АЗОТНИЙ ТА ФОСФОРНИЙ СТРЕС ЯК ЕФЕКТИВНИЙ ПІДХІД ДО СТИМУЛЮВАННЯ НАКОПИЧЕННЯ ЛІПІДІВ У МІКРОВОДОРОСТЯХ
Ключові слова:
microalgae, biofuel, biodiesel, Nitrogen and Phosphorus stressАнотація
This research isexamines Nitrogen and Phosphorus stress and C:N:P stoichiometry's impact on microalgae growth and lipid synthesis. It analyzes the metabolic shift to TAG under nutrient stress and taxonomic nitrogen preferences. The focus is on balancing biomass and lipid content for biofuels.
Посилання
Sharma KK, Schuhmann H, Schenk PM. High lipid induction in microalgae for biodiesel production. Energies. 2012;5(5):1532–53. doi: 10.3390/en5051532.
Hu Q, Sommerfeld M, Jarvis E, Ghirardi M, Posewitz M, Seibert M, Darzins A. Microalgal triacylglycerols as feedstocks for biofuel production: perspectives and advances. Plant J. 2008;54(4):621–39. doi: 10.1111/j.1365-313X.2008.03492.x.
Salbitani G, Carfagna S. Ammonium utilization in microalgae: a sustainable method for wastewater treatment. Sustainability. 2021;13(2):956. doi: 10.3390/SU13020956.
Deschoenmaeker F, Bayon-Vicente G, Sachdeva N, Depraetere O, Carlos Cabrera JC, Leroy B, Muylaert K, Ruddy W. Impact of different nitrogen sources on the growth of Arthrospira sp. PCC 8005 under batch and continuous cultivation – a biochemical, transcriptomic and proteomic profile. Bioresour Technol. 2017;237:78–88. doi: 10.1016/j.biortech.2017.03.145.
Lachmann SC, Mettler-Altmann T, Wacker A, Spijkerman E. Nitrate or ammonium: influences of nitrogen source on the physiology of a green alga. Ecol Evol. 2019;9(3):1070–82. doi: 10.1002/ECE3.4790.
An M, Gao L, Zhao W, Chen W, Li M. Effects of nitrogen forms and supply mode on lipid production of microalga Scenedesmus obliquus. Energies. 2020;13(3):697. doi: 10.3390/EN13030697.
Farahin AW, Natrah I, Nagao N, Yusoff FM, Shariff M, Banerjee S, Katayama T, Nakakuni M, Koyama M, Nakasaki K, Toda T. Tolerance of Tetraselmis tetrathele to high ammonium nitrogen and its effect on growth rate, carotenoid, and fatty acids productivity. Front Bioeng Biotechnol. 2021;9:568776. doi: 10.3389/fbioe.2021.568776.
Leoni B, Patelli M, Soler V, Nava V. Ammonium transformation in 14 lakes along a trophic gradient. Water. 2018;10(3):265. doi: 10.3390/w10030265.
Camargo JA, Alonso A. Ecological and toxicological effects of inorganic nitrogen pollution in aquatic ecosystems: a global assessment. Environ Int. 2006;32(6):831–49. doi: 10.1016/j.envint.2006.05.002.
Roche LM, Kromschroeder L, Atwill ER, Dahlgren RA, Tate KW. Water quality conditions associated with cattle grazing and recreation on National Forest lands. PLoS ONE. 2013;8(6):e68127. doi: 10.1371/journal.pone.0068127.
Xu Z, Zhang X, Xie J, Yuan G, Tang X, Sun X, Yu G. Total nitrogen concentrations in surface water of typical agro- and forest ecosystems in China, 2004–2009. PLoS ONE. 2014;9(3):e92850. doi: 10.1371/journal.pone.0092850.
Bogard MJ, Vogt RJ, Hayes NM, Leavitt PR. Unabated nitrogen pollution favors growth of toxic cyanobacteria over chlorophytes in most hypereutrophic lakes. Environ Sci Technol. 2020;54(6):3219–27. doi: 10.1021/acs.est.9b06299.
Wong YK, Ho YH, Ho KC, Leung HM, Yung KKL. Growth medium screening for Chlorella vulgaris growth and lipid production. J Aquac Mar Biol. 2017;6(1):00143. doi: 10.15406/JAMB.2017.06.00143.
Liu Q, Pang T, Li L, Liu J, Lin W. Isochrysis sp. IOAC724S, a newly isolated, lipid-enriched, marine microalga for lipid production, and optimized cultivation conditions. Biomass Bioenergy. 2014;60:32–40. doi: 10.1016/j.biombioe.2013.11.003.
Steinman AD, Duhamel S. Chapter 33 - phosphorus limitation, Uptake, and turnover in Benthic Stream Algae. In: Lamberti GA, Hauer FR, editors. Methods in stream ecology. 3. Cambridge: Academic Press; 2017. pp. 197–218.
Thrane JE, Hessen DO, Andersen T. Plasticity in algal stoichiometry: experimental evidence of a temperature-induced shift in optimal supply N:P ratio. Limnol Oceanogr. 2017;62(4):1346–54. doi: 10.1002/LNO.10500.
Zarrinmehr MJ, Farhadian O, Heyrati FP, Keramatb J, Koutra E, Kornaros M, Daneshvar E. Effect of nitrogen concentration on the growth rate and biochemical composition of the microalga, Isochrysis galbana. Egypt J Aquat Res. 2020;46(2):153–8. doi: 10.1016/J.EJAR.2019.11.003.
Ratomski P, Hawrot-Paw M. Influence of nutrient-stress conditions on Chlorella vulgaris biomass production and lipid content. Catal. 2021;11(5):573. doi: 10.3390/CATAL11050573.
Griffiths MJ, Harrison STL. Lipid productivity as a key characteristic for choosing algal species for biodiesel production. J Appl Phycol. 2009;21:493–507. doi: 10.1007/S10811-008-9392-7