Comparison of growth and lipid accumulation properties of two oleaginous microalgae under different nutrient conditions

Qiao ZHANG , Yu HONG

Front. Environ. Sci. Eng. ›› 2014, Vol. 8 ›› Issue (5) : 703 -709.

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Front. Environ. Sci. Eng. ›› 2014, Vol. 8 ›› Issue (5) : 703 -709. DOI: 10.1007/s11783-014-0649-x
RESEARCH ARTICLE
RESEARCH ARTICLE

Comparison of growth and lipid accumulation properties of two oleaginous microalgae under different nutrient conditions

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Abstract

This study compared the growth and lipid accumulation properties of two oleaginous microalgae, namely, Scenedesmus sp. LX1 and Chlorella sp. HQ, under different nutrient conditions. Both algal species obtained the highest biomass, lipid content and lipid yield under low-nutrient conditions (mBG11 medium). The biomass, lipid content and lipid yield of Scenedesmus sp. LX1 were 0.42 g·L–1, 22.5% and 93.8 mg·L–1, respectively. These values were relatively higher than those of Chlorella sp. HQ (0.30 g·L–1, 17.1% and 51.3 mg·L–1, respectively). These algae were then cultivated in an SE medium that contained more nutrients; as a result, the biomass and lipid yield of Scenedesmus sp. LX1 reduced more significantly than those of Chlorella sp. HQ. Opposite results were observed in lipid and triacylglycerols (TAGs) contents. The cell sizes of both algal species under low-nutrient conditions were larger than those under high-nutrient conditions. Chlorella sp. HQ cells did not aggregate, but Scenedesmus sp. LX1 cells flocculated easily, particularly under low-nutrient conditions. In summary, low-nutrient conditions favour the growth and lipid production of both algae, but Scenedesmus sp. LX1 outperforms Chlorella sp. HQ.

Keywords

Scenedesmus sp. LX1 / Chlorella sp. HQ / growth rate / algal biomass / lipid accumulation / triacylglycerols (TAGs)

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Qiao ZHANG, Yu HONG. Comparison of growth and lipid accumulation properties of two oleaginous microalgae under different nutrient conditions. Front. Environ. Sci. Eng., 2014, 8(5): 703-709 DOI:10.1007/s11783-014-0649-x

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References

[1]

ChistiY. Biodiesel from microalgae. Biotechnology Advances, 2007, 25(3): 294-306

[2]

DengX D, LiY J, FeiX W. Microalgae: a promising feedstock for biodiesel. African Journal of Microbiology Research, 2009, 3(13): 1008-1014

[3]

SchenkP M, Thomas-HallS R, StephensE, MarxU C, MussgnugJ H, PostenC, KruseO, HankamerB. Second generation biofuels: high-efficiency microalgae for biodiesel production. BioEnergy Research, 2008, 1(1): 20-43

[4]

MataT M, MartinsA A, CaetanoN S. Microalgae for biodiesel production and other applications: a review. Renewable & Sustainable Energy Reviews, 2010, 14(1): 217-232

[5]

GriffithsM J, HarrisonS T L. Lipid productivity as a key characteristic for choosing algal species for biodiesel production. Journal of Applied Phycology, 2009, 21(5): 493-507

[6]

GouveiaL, OliveiraA C. Microalgae as a raw material for biofuels production. Journal of Industrial Microbiology & Biotechnology, 2009, 36(2): 269-274

[7]

PittmanJ K, DeanA P, OsundekoO. The potential of sustainable algal biofuel production using wastewater resources. Bioresource Technology, 2011, 102(1): 17-25

[8]

LiX, HuH Y, KeG, SunY X. Effects of different nitrogen and phosphorus concentrations on the growth, nutrient uptake, and lipid accumulation of a freshwater microalga Scenedesmus sp. Bioresource Technology, 2010, 101(14): 5494-5500

[9]

ConvertiA, CasazzaA A, OrtizE Y, PeregoP, Del BorghiM. Effect of temperature and nitrogen concentration on the growth and lipid content of Nannochloropsis oculata and Chlorella vulgaris for biodiesel production. Chemical Engineering and Processing: Process Intensification, 2009, 48(6): 1146-1151

[10]

