Artigo Acesso aberto Revisado por pares

Microalgae and Crop Bio-Fertilization

2018; Frontiers Media; Volume: 6; Linguagem: Inglês

10.3389/conf.fchem.2018.01.00053

ISSN

2296-2646

Autores

Olakunle Ogunsakin, M. E. Apple,

Tópico(s)

Diatoms and Algae Research

Resumo

Event Abstract Back to Event Microalgae and Crop Bio-Fertilization Olakunle R. Ogunsakin1* and Martha Apple1 1 Montana Tech of the University of Montana, United States Algae from the Cold Bed Methane (CBM) ponds of the Tongue River Basin in southeastern Montana have the potential to be utilized as fertilizer for use on the economically important plants of Montana. Two very important crop plants of Montana (winter wheat - Triticum aestivum and potatoes - Solanum tuberosum) were considered. To explore this fertilization potential, isolates of unicellular green algae (PW95) from the CBM ponds were cultured in the laboratory and the cells were concentrated using gravity sedimentation. The nutrient analysis of PW95 was determined. The concentrated algal slurry was added to seedlings of hard winter wheat, T.aestivum, grown in a greenhouse for three months and harvested. When compared to control wheat grown with only water, or with water and a commercially available fertilizer, the PW95-fertilized wheat had a higher chlorophyll content, more tillers (side shoots), and a higher ratio of inflorescence (groups of flowers) per stem. The results of this study suggest that PW95 from the CBM ponds may be a viable source of fertilizer for crops and other economically important plants of Montana and may contribute to the development of an economically important and locally obtainable product from the ponds. Image 1 Image 2 Acknowledgements Algal (PW95 sp.) isolates from Centre for Biofilm Engineering (MSU), Potatoes and clonal seedlings were from the MSU Potato Lab, Wheat seeds were from Northern Seed Co., Summit Energy Resources LLC. provided access to the CBM ponds, and project was funded by the Montana Board of Regents. References ALL, 2003, “Handbook on Coal Bed Methane Produced Water: Management and Beneficial Use Alternatives,” prepared by ALL Consulting for the Ground Water Protection Research Foundation, U.S. Department of Energy, and U.S. Bureau of Land Management, July. Aslan, S., & Kapdan, I. K. (2006). Batch Kinetics of Nitrogen and Phosphorus Removal from Synthetic Wastewater by Algae. Ecological Engineering, 28(1), 64-70. Ayoub, G. M., Lee, S. I., & Koopman, B. (1986). Seawater Induced Algal Flocculation. Water Research, 20(10), 1265-1271. Becker, W. (2004). 18 Microalgae in Human and Animal Nutrition. Handbook of Microalgal Culture: Biotechnology and Applied Phycology, 312. Benemann, J. R., & Oswald, W. J. (1996). Systems and Economic Analysis of Microalgae Ponds for Conversion of CO2 to Biomass. Final report (No. DOE/PC/93204--T5). California Univ., Berkeley, CA (United States). Dept. of Civil Engineering. Benemann, J., Koopman, B., Weissman, J., Eisenberg, D., & Goebel, R. (1980). Development of microalgae harvesting and high-rate pond technologies in California. Algae biomass: production and use/[sponsored by the National Council for Research and Development, Israel and the Gesellschaft fur Strahlen-und Umweltforschung (GSF), Munich, Germany]; editors, Gedaliah Shelef, Carl J. Soeder. Besson, A., & Guiraud, P. (2013). High-pH-Induced Flocculation–Flotation of the Hypersaline Microalga Dunaliella Salina. Bioresource Technology, 147, 464-470. Chang, Y. R., & Lee, D. J. (2012). Coagulation–Membrane