Title of article :
Continuous Cultivation of the Diatom Nitzschia laevis for Eicosapentaenoic Acid Production; Physiological Study and Process Optimization
Author/Authors :
Chen، Feng نويسنده , , Wen، Zhi-You نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2002
Pages :
-20
From page :
21
To page :
0
Abstract :
The continuous cultures of the diatom Nitzschia laevis were performed at different dilution rates (D) and feed glucose concentrations (So) to investigate cellular physiological responses and its production potential of eicosapentaenoic acid (EPA). Steadystate cell dry weight, residual glucose concentration, cell growth yield, specific glucose consumption rate, and fatty acid profiles were investigated within the range of D from O.I to 1.0 day^-1 (So fixed at 20 g/L) and the range of So from 5 to 35 g/L (D fixed at 0.3 day^-1), respectively. The highest EPA productivity of 73 mg L day was obtained at D = 0.5 day and So = 20 g/L. However, when the continuous culture achieved high productivities of EPA at certain dilution rates and feed glucose concentrations, glucose in the feed could not be consumed completely. Accordingly, the continuous culture was evaluated in terms of both EPA productivity (P) and glucose assimilation efficiency (E). The parameter ETA, defined as the product of P and E, was used as an overall performance index. Since eta is a function of the two independent variables D and So, we employed a central composite design to optimize D and So for the highest eta value. Based on the experimental results of the design, a second-order polynomial equation was established to represent the relationship between eta and D and So. The optimal values of D and So were subsequently determined as 0.481 day and 15.56 g/L, respectively by the empirical model. The verification experiment confirmed the validity of the model. Under the optimal conditions, eta value reached 46.5 mg L day suggesting a considerably high efficiency of the continuous culture of N. laevis in terms of EPA production and glucose utilization.
Keywords :
Declarative programming languages , Simulation of dynamical systems , Stream , Biological processes , Collection
Journal title :
BIOTECHNOLOGY PROGRESS
Serial Year :
2002
Journal title :
BIOTECHNOLOGY PROGRESS
Record number :
5180
Link To Document :
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