SolovchenkoA E, Khozin-GoldbergI, Didi-CohenS, Didi-CohenS, CohenZ, MerzlyakM N. Effects of light and nitrogen starvation on the content and composition of carotenoids of the green microalga Parietochloris incisa. Russian Journal of Plant Physiology: a Comprehensive Russian Journal on Modern Phytophysiology, 2008, 55(4): 455-462

[11]

LiX, HuH Y, GanK, YangJ. Growth and nutrient removal properties of a freshwater microalga Scenedesmus sp. LX1 under different kinds of nitrogen sources. Ecological Engineering, 2010b, 36(4): 379-381

[12]

ZhangQ, HongY. Effects of stationary phase elongation and initial nitrogen and phosphorus concentrations on the growth and lipid-producing potential of Chlorella sp. HQ. Journal of Applied Phycology, 2013,

[13]

State Environmental Protection Administration. Monitoring Method of Water and Wastewater, 4th ed. Beijing: China Environmental Science Press; 2002, 105, 246-248, 255-257

[14]

BlighE G, DyerW J. A rapid method of total lipid extraction and purification. Canadian Journal of Biochemistry and Physiology, 1959, 37(8): 911-917

[15]

DouX, LuX H, LuM Z, YuL S, XueR, JiJ B. The effects of trace elements on the lipid productivity and fatty acid composition of Nannochloropis oculata. Journal of Renewable Energy, 2013, 671545: 1-6. Available online at accessed <month>December</month><day>29</day> 2013)

[16]

ZhouX P, XiaL, GeH M, ZhangD L, HuC X. Feasibility of biodiesel production by microalgae Chlorella sp. (FACHB-1748) under outdoor conditions. Bioresource Technology, 2013, 138: 131-135

[17]

LiuZ Y, WangG C, ZhouB C. Effect of iron on growth and lipid accumulation in Chlorella vulgaris. Bioresource Technology, 2008, 99(11): 4717-4722

[18]

YangK. Selection of high-level lipid microalgae and effect of different culture conditions on the fatty acid contents and components. Dissertation for the Master’s Degree. Suzhou: Su Zhou University, 2009 (in Chinese)

[19]

LiX. Coupled technology of advanced N, P removal in wastewater treatment and microalgal bioenergy production. Dissertation for the Doctoral Degree. Beijing: Tsinghua University, 2011 (in Chinese)

[20]

WangB, LiY, WuN, LanC Q. CO(2) bio-mitigation using microalgae. Applied Microbiology and Biotechnology, 2008, 79(5): 707-718

[21]

GriffithsE W. Removal and utilization of wastewater nutrients for algae biomass. Dissertation for the Doctoral Degree. Utah: Utah State University, 2009

[22]

YuY, HuH Y, LiX, WuY H, ZhangX, JiaS L. Accumulation characteristics of soluble algal products (SAP) by a freshwater microalga Scenedesmus sp. LX1 during batch cultivation for biofuel production. Bioresource Technology, 2012, 110: 184-189

[23]

SuY Y, MennerichA, UrbanB. Comparison of nutrient removal capacity and biomass settleability of four high-potential microalgal species. Bioresource Technology, 2012, 124: 157-162

[24]

RodolfiL, Chini ZittelliG, BassiN, PadovaniG, BiondiN, BoniniG, TrediciM R. Microalgae for oil: strain selection, induction of lipid synthesis and outdoor mass cultivation in a low-cost photobioreactor. Biotechnology and Bioengineering, 2009, 102(1): 100-112

[25]

CakmakT, AngunP, DemirayY E, OzkanA D, ElibolZ, TekinayT. Differential effects of nitrogen and sulfur deprivation on growth and biodiesel feedstock production of Chlamydomonas reinhardtii. Biotechnology and Bioengineering, 2012, 109(8): 1947-1957

[26]

SiautM, CuinéS, CagnonC, FesslerB, NguyenM, CarrierP, BeylyA, BeissonF, TriantaphylidèsC, Li-BeissonY H, PeltierG. Oil accumulation in the model green alga Chlamydomonas reinhardtii: characterization, variability between common laboratory strains and relationship with starch reserves. BMC Biotechnology, 2011, 11(1): 7-22

[27]

HuQ, SommerfeldM, JarvisE, GhirardiM, PosewitzM, SeibertM, DarzinsA. Microalgal triacylglycerols as feedstocks for biofuel production: perspectives and advances. The Plant Journal, 2008, 54(4): 621-639

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