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      KCI등재 SCIE SCOPUS

      Effects of Iron Sources on the Growth and Lipid/Carbohydrate Production of Marine Microalga Dunaliella tertiolecta

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      https://www.riss.kr/link?id=A103818328

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      다국어 초록 (Multilingual Abstract)

      The effects of iron sources with different speciation and anionic moieties (ferric chloride, ferrous chloride, ferric EDTA, ferrous EDTA, ferric ammonium sulfate, and ferrous ammonium sulfate) on the cell growth and the production of energy storage (l...

      The effects of iron sources with different speciation and anionic moieties (ferric chloride, ferrous chloride, ferric EDTA, ferrous EDTA, ferric ammonium sulfate, and ferrous ammonium sulfate) on the cell growth and the production of energy storage (lipid and carbohydrate) from Dunaliella tertiolecta were investigated. The influence of iron dosage was also compared in the range from 0.65 mg/L (1X) to 6.5 mg/L (10X) as Fe concentration. Best cell growth rate was achieved when ferrous ammonium sulfate was used. Ferric EDTA resulted in higher lipid content than other iron sources, while ferrous ammonium sulfate favored the accumulation of carbohydrate among six iron sources. The accumulations of lipid and carbohydrate as energy storage competed each other and thus both contents did not increase together. In the presence of ferric EDTA, lipid content is increasing, while carbohydrate content is decreasing. On the contrary, lipid content is decreasing while carbohydrate is increasing in the presence of ferric ammonium sulfate. Because the overall carbohydrate content was larger than that of lipid, bioethanol production would be more advantageous than biodiesel production with the present D. tertiolecta strain if the carbohydrate in D. tertiolecta contains a high fraction of glucose with a good saccharification yield.

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      참고문헌 (Reference)

      1 Terauchi, A. M., "Trophic status of Chlamydomonas reinhardtii influences the impact of iron deficiency on photosynthesis" 105 : 39-49, 2010

      2 Singh, B., "Towards a sustainable approach for development of biodiesel from plant and microalgae" 29 : 216-245, 2014

      3 이옥경, "Sustainable production of liquid biofuels from renewable microalgae biomass" 한국공업화학회 29 : 24-31, 2015

      4 권민희, "Optimization of One-step Extraction and Transesterification Process for Biodiesel Production from the Marine Microalga Nannochloropsis sp. KMMCC 290 Cultivated in a Raceway Pond" 한국생물공학회 20 (20): 276-283, 2015

      5 Siaut, M., "Oil accumulation in the model green alga Chlamydomonas reinhardtii: Characterization, variability between common laboratory strains and relationship with starch reserves" 11 : 7-, 2011

      6 Kim, G., "Nitrate repletion strategy for enhancing lipid production from marine microalga Tetraselmis sp" 205 : 274-279, 2016

      7 Sakthivel, R., "Microalgae lipid research, past, present: A critical review for biodiesel production, in the future" 2 : 29-49, 2011

      8 Mujtaba, G., "Lipid production by Chlorella vulgaris after a shift from nutrient-rich to nitrogen starvation conditions" 123 : 279-283, 2012

      9 Chiu, S. Y., "Lipid accumulation and CO2 utilization of Nannochloropsis oculata in response to CO2 aeration" 100 : 833-838, 2009

      10 Radakovits, R., "Genetic engineering of algae for enhanced biofuel production" 9 : 486-501, 2010

      1 Terauchi, A. M., "Trophic status of Chlamydomonas reinhardtii influences the impact of iron deficiency on photosynthesis" 105 : 39-49, 2010

      2 Singh, B., "Towards a sustainable approach for development of biodiesel from plant and microalgae" 29 : 216-245, 2014

      3 이옥경, "Sustainable production of liquid biofuels from renewable microalgae biomass" 한국공업화학회 29 : 24-31, 2015

      4 권민희, "Optimization of One-step Extraction and Transesterification Process for Biodiesel Production from the Marine Microalga Nannochloropsis sp. KMMCC 290 Cultivated in a Raceway Pond" 한국생물공학회 20 (20): 276-283, 2015

      5 Siaut, M., "Oil accumulation in the model green alga Chlamydomonas reinhardtii: Characterization, variability between common laboratory strains and relationship with starch reserves" 11 : 7-, 2011

