Carbon dioxide fixation by Chlorella sp. USTB-01 with a fermentor-helical combined photobioreactor

Xuan JIA, Hai YAN, Zijing WANG, Huanju HE, Qianqian XU, Haiou WANG, Chunhua YIN, Liqin LIU

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Front. Environ. Sci. Eng. ›› 2011, Vol. 5 ›› Issue (3) : 402-408. DOI: 10.1007/s11783-010-0223-0
RESEARCH ARTICLE
RESEARCH ARTICLE

Carbon dioxide fixation by Chlorella sp. USTB-01 with a fermentor-helical combined photobioreactor

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Abstract

A promising microalgal strain isolated from fresh water, which can grow both autotrophically on inorganic carbon under lighting and heterotrophically on organic carbon without lighting, was identified as Chlorella sp. USTB-01 with the phylogenetic analysis based on 18S ribosomal ribonucleic acid (rRNA) gene sequences. In the heterotrophic batch culture, more than 20.0 g·L-1 of cell dry weight concentration (DWC) of Chlorella sp. USTB-01 was obtained at day 5, and which was used directly to seed the autotrophic culture. A novel fermentor-helical combined photobioreactor was established and used to cultivate Chlorella sp. USTB-01 for the fixation of carbon dioxide (CO2). It showed that the autotrophic growth of Chlorella sp. USTB-01 in the combined photobioreactor was more effective than that in the fermentor alone and the maximum DWC of 2.5 g·L-1 was obtained at day 6. The highest CO2 fixation of 95% appeared on day 1 in the exponential growth phases of Chlorella sp. USTB-01 and 49.8% protein was found in the harvested microalgal cells.

Keywords

Chlorella sp. USTB-01 / carbon dioxide fixation / combined photobioreactor

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Xuan JIA, Hai YAN, Zijing WANG, Huanju HE, Qianqian XU, Haiou WANG, Chunhua YIN, Liqin LIU. Carbon dioxide fixation by Chlorella sp. USTB-01 with a fermentor-helical combined photobioreactor. Front Envir Sci Eng Chin, 2011, 5(3): 402‒408 https://doi.org/10.1007/s11783-010-0223-0