Filtration of Chlorella Vulgaris at Different Growth Phases. Drying Technology, 30(11-12), 1317-1322. Chen, C. Y., Yeh, K. L., Aisyah, R., Lee, D. J., & Chang, J. S. (2011). Cultivation, photobioreactor design and harvesting of microalgae for biodiesel production: a critical review. Bioresource Technology, 102(1), 71-81. Chen, Y. M., Liu, J. C., & Ju, Y. H. (1998). Flotation removal of algae from water. Colloids and Surfaces B: Biointerfaces, 12(1), 49-55. Chisti, Y. (2007). Biodiesel from microalgae. Biotechnology advances, 25(3), 294-306. Christenson, L., & Sims, R. (2011). Production and harvesting of microalgae for wastewater treatment, biofuels, and bioproducts. Biotechnology Advances, 29(6), 686-702. Chung, Y., Choi, Y. C., Choi, Y. H., & Kang, H. S. (2000). A demonstration scaling-up of the dissolved air flotation. Water Research, 34(3), 817-824. Davis, R. T. (2011). Characterizing Microalgae (Nannochloris oculata) Harvesting by Aluminum Flocculation (Doctoral dissertation, Texas A&M University). Draaisma, R. B., Wijffels, R. H., Slegers, P. E., Brentner, L. B., Roy, A., & Barbosa, M. J. (2013). Food commodities from microalgae. Current Opinion in Biotechnology, 24(2), 169-177. Duke, J. A. (1983). Handbook of Energy Crops. Frappart, M., Massé, A., Jaffrin, M. Y., Pruvost, J., & Jaouen, P. (2011). Influence of Hydrodynamics in Tangential and Dynamic Ultrafiltration Systems for Microalgae Separation. Desalination, 265(1), 279-283. Garzon-Sanabria, A. J., Davis, R. T., & Nikolov, Z. L. (2012). Harvesting Nannochloris oculata by inorganic electrolyte flocculation: effect of initial cell density, ionic strength, coagulant dosage, and media pH. Bioresource Technology, 118, 418-424. Grima, E. M., Belarbi, E. H., Fernández, F. A., Medina, A. R., & Chisti, Y. (2003). Recovery of Microalgal Biomass and Metabolites: Process Options and Economics. Biotechnology Advances, 20(7), 491-515. Healy, R. W., Bartos, T. T., Rice, C. A., McKinley, M. P., & Smith, B. D. (2011). Groundwater Chemistry near an Impoundment for Produced Water, Powder River Basin, Wyoming, USA. Journal of Hydrology, 403(1), 37-48. Hodgskiss, L. H., Nagy, J., Barnhart, E. P., Cunningham, A. B., & Fields, M. W. (2016). Cultivation of a Native Alga for Biomass and Biofuel Accumulation in Coal Bed Methane Production Water. Algal Research, 19, 63-68. Horneck, D., & Rosen, C. (2008). Measuring Nutrient Accumulation Rates of Potatoes—Tools for Better Management. Better Crops, 92(1), 4-6. Horpestad, A., Skaar, D. and Dawson, H.: 2001, Water Quality Effects from Coalbed Methane Development in the Powder River Basin, Wyoming and Montana, Water Quality Technical Report. http://www.deq.state.mt.us/ , pp.1-45 Huo, S., Wang, Z., Zhu, S., Cui, F., Zou, B., You, W., ... & Dong, R. (2014). Optimization of Alkaline Flocculation for Harvesting of Scenedesmus quadricauda# 507 and Chaetoceros muelleri# 862. Energies, 7(9), 6186-6195. Jha, M. N., & Prasad, A. N. (2006). Efficacy of New Inexpensive Cyanobacteria Biofertilizer Including Its Shelf-Life. World journal of Microbiology and Biotechnology, 22(1), 73-79. Knuckey, R. M., Brown, M. R., Robert, R., & Frampton, D. M. (2006). Production of Microalgal Concentrates by Flocculation and Their Assessment as Aquaculture Feeds. Aquacultural Engineering, 35(3), 300-313. Kogure, K., Simidu, U., & Taga, N. (1981). Bacterial Attachment to Phytoplankton in Sea Water. Journal of Experimental Marine Biology and Ecology, 56(2-3), 197-204. Kruyt, H. R., Jonker, G. H., & Overbeek, J. T. G. (1952). Colloid