 4:</b> Growth curves measuring OD 600 with <i>E. coli</i> | + | <b>Figure 4:</b> Growth curves measuring OD 600 with <i>E. coli</i> KRX BBa_K26380016 at different CuSO<sub>4</sub> concentrations. Left: No induction. Right: Induction started simultanously with inoculation with 0.1 % rhamnose and 0.1 mM IPTG. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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<figcaption> | <figcaption> | ||
− | <b>Figure 5: </b>Growth curves measuring OD 600 with <i>E. coli</i> | + | <b>Figure 5: </b>Growth curves measuring OD 600 with <i>E. coli</i> KRX BBa_K2638004 at different CuSO<sub>4</sub> concentrations. Left: No induction. Right: Induction started simultanously with inoculation with 0.1 % rhamnose and 0.1 mM IPTG. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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<figcaption> | <figcaption> | ||
− | <b>Figure 6: </b>Growth curves measuring OD 600 with <i>E. coli</i> | + | <b>Figure 6: </b>Growth curves measuring OD 600 with <i>E. coli</i> DH5α BBa_K2638006 at different CuSO<sub>4</sub> concentrations. Left: No induction. Right: Induction started simultanously with inoculation with 1 % arabinose. |
</figcaption> | </figcaption> | ||
</figure> | </figure> | ||
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</tr> | </tr> | ||
</table> | </table> | ||
+ | |||
+ | <br> | ||
<article> | <article> | ||
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</div> | </div> | ||
+ | <figure role="group"> | ||
+ | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/1/15/T--Bielefeld-CeBiTec--JZ--FluorescenceNPNCopD.jpeg"> | ||
+ | <figcaption> | ||
+ | <b>Figure 8: </b>Fluorescence spectra from 382 nm to 454 nm of <i>E. coli</i>KRX strains with BBa_K2638004 (<i>copD</i> containing plasmid with T7 promoter control, red curve), BBa_K2638006 (<i>copD</i> containing plasmid with pBAD/araC promoter with RBS control, blue curve) and as reference a strain with an empty pSB1C3 in a KRX strain (yellow curve). The excitation wavelenght is 355 nm. The OD 600 of cells was adjusted with the NPN stock solution to the same value. The measurement was performed with the <a href="https://lifesciences.tecan.com/plate_readers/infinite_200_pro" target="_blank"> Infinite® 200 PRO</a> in a 24 wellplate with flat bottom (Greiner®). | ||
+ | </figcaption> | ||
+ | </figure> | ||
+ | <article> | ||
+ | <b><a href="http://parts.igem.org/Part:BBa_K2638200" target="_blank">OprC (BBa_K2638200, BBa_K2638201 and BBa_K2638204)</a></b> | ||
+ | </article> | ||
+ | |||
+ | <div class="article">OprC is a copper transport protein in the outer membrane. | ||
+ | In both strains which expressed the composite parts <a href="http://parts.igem.org/Part:BBa_K2638201" target="_blank">BBa_2638201</a> and <a href="http://parts.igem.org/Part:BBa_K2638004" target="_blank">BBa_K2638204</a> a higher increase in fluorescence than the pSB1C3 controll strain (yellow curve figure 9) was measurable. | ||
+ | The the strain expressing oprC under control of the pBAD/araC promoter with RBS (BBa_K2638201, blue curve in figure 9) showed a maximum of 71.23 ± 7.78 % in the fluorescence emission at 408 nm. This is a increase of 36.12 % in comparison to the empty control vector. | ||
+ | The <i>oprC</i> strain with the T7 promoter (BBa_2638004, red curve in figure 9) showed a maximum regarding the fluorescence of 57.41 % ± 9.52 % at 408 nm. This is an increase of 22.29 % to the empty control vector. | ||
+ | Due to the difference in the fluorescence maximum at 408 nm of both <i>oprC</i> expressing strains compared to the empty vector control show a substantial increase of the membrane permeability of <i>E. coli</i>. | ||
+ | The difference of fluorescence increase of both <i>oprC</i> Biobricks is substantial. However, the difference in membrane permeability to the pSB1C3 strain and the difference between the both <i>oprC</i> variants was less clear. The BBa_2638201 expressing strain shows a slightly higher permeability than BBa_K2638204 as seen at 406 or 416 nm.</div> | ||
+ | |||