References

[1]
Kaya Y. The role of CO2 removal and disposal. Energy Conversion and Management, 1995, 36(6-9): 375–380
CrossRef Google scholar
[2]
Otsuki T. A study for the biological CO2 fixation and utilization system.The Science of the Total Environment, 2001, 277(1-3): 21–25
CrossRef Pubmed Google scholar
[3]
Hsueh H T, Li W J, Chen H H, Chu H. Carbon bio-fixation by photosynthesis of Thermosynechococcus sp. CL-1 and Nannochloropsis oculta. Journal of Photochemistry and Photobiology. B, Biology, 2009, 95(1): 33–39
CrossRef Pubmed Google scholar
[4]
Hua R C. Unicellular Algal Culture and Utilization. Beijing: China Agriculture Press, 1986, 278–279 (in Chinese)
[5]
Yanagi M, Watanabe Y,Saiki H. CO2 fixation by Chlorella sp. HA-l and its utilization. Energy Conversion and Management, 1995, 36(6-9): 713–716
CrossRef Google scholar
[6]
Chiu S Y, Kao C Y, Chen C H, Kuan T C, Ong S C, Lin C S. Reduction of CO2 by a high-density culture of Chlorella sp. in a semicontinuous photobioreactor. Bioresource Technology, 2008, 99(9): 3389–3396
CrossRef Pubmed Google scholar
[7]
Xu H, Miao X L, Wu Q Y. High quality biodiesel production from a microalga Chlorella protothecoides by heterotrophic growth in fermenters. Journal of Biotechnology, 2006, 126(4): 499–507
CrossRef Pubmed Google scholar
[8]
Chen F. High cell density culture of microalgae in heterotrophic growth. Trends in Biotechnology, 1996, 14(11): 421–426
CrossRef Pubmed Google scholar
[9]
Yan H, Zhou J, He H, Wei Y. Isolation and heterotrophic culture of Chlorella sp. Journal of University of Science and Technology Beijing, 2005, 27(4): 408–412 (in Chinese)
[10]
Marquez F J, Sasaki K, Kakizono T, Nishio N, Nagai S. Growth characteristics of Spirulina platensis in mixotrophic and heterotrophic conditions. Journal of Fermentation and Bioengineering, 1993, 76(5): 408–410
CrossRef Google scholar
[11]
Molina Grima E, Acién Fernández F G, García Camacho F, Yusuf Chisti. Photobioreactors: light regime, mass transfer, and scaleup. Journal of Biotechnology, 1999, 70(1-3): 231–247
CrossRef Google scholar
[12]
Borowitzka M. Commercial production of microalgal: ponds, tanks, tubes and fermenters. Journal of Biotechnology, 1999, 70(1-3): 313–321
CrossRef Google scholar
[13]
Ugwu C U, Aoyagi H, Uchiyama H. Photobioreactors for mass cultivation of algae. Bioresource Technology, 2008, 99(10): 4021–4028
CrossRef Pubmed Google scholar
[14]
Liu J N, Hu P, Yao L, Wang X Q. Advance of photobioreactor on microalgal cultivation. Food Science, 2006, 27(12): 772–777 (in Chinese)
[15]
Chen F, Johns M R. Heterotrophic growth of Chlamydomonas reinhardtii on acetate in chemostat culture. Process Biochemistry, 1996, 31(6): 601–604
CrossRef Google scholar
[16]
Grobbelaar J. Quality control and assurance: crucial for the sustainability of the applied phycology industry. Journal of Applied Phycology, 2003, 15(2/3): 209–215
CrossRef Google scholar
[17]
de Morais M G, Costa J A V. Biofixation of carbon dioxide by Spirulina sp. and Scenedesmus obliquus cultivated in a three-stage serial tubular photobioreactor. Journal of Biotechnology, 2007, 129(3): 439–445
CrossRef Pubmed Google scholar
[18]
Florian L, Clemens P. Closed photo-bioreactors as tools for biofuel production. Current Opinion in Biotechnology, 2009, 20: 280–285
CrossRef Pubmed Google scholar
[19]
Sierra E, Acíen F G, Ferńandez J M, Garćıa J L, Gonźalez C, Molina E. Characterization of a flat plate photobioreactor for the production of microalgae. Chemical Engineering Journal, 2008, 138(1-3): 136–147
CrossRef Google scholar
[20]
Fan L H, Zhang Y T, Zhang L, Chen H L. Evaluation of a membrane-sparged helical tubular photobioreactor for carbon dioxide biofixation by Chlorella vulgaris. Journal of Membrane Science, 2008, 325(1): 336–345
CrossRef Google scholar
[21]
Jing J K, Xu Q Q, Liu S, Chen H, Yan H. Heterotrophic mass culture of Chlorella USTB-01 in fermentor. Modern Chemical Industry, 2008, 28(12): 67–70 (in Chinese)
[22]
