Team:Grenoble-EMSE-LSU/Project/Biology

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<h4>Kinetics</h4>
<h4>Kinetics</h4>
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                                         <p> mCherry and KillerRed-expressing M15 bacteria were inoculated at OD610 = 0.015 in LB medium, supplemented with antibiotics and 0.05 mM IPTG. Cell samples were subsequently incubated at 37°C, 200 rpm. Fluorescence (540/630 nm) and OD610 measurements were performed every 20-100 min for 535 min. Erlenmeyers were kept in the dark for the first 180 min, and were then illuminated (P = 0.03 µW/cm2) for the rest of the experiment.<br><br></p>
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                                         <p> mCherry and KillerRed-expressing M15 bacteria were inoculated at OD610 = 0.015 in LB medium, supplemented with antibiotics and 0.05 mM IPTG. Cell samples were subsequently incubated at 37°C, 200 rpm. Fluorescence (540/630 nm) and OD610 measurements were performed every 20-100 min for 535 min. Erlenmeyers were kept in the dark for the first 180 min, and were then illuminated (P = 0.03 µW/cm<sup>2</sup>) for the rest of the experiment.<br><br></p>
<p align="center"><img src="https://static.igem.org/mediawiki/2013/a/a9/Grenoble_mCherry_vs_KR.png" alt="mCherry vs KR" width="750px"></p>
<p align="center"><img src="https://static.igem.org/mediawiki/2013/a/a9/Grenoble_mCherry_vs_KR.png" alt="mCherry vs KR" width="750px"></p>
<p id="legend">Figure 1.<br>OD610 <strong>A</strong> and fluorescence <strong>B</strong> as a function of time of mCherry and KillerRed expressing M15 bacteria. Constant light illumination at maximum intensity was applied from 180 min to 535 min. Temperature was measured in each Erlenmeyer during illumination and was shown to stay constant and equal to 37°C. The error bars represent the standard errors of 2 independent measurements.<br><br></p>
<p id="legend">Figure 1.<br>OD610 <strong>A</strong> and fluorescence <strong>B</strong> as a function of time of mCherry and KillerRed expressing M15 bacteria. Constant light illumination at maximum intensity was applied from 180 min to 535 min. Temperature was measured in each Erlenmeyer during illumination and was shown to stay constant and equal to 37°C. The error bars represent the standard errors of 2 independent measurements.<br><br></p>
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<p>Both cell strains display similar growth dynamics in the dark, with growth rates of 1.39h-1 and 0.57 h-1 in early (0-120 min) and late (120-180 min) exponential phase, respectively. At t = 255 min occurs a strong decrease in the growth rate of KR-expressing cells as compared to mCherry-expressing cells. This phenomenon, described in the previous section, is due to the killing of bacteria in response to light stimulations. Since the viability of mCherry-expressing cells is not affected, we conclude that KR is responsible for the decrease in the number of living bacteria when illuminating the sample with white light. Cell death is coupled to a decrease in the amount of fluorescing KR proteins. This phenomenon, known as photobleaching, was shown to be a good indicator of the amount of ROS produced by KR upon light illumination [3]. Free radicals such as H2O2 are highly reactive, and cause damage to endogenous proteins and DNA, ultimately leading to cell death. <em>E. coli</em> defense mechanisms against oxidative stress, including the superoxide dismutase and catalase enzymes [4], seem insufficient in preventing significant and irreversible ROS-mediated damages inside bacteria.</p>
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<p>Both cell strains display similar growth dynamics in the dark, with growth rates of 1.39h<sup>-1</sup> and 0.57 h<sup>-1</sup> in early (0-120 min) and late (120-180 min) exponential phase, respectively. At t = 255 min occurs a strong decrease in the growth rate of KR-expressing cells as compared to mCherry-expressing cells. This phenomenon, described in the previous section, is due to the killing of bacteria in response to light stimulations. Since the viability of mCherry-expressing cells is not affected, we conclude that KR is responsible for the decrease in the number of living bacteria when illuminating the sample with white light. Cell death is coupled to a decrease in the amount of fluorescing KR proteins. This phenomenon, known as photobleaching, was shown to be a good indicator of the amount of ROS produced by KR upon light illumination [3]. Free radicals such as H2O2 are highly reactive, and cause damage to endogenous proteins and DNA, ultimately leading to cell death. <em>E. coli</em> defense mechanisms against oxidative stress, including the superoxide dismutase and catalase enzymes [4], seem insufficient in preventing significant and irreversible ROS-mediated damages inside bacteria.</p>
<h3>Cell Growth Recovery after Stopping Illumination</h3>
<h3>Cell Growth Recovery after Stopping Illumination</h3>
<p>We showed that we could either increase or decrease the amount of living cells within our sample, by modulating the amount of light reaching the culture. Indeed, KR-expressing cells were shown to be able to divide in the dark whereas they were killed upon appropriate illumination. But can a culture, initially illuminated, recover and grow again ? In other words: what is the viability status of cells that survive oxidative stress ?<br><br>
<p>We showed that we could either increase or decrease the amount of living cells within our sample, by modulating the amount of light reaching the culture. Indeed, KR-expressing cells were shown to be able to divide in the dark whereas they were killed upon appropriate illumination. But can a culture, initially illuminated, recover and grow again ? In other words: what is the viability status of cells that survive oxidative stress ?<br><br>
