Salinity induced oxidative stress alters the physiological responses and improves the biofuel potential of green microalgae Acutodesmus dimorphus

被引:118
作者
Chokshi, Kaumeel [1 ,2 ]
Pancha, Imran [1 ,4 ]
Ghosh, Arup [2 ,3 ]
Mishra, Sandhya [1 ,2 ]
机构
[1] CSIR Cent Salt & Marine Chem Res Inst, Div Salt & Marine Chem, Bhavnagar 364002, Gujarat, India
[2] CSIR Cent Salt & Marine Chem Res Inst, Acad Sci & Innovat Res AcSIR, Bhavnagar 364002, Gujarat, India
[3] CSIR Cent Salt & Marine Chem Res Inst, Div Plant Omics, Bhavnagar 364002, Gujarat, India
[4] Tokyo Inst Technol, Lab Chem & Life Sci, Inst Innovat Res, Yokohama, Kanagawa 2268503, Japan
关键词
Microalgae; Salinity; Oxidative stress; Biofuel; Lipid; SP CCNM 1077; BIODIESEL PRODUCTION; LIPID-ACCUMULATION; LIGHT-INTENSITY; WASTE-WATER; SALT STRESS; CELL-DEATH; TOLERANCE; BIOMASS; STRAIN;
D O I
10.1016/j.biortech.2017.05.003
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
The main aim of the present study was to analyze salinity stress induced physiological and biochemical changes in a freshwater microalgae Acutodesmus dimorphus. During single-stage cultivation, the accumulations of lipids and carbohydrates increased with an increase in an initial salinity of the culture medium. The carbohydrate and lipid accumulations of 53.30 +/- 2.76% and 33.40 +/- 2.29%, respectively, were observed in 200 mM NaCl added culture. During two-stage cultivation, salinity stress of 200 mM was favorable for the growth up to 2 days, as suggested by higher biomass, lower levels of oxidative stress biomarkers and no significant changes in the biochemical composition of the cells. Extending the stress to 3 days significantly increased the lipid accumulation by 43% without affecting the biomass production. This study, thus, provides the strategy to improve the biofuel potential of A. dimorphus along with presenting the physiological adaptive mechanisms of a cell against salinity stress. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1376 / 1383
页数:8
相关论文
共 48 条
[1]   Salt stress-induced cell death in the unicellular green alga Micrasterias denticulata [J].
Affenzeller, Matthias Josef ;
Darehshouri, Anza ;
Andosch, Ancuela ;
Luetz, Cornelius ;
Luetz-Meindl, Ursula .
JOURNAL OF EXPERIMENTAL BOTANY, 2009, 60 (03) :939-954
[2]  
[Anonymous], 2014, 20 EUROPEAN WIRELESS
[3]  
Becker EW., 1994, Microalgae: Biotechnology and Microbiology
[4]   Salinity stress increases lipid, secondary metabolites and enzyme activity in Amphora subtropica and Dunaliella sp for biodiesel production [J].
BenMoussa-Dahmen, Ines ;
Chtourou, Haifa ;
Rezgui, Fatma ;
Sayadi, Sami ;
Dhouib, Abdelhafidh .
BIORESOURCE TECHNOLOGY, 2016, 218 :816-825
[5]  
BLIGH EG, 1959, CAN J BIOCHEM PHYS, V37, P911
[6]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[7]   Lipid analysis in Haematococcus pluvialis to assess its potential use as a biodiesel feedstock [J].
Cecilia Damiani, M. ;
Popovich, Cecilia A. ;
Constenla, Diana ;
Leonardi, Patricia I. .
BIORESOURCE TECHNOLOGY, 2010, 101 (11) :3801-3807
[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]   Nitrogen starvation-induced cellular crosstalk of ROS-scavenging antioxidants and phytohormone enhanced the biofuel potential of green microalga Acutodesmus dimorphus [J].
Chokshi, Kaumeel ;
Pancha, Imran ;
Ghosh, Arup ;
Mishra, Sandhya .
BIOTECHNOLOGY FOR BIOFUELS, 2017, 10
[10]   Microalgal biomass generation by phycoremediation of dairy industry wastewater: An integrated approach towards sustainable biofuel production [J].
Chokshi, Kaumeel ;
Pancha, Imran ;
Ghosh, Arup ;
Mishra, Sandhya .
BIORESOURCE TECHNOLOGY, 2016, 221 :455-460