Light intensity as major factor to maximize biomass and lipid productivity of Ettlia sp. in CO2-controlled photoautotrophic chemostat

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Title
Light intensity as major factor to maximize biomass and lipid productivity of Ettlia sp. in CO2-controlled photoautotrophic chemostat
Author(s)
Seong-Hyun Seo; Ji-San Ha; C Yoo; A Srivastava; Chi-Yong AhnDae-Hyun Cho; Hyun-Joon La; M S Han; Hee-Mock Oh
Bibliographic Citation
Bioresource Technology, vol. 244, pp. 621-628
Publication Year
2017
Abstract
The optimal culture conditions are critical factors for high microalgal biomass and lipid productivity. To optimize the photoautotrophic culture conditions, combination of the pH (regulated by CO2 supply), dilution rate, and light intensity was systematically investigated for Ettlia sp. YC001 cultivation in a chemostat during 143 days. The biomass productivity increased with the increase in dilution rate and light intensity, but decreased with increasing pH. The average lipid content was 19.8% and statistically non-variable among the tested conditions. The highest biomass and lipid productivities were 1.48 g L -1 d -1 and 291.4 mg L -1 d -1 with a pH of 6.5, dilution rate of 0.78 d -1, and light intensity of 1500 μmol photons m -2 s -1. With a sufficient supply of CO2 and nutrients, the light intensity was the main determinant of the photosynthetic rate. Therefore, the surface-to-volume ratio of a photobioreactor should enable efficient light distribution to enhance microalgal growth.
Keyword
Biomass productivityChemostatCO2 supplyDilution rateEttlia sp.Light intensitypH
ISSN
0960-8524
Publisher
Elsevier
Full Text Link
http://dx.doi.org/10.1016/j.biortech.2017.08.020
Type
Article
Appears in Collections:
Synthetic Biology and Bioengineering Research Institute > Cell Factory Research Center > 1. Journal Articles
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