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</div> | </div> | ||
<p> | <p> | ||
− | The data show typical curves of enzyme kinetics. It can be seen that RNaseA is more active than | + | The data show typical curves of enzyme kinetics. It can be seen that RNaseA is more active than Cas13a. This shows that our detector is in fact able to quantitatively measure different levels of enzyme activity and can therefore be used to characterize biobricks. |
</p> | </p> | ||
</div> | </div> | ||
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<h3>Framework of equations for Calibration and data Analysis</h3> | <h3>Framework of equations for Calibration and data Analysis</h3> | ||
<p> | <p> | ||
− | An Arduino Nano can measure voltages in integers from 0 to 1023. To measure <i>R<sub>LDR</sub></i> we use a voltage divide to translate the Voltage drop | + | An Arduino Nano can measure voltages in integers from 0 to 1023. To measure <i>R<sub>LDR</sub></i> we use a voltage divide to translate the Voltage drop <i>U<sub>LDR</sub></i> at <i>R<sub>LDR</sub></i> via |
</p> | </p> | ||
<div class="equationDiv"><img class="largeEquation" src="https://static.igem.org/mediawiki/2017/3/3f/T--Munich--Hardware_equation6.png"><span>(1)</span></div> | <div class="equationDiv"><img class="largeEquation" src="https://static.igem.org/mediawiki/2017/3/3f/T--Munich--Hardware_equation6.png"><span>(1)</span></div> | ||
<p> | <p> | ||
− | where R_ref is the resistance of a reference resistor and | + | where R_ref is the resistance of a reference resistor and <i>U<sub>0</sub></i> is supply voltage measured in the same way as <i>U<sub>LDR</sub></i>. |
</p> | </p> | ||
<p> | <p> | ||
− | To measure time traces, we chose to acquire a data point every 5 minutes by measuring | + | To measure time traces, we chose to acquire a data point every 5 minutes by measuring <i>U<sub>LDR</sub></i> 50 times in a time interval of 2 s From that, we calculate the average and the relative empirical standard deviation σ_U_LDR, given by |
equation | equation | ||
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</p> | </p> | ||
<p> | <p> | ||
− | The equation for the relative uncertainty | + | The equation for the relative uncertainty σc of the fluorescein concentration is |
</p> | </p> | ||
<div class="equationDiv"><img class="largeEquation" src="https://static.igem.org/mediawiki/2017/c/c3/T--Munich--Hardware_equation22.png"><span>(7)</span></div> | <div class="equationDiv"><img class="largeEquation" src="https://static.igem.org/mediawiki/2017/c/c3/T--Munich--Hardware_equation22.png"><span>(7)</span></div> | ||
<p> | <p> | ||
− | where | + | where σ_Rb is the relative uncertainty of Rb and σ k is the relative uncertainty of k given by the result from the fit of k. |
</p> | </p> | ||
<p> | <p> |
Revision as of 15:26, 27 October 2017