Science. Vol. 1. Irreversible Systems. Larkum, A. W., Ross, I. L., Kruse, O., & Hankamer, B. (2012). Selection, Breeding and Engineering of Microalgae for Bioenergy and Biofuel Production. Trends in Biotechnology, 30(4), 198-205. Lavoie, A., & De la Noüe, J. (1987). Harvesting of Scenedesmus Obliquus in Wastewaters: Auto-or Bioflocculation? Biotechnology and Bioengineering, 30(7), 852-859. Liu, J., Zhu, Y., Tao, Y., Zhang, Y., Li, A., Li, T., ... & Zhang, C. (2013). Freshwater Microalgae Harvested via Flocculation Induced by pH Decrease. Biotechnology for Biofuels, 6(1), 98. Manheim, D., & Nelson, Y. (2013). Settling and Bioflocculation of Two Species of Algae used in Wastewater Treatment and Algae Biomass Production. Environmental Progress & Sustainable Energy, 32(4), 946-954. Mata, T. M., Martins, A. A., & Caetano, N. S. (2010). Microalgae for Biodiesel Production and Other Applications: A Review. Renewable and Sustainable Energy Reviews, 14(1), 217-232. McBeth, I., Reddy, K. J., & Skinner, Q. D. (2003). Chemistry of Trace Elements in Coalbed Methane Product Water. Water Research, 37(4), 884-890. McGarry, M. G. (1970). Algal Flocculation with Aluminum Sulfate and Polyelectrolytes. Journal (Water Pollution Control Federation), R191-R201. Milledge, J. J., & Heaven, S. (2013). A Review of the Harvesting of Micro-Algae for Biofuel Production. Reviews in Environmental Science and Bio/Technology, 12(2), 165-178. Moheimani, N. R., Cord-Ruwisch, R., Raes, E., & Borowitzka, M. A. (2013). Non-destructive Oil Extraction from Botryococcus braunii (Chlorophyta). Journal of Applied Phycology, 25(6), 1653-1661. Mohn, F. H. (1988). Harvesting of Micro-Algal Biomass. Micro-Algal Biotechnology, 395-414. Nanda, B., Tripathy, S. K., & Padhi, S. (1991). Effect of Algalization on Seed Germination of Vegetable Crops. World Journal of Microbiology and Biotechnology, 7(6), 622-623. Nichols, H. W., & Bold, H. C. (1965). Trichosarcina polymorpha gen. et sp. nov. Journal of Phycology, 1(1), 34-38. Pereira, I., Ortega, R., Barrientos, L., Moya, M., Reyes, G., & Kramm, V. (2009). Development of a Biofertilizer based on Filamentous Nitrogen-fixing Cyanobacteria for Rice Crops in Chile. Journal of Applied Phycology, 21(1), 135-144. Saadatnia, H., & Riahi, H. (2009). Cyanobacteria from Paddy Fields in Iran as a Biofertilizer in Rice Plants. Plant Soil Environ, 55(5), 207-212. Sharma, N. K., Tiwari, S. P., Tripathi, K., & Rai, A. K. (2011). Sustainability and Cyanobacteria (Blue-Green Algae): Facts and Challenges. Journal of Applied Phycology, 23(6), 1059-1081. Tarakhovskaya, E. R., Maslov, Y. I., & Shishova, M. F. (2007). Phytohormones in Algae. Russian Journal of Plant Physiology, 54(2), 163-170. Thirumaran, G., Arumugam, M., Arumugam, R., & Anantharaman, P. (2009). Effect of Seaweed Liquid Fertilizer on Growth and Pigment Concentration of Abelmoschus esculentus (l) medikus. American-Eurasian Journal of Agronomy, 2(2), 57-66. Uduman, N., Qi, Y., Danquah, M. K., Forde, G. M., & Hoadley, A. (2010). Dewatering of Microalgal Cultures: A Major Bottleneck to Algae-Based Fuels. Journal of Renewable and Sustainable Energy, 2(1), 012701. USGS Fact Sheet FS-156-00 (2000). Water Produced with Coal-Bed Methane Vandamme, D., Foubert, I., & Muylaert, K. (2013). Flocculation as a Low-Cost Method for Harvesting Microalgae for Bulk Biomass Production. Trends in Biotechnology, 31(4), 233-239. Vandamme, D. (2013). Flocculation Based Harvesting Processes for Microalgae Biomass Production (Doctoral