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To answer this question, we decided to perform a kinetic experiment, in which a square light function (120 min, P = 0.03 µW/cm2) was applied. Cells were inoculated at OD610 = 0.02 in 25 mL LB medium, supplemented with antibiotics and 0.05 mM IPTG. The first measurement was performed 30 min after IPTG induction.<br><br></p>
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To answer this question, we decided to perform a kinetic experiment, in which a square light function (120 min, P = 0.03 µW/cm<sup>2</sup>) was applied. Cells were inoculated at OD610 = 0.02 in 25 mL LB medium, supplemented with antibiotics and 0.05 mM IPTG. The first measurement was performed 30 min after IPTG induction.<br><br></p>
<h4>Results</h4>
<h4>Results</h4>
<p align="center"><img src="https://static.igem.org/mediawiki/2013/2/26/Grenoble_recovery_graph.png" alt="results" width="750px"></p>
<p align="center"><img src="https://static.igem.org/mediawiki/2013/2/26/Grenoble_recovery_graph.png" alt="results" width="750px"></p>
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<h3>Influence of Light Intensity</h3>
<h3>Influence of Light Intensity</h3>
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<p></p>
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<p>We demonstrated that illumination of a culture of KR-expressing bacteria at maximal intensity (corresponding power density : P = 0.03 µW/cm<sup>2</sup>) could trigger an important decrease in the number of viable cells. How about being able to stabilize the number of living bacteria around a steady value? We thus decided to see whether or not we could change the rate at which cells were killed, by modulating the intensity of the illumination.<br><br>
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                                        In these experiments we simply put an additional light source inside the incubator in order to illuminate two cultures at once, at 100% and 50% light intensity respectively. The light sources were switched on 195 minutes after inoculation, until the end of the kinetic experiment (600 min). Another sample of KR-expressing M15 bacteria was kept in the dark, as a negative control. Results of OD610 and fluorescence measurements are shown in Fig. 2.<br><br></p>
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                                        <p align="center"><img src="" alt="" width="750px"></p>
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                                        <p id="legend">Figure 2.<br>OD610 (A) and fluorescence (630 nm) (B) as a function of time for 3 different bacterial cell samples, under different light conditions. The sample kept in the dark is represented in blue, the ones illuminated at 50 and 100% of the maximal intensity in red and green, respectively. The light sources were switched on 195 min after inoculation, until the end of the experiment. Error bars represent standard errors of duplicates.</p>
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                                        <p>Optical density values of the 3 bacterial cell samples start differing 105 min after the light sources are switched on. ROS-mediated intracellular damages start accumulating inside the bacteria after t = 195 min, leading to a significant change in the number of living cells after t = 300 min (Fig 2.A). For all cultures, OD610 increases after time point 300 min, but at different rates that depend on the intensity of illumination.<br><br>
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                                        According to our expectations, the sample in which the biomass increases the most is the one that was kept in the dark, the condition in which no ROS is produced by KR.<br>
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                                        When illuminating the culture at half of the maximal intensity value, OD610 increases more slowly. At this light level, ROS production is likely to induce the killing of some of the bacteria of the population, and to slow down the division of the remaining viable cells. This hypothesis is confirmed by the fact that fluorescence never stops increasing during illumination (Fig 2.B), meaning that some of the cells are still alive and able to produce the KR protein.<br>
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                                        At maximal intensity, the increase of the biomass is slowest and tends to stabilize after time point 540 min. In that situation, most of the cells are being killed. Since OD610 represents both living and dead cells and dead cells are not able to divide, a plateau is progressively reached. At time point 420 in, the fluorescence curve tends to flatten (Fig 2.B), a phenomenon that reinforces the hypothesis of the killing of a higher number of cells at maximal intensity than at lower light doses. Since the number of living bacteria decreases, less KR is produced, and the rate at which fluorescence increases begins to be limited due to photobleaching.<br><br>
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                                        We conclude that KR-mediated phototoxic effects are light intensity-dependent. However, one question remained: could we find an optimal light intensity value, allowing the stabilization of the amount of living bacteria in a shaken culture?<br>
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                                        That’s where our modeling comes in: we built a predictive mathematical model to determine the light dose to apply in order to stabilize the number of viable cells.</p>
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Revision as of 12:50, 2 October 2013

Grenoble-EMSE-LSU, iGEM


Grenoble-EMSE-LSU, iGEM

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