Enhanced phycocyanin production from Spirulina subsalsa via freshwater and marine cultivation with optimized light source and temperature
Tài liệu tham khảo
Akimoto, 2012, Adaptation of light-harvesting systems of Arthrospira platensis to light conditions, probed by time-resolved fluorescence spectroscopy, BBA-Bioenergetics, 1817, 1483, 10.1016/j.bbabio.2012.01.006
Bachchhav, 2017, Enhanced phycocyanin production from Spirulina platensis using Light Emitting Diode, J. Institut. Eng. (India): Series E, 98, 41
Braune, 2021, Phycocyanin from Arthrospira platensis as potential anti-cancer drug: Review of in vitro and in vivo Studies, Life, 11, 91, 10.3390/life11020091
Chaiklahan, 2022, Enhanced biomass and phycocyanin production of Arthrospira (Spirulina) platensis by a cultivation management strategy: Light intensity and cell concentration, Bioresour. Technol., 343, 10.1016/j.biortech.2021.126077
Chen, 2013, Engineering strategies for simultaneous enhancement of C-phycocyanin production and CO2 fixation with Spirulina platensis, Bioresour. Technol., 145, 307, 10.1016/j.biortech.2013.01.054
Colla, 2007, Production of biomass and nutraceutical compounds by Spirulina platensis under different temperature and nitrogen regimes, Bioresour. Technol., 98, 1489, 10.1016/j.biortech.2005.09.030
Dejsungkranont, 2017, Optimization of production of C-phycocyanin and extracellular polymeric substances by Arthrospira sp, Bioproc. Biosyst. Eng., 40, 1173, 10.1007/s00449-017-1778-y
Hifney, 2013, Abiotic stress induced production of β-carotene, allophycocyanin and total lipids in Spirulina sp, J. Biol. Earth Sci., 3, 54
Hsieh-Lo, 2019, Phycocyanin and phycoerythrin: Strategies to improve production yield and chemical stability, Algal Res., 42, 10.1016/j.algal.2019.101600
Jiang, 2021, Seawater-cultured Spirulina subsalsa as a more promising host for phycocyanin production than Arthrospira platensis, Algal Res., 60, 10.1016/j.algal.2021.102545
Klok, 2014, Edible oils from microalgae: insights in TAG accumulation, Trends Biotechnol., 32, 521, 10.1016/j.tibtech.2014.07.004
Kumar, 2021, Orange light spectra filtered through transparent colored polyvinyl chloride sheet enhanced pigment content and growth of Arthrospira cells, Bioresour. Technol., 319, 10.1016/j.biortech.2020.124179
Kumar, 2011, Growth and biopigment accumulation of cyanobacterium Spirulina platensis at different light intensities and temperature, Braz. J. Microbiol., 42, 1128, 10.1590/S1517-83822011000300034
Lima, 2018, Influence of spectral light quality on the pigment concentrations and biomass productivity of Arthrospira platensis, Algal Res., 31, 157, 10.1016/j.algal.2018.02.012
Luimstra, 2018, Blue light reduces photosynthetic efficiency of cyanobacteria through an imbalance between photosystems I and II, Photosynth. Res., 138, 177, 10.1007/s11120-018-0561-5
Machalek, 1996, Thermal acclimation and photoacclimation of photosynthesis in the brown alga Laminaria saccharina, Plant Cell Environ., 19, 1005, 10.1111/j.1365-3040.1996.tb00207.x
Mackey, 2013, Effect of temperature on photosynthesis and growth in marine Synechococcus spp, Plant Physiol., 163, 815, 10.1104/pp.113.221937
Markou, 2014, Effect of various colors of Light-Emitting Diodes (LEDs) on the biomass composition of Arthrospira platensis cultivated in semi-continuous mode, Appl. Biochem. Biotech., 172, 2758, 10.1007/s12010-014-0727-3
Mary Leema, 2010, High value pigment production from Arthrospira (Spirulina) platensis cultured in seawater, Bioresour. Technol., 101, 9221, 10.1016/j.biortech.2010.06.120
Molina Grima, 2003, Recovery of microalgal biomass and metabolites: process options and economics, Biotechnol. Adv., 20, 491, 10.1016/S0734-9750(02)00050-2
Murata, 2007, Photoinhibition of photosystem II under environmental stress, BBA-Bioenergetics, 1767, 414, 10.1016/j.bbabio.2006.11.019
Niangoran, 2021, Influence of light intensity and photoperiod on energy efficiency of biomass and pigment production of Spirulina (Arthrospira platensis), OCL, 28, 37, 10.1051/ocl/2021025
Nur, 2019, Enhancement of C-phycocyanin productivity by Arthrospira platensis when growing on palm oil mill effluent in a two-stage semi-continuous cultivation mode, J. Appl. Phycol., 31, 2855, 10.1007/s10811-019-01806-9
Ogbonda, 2007, Influence of temperature and pH on biomass production and protein biosynthesis in a putative Spirulina sp, Bioresour. Technol., 98, 2207, 10.1016/j.biortech.2006.08.028
Oostlander, 2020, Microalgae production cost in aquaculture hatcheries, Aquaculture, 525, 10.1016/j.aquaculture.2020.735310
Pagels, 2019, Phycobiliproteins from cyanobacteria: Chemistry and biotechnological applications, Biotechnol. Adv., 37, 422, 10.1016/j.biotechadv.2019.02.010
Pez Jaeschke, 2021, Phycocyanin from Spirulina: A review of extraction methods and stability, Food Res. Int., 143, 10.1016/j.foodres.2021.110314
Prates, 2018, Spirulina cultivated under different light emitting diodes: Enhanced cell growth and phycocyanin production, Bioresour. Technol., 256, 38, 10.1016/j.biortech.2018.01.122
Schipper, 2020, Production of phycocyanin by Leptolyngbya sp. in desert environments, Algal Res., 47, 10.1016/j.algal.2020.101875
Seyhaneyildiz Can, 2017, Effect of temperature and nitrogen concentration on the growth and lipid content of Spirulina platensis and biodiesel production, Aquac. Int., 25, 1485, 10.1007/s10499-017-0121-6
Soni, 2017, Spirulina – From growth to nutritional product: A review, Trends Food Sci Tech, 69, 157, 10.1016/j.tifs.2017.09.010
Xie, 2015, Fed-batch strategy for enhancing cell growth and C-phycocyanin production of Arthrospira (Spirulina) platensis under phototrophic cultivation, Bioresour. Technol., 180, 281, 10.1016/j.biortech.2014.12.073
Yeesang, 2011, Effect of nitrogen, salt, and iron content in the growth medium and light intensity on lipid production by microalgae isolated from freshwater sources in Thailand, Bioresour. Technol., 102, 3034, 10.1016/j.biortech.2010.10.013