Huiyee11186 (Talk | contribs) |
Huiyee11186 (Talk | contribs) |
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<p class="pcontent">C<sub>biomass</sub> can be calculated by multiplying O.D. 600 to DCW and mass percentage of carbon in <i>E. coli</i> biomass. | <p class="pcontent">C<sub>biomass</sub> can be calculated by multiplying O.D. 600 to DCW and mass percentage of carbon in <i>E. coli</i> biomass. | ||
− | The O.D. 600 of engineered <i>E. coli</i> is measured after a 12-hour cultivation and the result obtained is 0. | + | The O.D. 600 of engineered <i>E. coli</i> is measured after a 12-hour cultivation and the result obtained is 0.4511 O.D. . |
Yin Li et al. reported that dry cell weight (DCW) of <i>E. coli</i> is $${0.35g \over {1 L \cdot O.D. 600}}$$ , determined by experiment. | Yin Li et al. reported that dry cell weight (DCW) of <i>E. coli</i> is $${0.35g \over {1 L \cdot O.D. 600}}$$ , determined by experiment. | ||
<i>E. coli</i> biomass contains 48% of carbon by mass | <i>E. coli</i> biomass contains 48% of carbon by mass | ||
</p> | </p> | ||
− | <p class="pcontent">C<sub>biomass</sub> = 0. | + | <p class="pcontent">C<sub>biomass</sub> = 0.4511 × 0.35 × 48% = 0.0758 g/L</p> |
<p class="pcontent">On the other hand, C<sub>xylose</sub> can be calculated by multiplying the amount of xylose consumed | <p class="pcontent">On the other hand, C<sub>xylose</sub> can be calculated by multiplying the amount of xylose consumed | ||
per unit volume of broth to the mass percentage of carbon in xylose. | per unit volume of broth to the mass percentage of carbon in xylose. | ||
Xylose consumption is calculated by using a DNS kit that measures the concentration of reducing sugar | Xylose consumption is calculated by using a DNS kit that measures the concentration of reducing sugar | ||
− | and the result obtained is 0. | + | and the result obtained is 0.1723g of xylose consumed per litre of M9 medium. |
Carbon weight percentage of xylose is 40%.</p> | Carbon weight percentage of xylose is 40%.</p> | ||
− | <p class="pcontent">C<sub>xylose</sub> = 0. | + | <p class="pcontent">C<sub>xylose</sub> = 0.1723 × 40% = 0.0689 g/L</p> |
<p class="pcontent">By equation (3)</p> | <p class="pcontent">By equation (3)</p> | ||
− | <p class="pcontent">C<sub>co<sub>2</sub> net</sub> = 0. | + | <p class="pcontent">C<sub>co<sub>2</sub> net</sub> = 0.0758 - 0.0689 = 0.0069 g/L</p> |
<p class="pcontent">Since the <i>E. coli</i> has been cultured for 12 hours, we can calculate the rate of carbon fixation by</p> | <p class="pcontent">Since the <i>E. coli</i> has been cultured for 12 hours, we can calculate the rate of carbon fixation by</p> | ||
− | <p class="pcontent">$${Rate \ of \ carbon \ fixation = {C_{co_{2} \ net} \over 12} = {0. | + | <p class="pcontent">$${Rate \ of \ carbon \ fixation = {C_{co_{2} \ net} \over 12} = {0.0069 \over 12} = {0.575{mg \over {L \cdot hr}}}}$$</p> |
<p class="pcontent">To find out how much carbon in biomass comes from the carbon in CO<sub>2</sub> captured by the heterotrophic microbes, | <p class="pcontent">To find out how much carbon in biomass comes from the carbon in CO<sub>2</sub> captured by the heterotrophic microbes, | ||
divide the net amount of carbon fixed by the mass percentage of carbon in biomass. | divide the net amount of carbon fixed by the mass percentage of carbon in biomass. | ||
</p> | </p> | ||
− | <p class="pcontent">$${{Ratio \ of \ carbon \ in \ CO_2 \ fixed \ to \ carbon \ in \ biomass} = {0. | + | <p class="pcontent">$${{Ratio \ of \ carbon \ in \ CO_2 \ fixed \ to \ carbon \ in \ biomass} = {0.0069 \over 0.0758} = 9.1 \%}$$</p> |
</div> | </div> | ||
Revision as of 06:45, 16 October 2018