Bioprospecting for hyper-lipid producing microalgal strains for sustainable biofuel production

被引:266
作者
Mutanda, T. [1 ]
Ramesh, D. [1 ]
Karthikeyan, S. [2 ]
Kumari, S. [1 ]
Anandraj, A. [3 ]
Bux, F. [1 ]
机构
[1] Durban Univ Technol, Inst Water & Wastewater Technol, ZA-4001 Durban, South Africa
[2] Tamil Nadu Agr Univ, Coimbatore 641003, Tamil Nadu, India
[3] Mangosuthu Univ Technol, Dept Nat Conservat, ZA-4026 Durban, South Africa
关键词
Biofuel; Bioprospecting; Microalgae; Sampling; Strain identification; TEMPORARILY OPEN/CLOSED ESTUARY; BIODIESEL PRODUCTION; BIOMASS PRODUCTION; CARBON-DIOXIDE; RAPID METHOD; OIL; MARINE; WATER; FUEL; IDENTIFICATION;
D O I
10.1016/j.biortech.2010.06.077
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Global petroleum reserves are shrinking at a fast pace, increasing the demand for alternate fuels. Microalgae have the ability to grow rapidly, and synthesize and accumulate large amounts (approximately 20-50% of dry weight) of neutral lipid stored in cytosolic lipid bodies. A successful and economically viable algae based biofuel industry mainly depends on the selection of appropriate algal strains. The main focus of bioprospecting for microalgae is to identify unique high lipid producing microalgae from different habitats. Indigenous species of microalgae with high lipid yields are especially valuable in the biofuel industry. Isolation, purification and identification of natural microalgal assemblages using conventional techniques is generally time consuming. However, the recent use of micromanipulation as a rapid isolating tool allows for a higher screening throughput. The appropriate media and growth conditions are also important for successful microalgal proliferation. Environmental parameters recorded at the sampling site are necessary to optimize in vitro growth. Identification of species generally requires a combination of morphological and genetic characterization. The selected microalgal strains are grown in upscale systems such as raceway ponds or photobireactors for biomass and lipid production. This paper reviews the recent methodologies adopted for site selection, sampling, strain selection and identification, optimization of cultural conditions for superior lipid yield for biofuel production. Energy generation routes of microalgal lipids and biomass are discussed in detail. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:57 / 70
页数:14
相关论文
共 47 条
[31]   Deep eutectic solvents and ionic liquid assisted hydrolysis of microalgal biomass: A promising approach towards sustainable biofuel production [J].
Kulshrestha, Akshay ;
Pancha, Imran ;
Mishra, Sandhya ;
Kumar, Arvind .
JOURNAL OF MOLECULAR LIQUIDS, 2021, 335
[32]   Phylogenomic Study of Lipid Genes Involved in Microalgal Biofuel Production-Candidate Gene Mining and Metabolic Pathway Analyses [J].
Misra, Namrata ;
Panda, Prasanna Kumar ;
Parida, Bikram Kumar ;
Mishra, Barada Kanta .
EVOLUTIONARY BIOINFORMATICS, 2012, 8 :545-564
[33]   Exploring Sustainable Biofuel Production: Comparative Analysis of Microalgal Oil Yield and Fatty Acid Composition Through Mixotrophic Cultivation on Agro-Industrial Wastes [J].
Noor, Tahir ;
Hussain, Ali ;
Deepanraj, Balakrishnan ;
Javid, Arshad ;
Imran, Muhammad .
WASTE AND BIOMASS VALORIZATION, 2024, :3215-3226
[34]   Carbon dioxide fixation and lipid storage of Scenedesmus sp. ASK22: A sustainable approach for biofuel production and waste remediation [J].
Pandey, Ashutosh ;
Srivastava, Sameer ;
Kumar, Sanjay .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2023, 332
[35]   Microalgal biorefineries: Advancement in machine learning tools for sustainable biofuel production and value-added products recovery [J].
Kavitha, S. ;
Ravi, Yukesh Kannah ;
Kumar, Gopalakrishnan ;
Nandabalan, Yogalakshmi Kadapakkam ;
Banu, J. Rajesh .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2024, 353
[36]   Review on integrated biofuel production from microalgal biomass through the outset of transesterification route: a cascade approach for sustainable bioenergy [J].
Karpagam, Rathinasamy ;
Jawaharraj, Kalimuthu ;
Gnanam, Ramasamy .
SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 766
[37]   Highly efficient harvesting and lipid extraction of limnetic Chlorella sorokiniana SDEC-18 grown in seawater for microalgal biofuel production [J].
Pei, Haiyan ;
Zhang, Lijie ;
Betenbaugh, Michael J. ;
Jiang, Liqun ;
Lin, Xiao ;
Ma, Chunxia ;
Yang, Zhigang ;
Wang, Xiaodong ;
Chen, Shuaiqi ;
Lin, Wen-Feng .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2022, 66
[38]   Lipid productivity and cell wall ultrastructure of six strains of Nannochloropsis: Implications for biofuel production and downstream processing [J].
Beacham, Tracey A. ;
Bradley, Claire ;
White, Daniel A. ;
Bond, Peter ;
Ali, Sohail T. .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2014, 6 :64-69
[39]   Role of ZnO and Fe2O3 nanoparticle on synthetic saline wastewater on growth, nutrient removal and lipid content of Chlorella vulgaris for sustainable production of biofuel [J].
Xia, Changlei ;
Van Le, Quyet ;
Chinnathambi, Arunachalam ;
Salmen, Saleh H. ;
Alharbi, Sulaiman Ali ;
Tola, Siriporn .
FUEL, 2021, 300
[40]   Sustainable valorization of flue gas CO2 and wastewater for the production of microalgal biomass as a biofuel feedstock in closed and open reactor systems [J].
Nayak, Manoranjan ;
Karemore, Ankush ;
Sen, Ramkrishna .
RSC ADVANCES, 2016, 6 (94) :91111-91120