Dissertation, UGent). Veil, J. A., Puder, M. G., Elcock, D., & Redweik Jr, R. J. (2004). A White Paper Describing Produced Water from Production of Crude Oil, Natural Gas, and Coal Bed Methane. Argonne National Laboratory, Technical Report, 63. Vlaški, A., Van Breemen, A. N., & Alaerts, G. J. (1997). The Role of Particle Size and Density in Dissolved Air Flotation and Sedimentation. Water Science and Technology, 36(4), 177-189. Wan, C., Alam, M. A., Zhao, X. Q., Zhang, X. Y., Guo, S. L., Ho, S. H., ... & Bai, F. W. (2015). Current Progress and Future Prospect of Microalgal Biomass Harvest Using Various Flocculation Technologies. Bioresource Technology, 184, 251-257. Yahi, H., Elmaleh, S., & Coma, J. (1994). Algal Flocculation-Sedimentation by pH Increase in a Continuous Reactor. Water Science and Technology, 30(8), 259-267. Zhou, W., Cheng, Y., Li, Y., Wan, Y., Liu, Y., Lin, X., & Ruan, R. (2012). Novel Fungal Pelletization-Assisted Technology for Algae Harvesting and Wastewater Treatment. Applied Biochemistry and Biotechnology, 167(2), 214-228. Zittelli, G. C., Rodolfi, L., Biondi, N., & Tredici, M. R. (2006). Productivity and Photosynthetic Efficiency of Outdoor Cultures of Tetraselmis Suecica in Annular Columns. Aquaculture, 261(3), 932-943. Keywords: Cold Bed Methane (CBM) produced water, microalgae (unicellular eukaryotic algae), Biomass harvesting, biofertilizer, Flocculation Conference: National Organization for the Professional Advancement of Black Chemists and Chemical Engineers (NOBCChE) 45th Annual Conference , Orlando, Florida, United States, 17 Sep - 20 Sep, 2018. Presentation Type: Poster Presentation Topic: Enviornmental and Green Chemistry Citation: Ogunsakin OR and Apple M (2019). Microalgae and Crop Bio-Fertilization. Front. Chem. Conference Abstract: National Organization for the Professional Advancement of Black Chemists and Chemical Engineers (NOBCChE) 45th Annual Conference . doi: 10.3389/conf.fchem.2018.01.00053 Copyright: The abstracts in this collection have not been subject to any Frontiers peer review or checks, and are not endorsed by Frontiers. They are made available through the Frontiers publishing platform as a service to conference organizers and presenters. The copyright in the individual abstracts is owned by the author of each abstract or his/her employer unless otherwise stated. Each abstract, as well as the collection of abstracts, are published under a Creative Commons CC-BY 4.0 (attribution) licence (https://creativecommons.org/licenses/by/4.0/) and may thus be reproduced, translated, adapted and be the subject of derivative works provided the authors and Frontiers are attributed. For Frontiers’ terms and conditions please see https://www.frontiersin.org/legal/terms-and-conditions. Received: 18 Oct 2018; Published Online: 17 Jan 2019. * Correspondence: Mr. Olakunle R Ogunsakin, Montana Tech of the University of Montana, Butte, Montana, 59701, United States, rolakunle@gmail.com Login Required This action requires you to be registered with Frontiers and logged in. To register or login click here. Abstract Info Abstract The Authors in Frontiers Olakunle R Ogunsakin Martha Apple Google Olakunle R Ogunsakin Martha Apple Google Scholar Olakunle R Ogunsakin Martha Apple PubMed Olakunle R Ogunsakin Martha Apple Related Article in Frontiers Google Scholar PubMed Abstract Close Back to top Javascript is disabled. Please enable Javascript in your browser settings in order to see all the content on this page.

Referência(s)
Altmetric
PlumX