+ | <figure role="group"> | ||
+ | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/e/e1/T--Bielefeld-CeBiTec--JZ--FluorescenceNPNOprC.jpeg"> | ||
+ | |||
+ | <figcaption> | ||
+ | <b>Figure 9: </b>Fluorescence spectra from 382 nm to 454 nm of <i>E. coli</i>KRX strains with BBa_K2638201 (<i>oprC</i> containing plasmid with T7 promoter control, red curve), BBa_K2638204 (<i>oprC</i> containing plasmid with pBAD/araC promoter with RBS control, blue curve) and as reference a strain with an empty pSB1C3 in <i>E. coli</i>KRX strain (yellow curve). The excitation wavelength is 355 nm. The OD 600 of cells was adjusted with the NPN stock solution to the same value. The measurement was performed with the <a href="https://lifesciences.tecan.com/plate_readers/infinite_200_pro" target="_blank"> Infinite® 200 PRO</a> in a 24 wellplate with flat bottom (Greiner®). | ||
+ | </figcaption> | ||
+ | </figure> | ||
+ | |||
+ | <article> | ||
+ | <b><a href="http://parts.igem.org/Part:BBa_K2638001" target="_blank">CopC (BBa_K2638001, BBa_K2638003 and BBa_K2638005)</a></b> | ||
+ | </article> | ||
+ | |||
+ | <div class="article">CopC is a copper mediator protein which is localized in the periplasm. | ||
+ | In both strains which expressed the composite parts <a href="http://parts.igem.org/Part:BBa_K2638003" target=_blank">BBa_2638003</a> and <a href="http://parts.igem.org/Part:BBa_K2638005" target="_blank">BBa_K2638005</a> a higher increase in fluorescence than the pSB1C3 control strain (yellow curve, figure 10) was measurable. | ||
+ | The <i>copC</i> strain with the T7 promoter (BBa_2638003, red curve in figure 10) showed a maximum regarding the fluorescence of 75.23 % ± 17.55 % at 408 nm. This is an increase of 40.20 % to the empty control vector. | ||
+ | The the strain expressing <i>copC</i> under control of the pBAD/araC promoter with RBS (BBa_K2638003, blue curve in figure 10) showed a maximum of 51.42 ± 10.59 % of fluorescence emission at 408 nm. This is a increase of 16.30 % to the empty control vector. A slight difference of the fluorescence emission of both <i>copC</i> expressing strains in comparison to the pSB1C3 empty vector control strain can be observed despite the big error bars. However, the difference between the both <i>copC</i> variants could not be postulated definitely. | ||
+ | </div> | ||
+ | |||
+ | |||
+ | <figure role="group"> | ||
+ | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/4/4a/T--Bielefeld-CeBiTec--JZ--FluorescenceNPNCopC.jpeg"> | ||
+ | |||
+ | <figcaption> | ||
+ | <b>Figure 10: </b>Fluorescence spectra from 382 nm to 454 nm of <i>E. coli</i>KRX strains with BBa_K2638003 (<i>copC</i> containing plasmid with T7 promoter control, red curve), BBa_K2638005 (<i>copC</i> containing plasmid with pBAD/araC promoter with RBS control, blue curve) and as reference a strain with an empty pSB1C3 in <i>E. coli</i>KRX strain (yellow curve). The excitation wavelength is 355 nm. The OD 600 of cells was adjusted with the NPN stock solution to the same value. The measurement was performed with the <a href="https://lifesciences.tecan.com/plate_readers/infinite_200_pro" target="_blank"> Infinite® 200 PRO</a> in a 24 wellplate with flat bottom (Greiner®). | ||
+ | </figcaption> | ||
+ | </figure> | ||
+ | |||
+ | <article> | ||
+ | <b><a href="http://parts.igem.org/Part:BBa_K2638000" target="_blank">HmtA (BBa_K2638000 and BBa_K2638016)</a></b> | ||
+ | </article> | ||
+ | |||
+ | <div class="article">HmtA is a copper and zinc specific transporter in the inner cell membrane. In the strain which expressed the composite part <a href="http://parts.igem.org/Part:BBa_K2638016" target=_blank">BBa_2638016</a> an increase in fluorescence compared to the pSB1C3 control strain (blue curve, figure 11) was measurable. | ||
+ | The <i>hmtA</i> strain with the T7 promoter (BBa_2638016, red curve in figure 11) showed a maximum regarding the fluorescence of 62.35 ± 4.47 % at 408 nm. This is an increase of 27.23 % to the empty control vector. | ||
+ | </div> | ||
+ | |||
+ | |||
+ | <figure role="group"> | ||
+ | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/4/45/T--Bielefeld-CeBiTec--JZ--FluorescenceNPNHmtA.jpeg"> | ||
+ | |||
+ | <figcaption> | ||
+ | <b>Figure 11: </b>Fluorescence spectra from 382 nm to 454 nm of <i>E. coli</i>KRX strains with BBa_K2638016 (<i>hmtA</i> containing plasmid with T7 promoter control, red curve) and as reference a strain with an empty pSB1C3 in <i>E. coli</i>KRX strain (blue curve). The excitation wavelength is 355 nm. The OD 600 of cells was adjusted with the NPN stock solution to the same value. The measurement was performed with the <a href="https://lifesciences.tecan.com/plate_readers/infinite_200_pro" target="_blank"> Infinite® 200 PRO</a> in a 24 wellplate with flat bottom (Greiner®). | ||
+ | </figcaption> | ||
+ | </figure> | ||
+ | |||
+ | <h2>Specific Uptake Assay</h2> | ||
+ | |||
+ | <article>An <i>orhto</i>-Nitrophenyl-β-galactoside (ONPG) assay was performed with eight different pSB1C3 constructs to show that our copper transport Biobricks do not unspecifically take up different substrates. | ||
+ | <br><br> | ||
+ | The ONPG assay shows no unspecific uptake for all eight analyzed cultures (figure 12). As a reference an <i>E. coli</i> KRX with the empty vector pSB1C3 has been used. Over a period of <i>t</i> = 3000 s no increase of absorption (λ = 400 nm) could be detected. | ||
+ | |||
+ | |||
+ | |||
+ | <figure role="group"> | ||
+ | <img class="figure hundred" src="https://static.igem.org/mediawiki/2018/2/29/T--Bielefeld-CeBiTec--ES--ONPG.png"> | ||
+ | |||
+ | <figcaption> | ||
+ | <b>Figure 12: </b>Results of the ONPG assay. The absorption spectra are measured at λ = 400 nm over <i>t</i> = 3000 s. The measurement was performed with the <a href="https://lifesciences.tecan.com/plate_readers/infinite_200_pro" target="_blank"> Infinite® 200 PRO</a> in a 24 wellplate with flat bottom (Greiner®). | ||
+ | </figcaption> | ||
+ | </figure> | ||
Revision as of 21:01, 17 October 2018
Accumulation Results
Toxicity assays
As intracellular copper triggers toxic effects on the cell (also see Toxicity), an increased uptake of Cu(II) ions should exacerbate cell growth. Therefore, we examined the growth of E. coli expressing copC, copD, oprC, hmtA and pSB1C3 as a control in lysogeny broth (LB) at different concentrations of CuSO4 (0 mM, 1 mM, 2 mM, 3 mM, 4 mM, 8 mM) by measuring the optical density (OD) at a wavelength of 600 nm. The measurement was performed with the Infinite® 200 PRO in a 24 wellplate with flat bottom (Greiner®). For expression the biobricks BBa_K525998 (T7 promoter with RBS) and a combination of BBa_I0500 (pBAD/araC promoter) and BBa_B0030 (RBS) were used each in combination with the basic parts BBa_K2638001 (copC), BBa_K2638002 (copD), BBa_K2638200 (oprC) and BBa_K2638000 (hmtA). The resulting parts are shown in table 1:
Biobrick number | Components | Function |
---|---|---|
BBa_K2638003 | BBa_K525998, BBa_K2638001 | T7, RBS, copC |
BBa_K2638004 | BBa_K525998, BBa_K2638002 | T7, RBS, copD |
BBa_K2638016 | BBa_K525998, BBa_K2638000 | T7, RBS, hmtA |
BBa_K2638201 | BBa_K525998, BBa_K2638200 | T7, RBS, oprC |
BBa_K2638005 | BBa_I0500, BBa_B0030, BBa_K2638001 | pBAD/araC, RBS, copC |
BBa_K2638006 | BBa_I0500, BBa_B0030, BBa_K2638002 | pBAD/araC, RBS, copD |
BBa_K2638204 | BBa_I0500, BBa_B0030, BBa_K2638200 | pBAD/araC, RBS, oprC |
Figure 1 shows the growth of E. coli KRX with BBa_K2638201 (oprC). The right graph shows the growth after induction in comparison to the left graph without induction. Overall growth of the cells at 0 mM Cu(II) concentrations has decreased by 47% after 300 minutes. This effect is a consequence of the burden of expressing genes with a high throughput because of the strong T7 promoter. When growing in copper-containing medium there is also an increasing effect of further growth inhibition visible. The effect can be observed best at a concentration of 2 mM copper (see figure 1). The optical density does not only increase at a reduced rate, it even decreases after approximately 220 minutes. This indicates cell death. Both growth inhibitions can not be observed with E. coli carrying pSB1C3.