      6 Kim, G., "Nitrate repletion strategy for enhancing lipid production from marine microalga Tetraselmis sp" 205 : 274-279, 2016

      7 Sakthivel, R., "Microalgae lipid research, past, present: A critical review for biodiesel production, in the future" 2 : 29-49, 2011

      8 Mujtaba, G., "Lipid production by Chlorella vulgaris after a shift from nutrient-rich to nitrogen starvation conditions" 123 : 279-283, 2012

      9 Chiu, S. Y., "Lipid accumulation and CO2 utilization of Nannochloropsis oculata in response to CO2 aeration" 100 : 833-838, 2009

      10 Radakovits, R., "Genetic engineering of algae for enhanced biofuel production" 9 : 486-501, 2010

      11 Kim, G., "Environmental stress strategies for stimulating lipid production from microlagae for biodiesel" 25 : 553-558, 2014

      12 이기세, "Enhancement of lipid production in marine microalga Tetraselmis sp. through salinity variation" 한국화학공학회 33 (33): 230-237, 2016

      13 Baky, H. H. A. E., "Enhancement of lipid accumulation in Scenedesmus obliquus by optimizing CO2 and Fe3+ levels for biodiesel production" 119 : 429-432, 2012

      14 Ren, H. Y., "Enhanced lipid accumulation of green microalga Scenedesmus sp. by metal ions and EDTA addition" 169 : 763-767, 2014

      15 Jinsoo Kim, "Enhanced Autotrophic Growth of Nannochloris sp. with Trona Buffer for Sustainable Carbon Recycle" 한국생물공학회 21 (21): 422-429, 2016

      16 Kim, G., "Effects of nitrogen sources on cell growth and biochemical composition of marine chlorophyte Tetraselmis sp. for lipid production" 31 : 257-266, 2016

      17 Oijen, T. V., "Effects of iron limitation on photosynthesis and carbohydrate metabolism in the Antarctic diatom Chaetoceros brevis (Bacillariophyceae)" 39 : 161-171, 2004

      18 Ruangsomboon, S., "Effects of different nitrogen, phosphorus, and iron concentrations and salinity on lipid production in newly isolated strain of the tropical green microalga, Scenedesmus dimorphus KMITL" 25 : 867-874, 2013

      19 Mata, T. M., "Effect of the culture nutrients on the biomass and lipid productivities of microalgae Dunaliella tertiolecta" 32 : 973-978, 2013

      20 Sun, X., "Effect of nitrogen-starvation, light intensity and iron on triacylglyceride/carbohydrate production and fatty acid profile of Neochloris oleoabundans HK-129 by a two-stage process" 155 : 204-212, 2014

      21 Yeesang, C., "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" 102 : 3034-3040, 2011

      22 Liu, Z. Y., "Effect of iron on growth and lipid accumulation in Chlorella vulgaris" 99 : 4717-4722, 2008

      23 Van Wychen, S., "Determination of total lipids as fatty acid methyl esters (FAME) by in situ transesterification" National Renewable Energy Laboratory 12-, 2013

      24 Guillard, R. R. L., "Culture of Marine Invertebrate Animals" Plenum Press 26-60, 1975

      25 Concas, A., "Comprehensive modeling and investigation of the effect of iron on the growth rate and lipid accumulation of Chlorella vulgaris cultured in batch photobioreactors" 153 : 340-350, 2014

      26 Dubois, M., "Colorimetric method for determination of sugars and related substances" 28 : 350-356, 1956

      27 Lee, O. K., "Chemoenzymatic saccharification and bioethanol fermentation of lipid-extracted residual biomass of the microalga, Dunaliella tertiolecta" 132 : 197-201, 2013

      28 Li, Y., "Characterization of a microalga Chlorella sp. well adapted to highly concentrated municipal wastewater for nutrient removal and biodiesel production" 102 : 5138-5144, 2011

      29 Wang, B., "CO2 bio-mitigation using microalgae" 79 : 707-718, 2008

      30 Naito, K., "Ability of marine eukaryotic red tide microalgae to utilize insoluble iron" 4 : 1021-1032, 2005

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2011-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
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      2004-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
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      2001-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.14 0.13 0.75
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.57 0.46 0.239 0.02
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