Strategic enhancement of algal biomass and lipid in Chlorococcum infusionum as bioenergy feedstock

被引:83
作者
Karemore, Ankush [1 ]
Pal, Ruma [2 ]
Sen, Ramkrishna [1 ]
机构
[1] Indian Inst Technol, Dept Biotechnol, Kharagpur 721302, W Bengal, India
[2] Univ Calcutta, Dept Bot, Kolkata, India
来源
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS | 2013年 / 2卷 / 02期
关键词
Microalgae; Plackett-Burman design; Lipid; Biomass; Chlorococcum infusionum; Culture medium; BIODIESEL; CULTIVATION; MICROALGAE; GROWTH;
D O I
10.1016/j.algal.2013.01.005
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Algal biomass can serve as rich source of bioproducts including lipids for diverse commercial applications. Both biomass production and lipid accumulation are limited by several factors, of which nutrients play a vital role. In the present investigation, the nutritional requirement for the growth by a (an autotrophic) Chlorococcum infusionum was determined using a Plackett-Burman based statistical screening experiment. Five out of the fifteen factors of a reported production medium were found to be significantly affecting the biomass growth. The components NaNO3, K2HPO4, FeSO4.7H(2)O and KOH had direct proportional correlation with biomass production, while MgSO4 showed inverse proportional relationship in the selected experimental range. Nitrogen was the most influential factor with an effect contribution of 45.77% and a very low p-value of <0.001. The most favorable nitrogen source was potassium nitrate which could replace both sodium nitrate and potassium hydroxide. More than two fold increase in biomass concentration was achieved by screening and standardizing the media components of Bold Basal Medium. Lipid accumulation under normal condition was 12-15% dry cell weight (dcw). Under nitrogen starvation condition, it was 30-35% dcw. However, a semi-starvation condition at 1.75 mM of sodium nitrate induced lipid production as high as 40 +/- 2% dcw. FAME analysis in GC showed the presence of more saturated fatty acids. Results obtained in this work can further be applied to optimize production of algal biomass and lipid for applications like biofuel, fish or animal feed, fertilizer, etc. Also information obtained could be exploited forwastewater treatment processes. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:113 / 121
页数:9
相关论文
共 36 条
[1]  
[Anonymous], 1946, Biometrika, DOI [DOI 10.2307/2332195, DOI 10.1093/BIOMET/33.4.305]
[2]  
Barsanti L., 2006, Algae: Anatomy, Biochemistry, and Biotechnology
[3]  
Becker EW., 1994, Microalgae: Biotechnology and Microbiology
[4]   Microalgae as a source of fatty acids [J].
Behrens, PW ;
Kyle, DJ .
JOURNAL OF FOOD LIPIDS, 1996, 3 (04) :259-272
[5]   The ins and outs of algal metal transport [J].
Blaby-Haas, Crysten E. ;
Merchant, Sabeeha S. .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR CELL RESEARCH, 2012, 1823 (09) :1531-1552
[6]   Culture of microalgal strains isolated from natural habitats in Thailand in various enriched media [J].
Chaichalerm, Sudarat ;
Pokethitiyook, Prayad ;
Yuan, Wenqiao ;
Meetam, Metha ;
Sritong, Kamolwan ;
Pugkaew, Wanvisa ;
Kungvansaichol, Kunn ;
Kruatrachue, Maleeya ;
Damrongphol, Praneet .
APPLIED ENERGY, 2012, 89 (01) :296-302
[7]   The mechanisms of potassium permanganate on algae removal [J].
Chen, JJ ;
Yeh, HH .
WATER RESEARCH, 2005, 39 (18) :4420-4428
[8]   Effect of nutrients on growth and lipid accumulation in the green algae Dunaliella tertiolecta [J].
Chen, Meng ;
Tang, Haiying ;
Ma, Hongzhi ;
Holland, Thomas C. ;
Ng, K. Y. Simon ;
Salley, Steven O. .
BIORESOURCE TECHNOLOGY, 2011, 102 (02) :1649-1655
[9]   Biodiesel from microalgae beats bioethanol [J].
Chisti, Yusuf .
TRENDS IN BIOTECHNOLOGY, 2008, 26 (03) :126-131
[10]   Biodiesel from microalgae [J].
Chisti, Yusuf .
BIOTECHNOLOGY ADVANCES, 2007, 25 (03) :294-306