Wang Z J, Jing J K, Xu Q Q, Yang S, Yan H. Effects of different temperature and pH on the growth and quality of Chlorella USTB-01. Modern Chemical Industry, 2009, 29: 210–213 (in Chinese)
[23]
Rotureau B, Gego A, Carme B. Trypanosomatid protozoa: a simplified DNA isolation procedure. Experimental Parasitology, 2005, 111(3): 207–209
[24]
Oh H T, Miyachi S. Chlorella.In: Microalgae Biotechnology.London: Cambridge University Press, 1998, 13
[25]
AOAC. Official methods of analysis. In: Association of Official Analytical Chemists. Arlington, 1995
[26]
Bligh E G, Dyer W J. A rapid method of total lipid extraction and purification. Canadian Journal of Biochemistry and Physiology, 1959, 37(8): 911–917
Pubmed
[27]
Wu Q Y, Yin S, Sheng G Y, Fu J M. New discoveries in study on hydrocarbons from thermal degradation of heterotrophically yellowing algae. Science in China (Series B), 1994, 37(3): 326–335
[28]
Widjaja A, Chien C C, Ju Y H. Study of increasing lipid production from fresh water microalgae Chlorella vulgaris. Journal of the Taiwan Institute of Chemical Engineers, 2009, 40(1): 13–20
CrossRef Google scholar
[29]
Yang S, Xu Q Q, Wang Z J, Yang X J, Yan H. Effects of paclobutrazol on the growth and protein content of Chlorella sp. USTB-01 in heterotrophic culture. Modern Chemical Industry, 2009, 29: 160–162 (in Chinese)
[30]
Sun N, Wang Y, Li Y T, Huang J C, Chen F. Sugar-based growth, astaxanthin accumulation and carotenogenic transcription of heterotrophic Chlorella zofingiensis (Chlorophyta). Process Biochemistry, 2008, 43: 1288–1292
CrossRef Google scholar
[31]
Ogawa T, Aiba S. Bioenergetic analysis of mixotrophic growth in Chlorella vulgaris and Scenedesmus acutus. Biotechnology and Bioengineering, 1981, 23(5): 1121–1132
CrossRef Google scholar
[32]
Lin L. Mixotrophic growth of Chlorella sp.. In: Asian-Pacific Meet. Japan: Phycology, 2001
[33]
Shi X M, Liu H J, Zhang X W, Chen F. Production of biomass and lutein by Chlorella protothecoides at various glucose concentrations in heterotrophic cultures. Process Biochemistry, 1999, 34(4): 341–347
CrossRef Google scholar
[34]
Watanabe Y, Saiki H. Development of a photobioreactor incorporating Chlorella sp. for removal of CO2 in stack gas. Energy Conversion, 1997, 38: S499-S503
CrossRef Google scholar
[35]
Fulke A B, Mudliar S N, Yadav R, Shekh A, Srinivasan N, Ramanan R, Krishnamurthi K, Devi S S, Chakrabarti T. Bio-mitigation of CO2, calcite formation and simultaneous biodiesel precursors production using Chlorella sp. Bioresource Technology, 2010, 101(21): 8473–8476
CrossRef Pubmed Google scholar
[36]
Soletto D, Binaghi L, Ferrari L, Lodi A, Carvalho J C M, Zilli M, Converti A. Effects of carbon dioxide feeding rate and light intensity on the fed-batch pulse-feeding cultivation of Spirulina platensis in helical photobioreactor. Biochemical Engineering Journal, 2008, 39(2): 369–375
CrossRef Google scholar
[37]
Yan H, Zhang B, Wang S Q, Li Y W, Liu S, Yang S. Advances in the heterotrophic culture of Chlorella sp. Modern Chemical Industry, 2007, 27(4): 18–21 (in Chinese)
[38]
Liu S, Xu Q Q, Zhang B, Jing J K, Yan H. Extraction and purification of lutein from Chlorella USTB-01. Modern Chemical Industry, 2007, 27: 392–396 (in Chinese)
[39]
Xu Q Q, Jing J K, Liu S, Zhang B, Yan H. Study on the Production of Eicosapentaenoicacid from Chlorella USTB-01. Modern Chemical Industry, 2008, 25(8): 34–37 (in Chinese)
[40]
Li Y Q, Horsman M, Wang B, Wu N, Lan C Q. Effects of nitrogen sources on cell growth and lipid accumulation of green alga Neochloris oleoabundans. Applied Microbiology and Biotechnology, 2008, 81(4): 629–636
CrossRef Pubmed Google scholar

Acknowledgements

This research was supported by PetroChina Innovation Foundation (2009D-5006-04-02), the Fundamental Research Funds for the Central Universities and the Metallurgical Foundation of University of Science and Technology Beijing.

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2014 Higher Education Press and Springer-Verlag Berlin Heidelberg
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