Membrane Permeability Assays
Biobrick number | contains | Fluorescence at 408 nm | F Error | ΔF to pSB1C3 | x axis intersection nm |
---|---|---|---|---|---|
-- | pSB1C3 | 35.12 | 7.78 | -- | 431 |
BBa_K2638201 | T7 oprC | 71.24 | 9.52 | 36.11 | 443 |
BBa_K2638204 | pBAD/araC RBS oprC | 57.41 | 17.55 | 22.29 | 440 |
BBa_K2638003 | T7 copC | 75.32 | 10.59 | 40.20 | 447 |
BBa_K2638005 | pBAD/araC RBS copC | 51.42 | 2.85 | 16.30 | 441 |
BBa_K2638004 | T7 copD | 68.11 | 10.89 | 32.98 | 443 |
BBa_K2638006 | pBAD/araC RBS copD | 94.16 | 4.47 | 59.04 | 455 |
BBa_K2638016 | T7 hmtA | 62.35 | 7.13 | 27.23 | 443 |
CopD is an active copper transport protein in the inner cell membrane.
In both strains which expressed the composite parts BBa_2638004 and BBa_K2638006 a higher increase in fluorescence than the pSB1C3 control strain (yellow curve figure 8) was measurable.
The strain expressing copD under control of the pBAD/araC promoter with RBS (BBa_K2638006, blue curve in figure 8) showed a maximum of 94.16 ± 10.89 % in the fluorescence emission at 408 nm. This is an increase of 59.03 % to the empty control vector pSB1C3.
The copD strain with the T7 promoter (BBa_2638004, red curve in figure 8) showed a maximum regarding the fluorescence of 68.10 ± 2.84 % at 408 nm. This is a increase of 32.99 % to the empty control vector.
The difference in the fluorescence mximum at 408 nm of both copD expressing strains compared to the empty vector control show a substantial increase of the membrane permeability of E. coli.
OprC is a copper transport protein in the outer membrane.
In both strains which expressed the composite parts BBa_2638201 and BBa_K2638204 a higher increase in fluorescence than the pSB1C3 controll strain (yellow curve figure 9) was measurable.
The the strain expressing oprC under control of the pBAD/araC promoter with RBS (BBa_K2638201, blue curve in figure 9) showed a maximum of 71.23 ± 7.78 % in the fluorescence emission at 408 nm. This is a increase of 36.12 % in comparison to the empty control vector.
The oprC strain with the T7 promoter (BBa_2638004, red curve in figure 9) showed a maximum regarding the fluorescence of 57.41 % ± 9.52 % at 408 nm. This is an increase of 22.29 % to the empty control vector.
Due to the difference in the fluorescence maximum at 408 nm of both oprC expressing strains compared to the empty vector control show a substantial increase of the membrane permeability of E. coli.
The difference of fluorescence increase of both oprC Biobricks is substantial. However, the difference in membrane permeability to the pSB1C3 strain and the difference between the both oprC variants was less clear. The BBa_2638201 expressing strain shows a slightly higher permeability than BBa_K2638204 as seen at 406 or 416 nm.
CopC is a copper mediator protein which is localized in the periplasm.
In both strains which expressed the composite parts BBa_2638003 and BBa_K2638005 a higher increase in fluorescence than the pSB1C3 control strain (yellow curve, figure 10) was measurable.
The copC strain with the T7 promoter (BBa_2638003, red curve in figure 10) showed a maximum regarding the fluorescence of 75.23 % ± 17.55 % at 408 nm. This is an increase of 40.20 % to the empty control vector.
The the strain expressing copC under control of the pBAD/araC promoter with RBS (BBa_K2638003, blue curve in figure 10) showed a maximum of 51.42 ± 10.59 % of fluorescence emission at 408 nm. This is a increase of 16.30 % to the empty control vector. A slight difference of the fluorescence emission of both copC expressing strains in comparison to the pSB1C3 empty vector control strain can be observed despite the big error bars. However, the difference between the both copC variants could not be postulated definitely.
HmtA is a copper and zinc specific transporter in the inner cell membrane. In the strain which expressed the composite part BBa_2638016 an increase in fluorescence compared to the pSB1C3 control strain (blue curve, figure 11) was measurable.
The hmtA strain with the T7 promoter (BBa_2638016, red curve in figure 11) showed a maximum regarding the fluorescence of 62.35 ± 4.47 % at 408 nm. This is an increase of 27.23 % to the empty control vector.
Specific Uptake Assay
The ONPG assay shows no unspecific uptake for all eight analyzed cultures (figure 12). As a reference an E. coli KRX with the empty vector pSB1C3 has been used. Over a period of t = 3000 s no increase of absorption (λ = 400 nm) could be detected.
Molecular graphics and analyses performed with UCSF Chimera, developed by the Resource for Biocomputing, Visualization, and Informatics at the University of California, San Francisco, with support from NIH P41-GM103311.
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