Journal of Atmospheric and Environmental Optics, Volume. 15, Issue 4, 285(2020)
Dynamic Release Correlation Between Extracellular Organic Components and Microcystins MC-LR Based on Three-Dimensional Fluorescence Spectroscopy
[1] [1] Paerl H W, Gardner W S, Havens K E, et al. Mitigating cyanobacterial harmful algal blooms in aquatic ecosystems impacted by climate change and anthropogenic nutrients[J]. Harmful Algae, 2016, 54: 213-222.
[2] [2] Wiltsie D, Schnetzer A, Green J, et al. Algal Blooms and Cyanotoxins in Jordan Lake, North Carolina[J]. Toxins, 2018, 10(2): 92-114.
[3] [3] Liu L L, Zhong R G, Zeng Y. Advances in study on microcystins and their toxicology[J]. Journal of hygiene research, 2006, 35(2): 247-249.
[4] [4] Lone Y, Koir R K, Bhide M. An overview of the toxic effect of potential human carcinogen Microcystin-LR on testis[J]. Toxicology Reports, 2015, 2: 289-296.
[5] [5] World Health Organization. Guidelines for Drinking Water Quality, 4th ed, Incorporating the First Addendum[S]. Geneva, 2017.
[6] [6] Tsao S, Wei D J, Chang Y T, et al. Aerobic biodegradation of microcystin-LR by an indigenous bacterial mixed culture isolated in Taiwan[J]. International Biodeterioration & Biodegradation, 2017, 124: 101-108.
[7] [7] Roegner A F, Brena B, González S, et al. Microcystins in potable surface waters: toxic effects and removal strategies[J]. Journal of Applied Toxicology, 2014, 34(5): 441-457.
[8] [8] Danner K M, Mave M A, Sawyer A H, et al. Removal of the algal toxin microcystin-LR in permeable coastal sediments: Physical and numerical models[J]. Limology & Oceanography, 2018, 63(4): 1593-1604.
[9] [9] Chen J J, Yan T T, Xu J L, et al. Simultaneous determination of toxins in algae and water samples by high-performance liquid chromatography with triple quadrupole mass spectrometry[J]. Journal of Sepa-ration Science, 2015, 35(9): 1094-1101.
[10] [10] Kaloudis T, Zervou S K, Tsimeil K, et al. Determination of microcystins and nodularin (cyanobacterialtoxins) in water by LC-MS/MS. Monitoring of Lake Marathonas, a water reservoir of Athens, Greece[J]. Journal of Hazardous Materials, 2013, 263(6): 105-115.
[11] [11] Humpage A R, Falconer I R. Oral toxicity of the cyanobacterial toxin cylindrospermopsin in male Swiss albino mice: determination of no observed adverse effect level for deriving a drinking water guideline value[J]. Environmental Toxicology, 2010, 18(2): 94-103.
[12] [12] Catherine M, Lan S. The laboratory mouse in routine food safety testing for marine algal biotoxins and harmful algal bloom toxin research: past, present and future[J]. Journal of Aoac International, 2014, 97(2): 356-372.
[13] [13] Carmichael W, An J. Using an enzyme linked immunosorbent assay (ELISA) and a protein phosphatase inhibition assay (PPIA) for the detection of microcystins and nodularins[J]. Natural Toxins, 2015, 7(6): 377-385.
[14] [14] Gurbuz F, Metcalf J S, Codd G A, et al. Evaluation of Enzyme-Linked Immunosorbent Assays (ELISAs) for the Determination of Microcystins in Cyanobacteria[J]. Environment Forensics, 2012, 13(2): 105-109.
[15] [15] Chen K, Liu M C, Zhao G H, et al. Fabrication of a novel and simple microcystin-LR photoelectrochemical sensor with high sensitivity and selectivity[J]. Environmental Science & Technology, 2012, 46(21): 11955-11961.
[16] [16] Yan F, Erdem A, Meric B, et al. Electrochemical DNA biosensor for the detection of specific gene related to Microcystis species[J]. Electrochemistry Communications, 2001, 3(5): 224-228.
[17] [17] Li R Y, Xia Q F, Li Z J, et al. Electrochemical immunosensor for ultrasensitive detection of microcystin-LR based on graphene-gold nanocomposite/functional conducting polymer/gold nanoparticle/ionic liquid composite film with electrodeposition[J]. Biosensors & Bioelectronics, 2013, 44(11): 235-240.
[18] [18] Zhang W, Jia B, Furumai H. Fabrication of graphene film composite electrochemical biosensor as a pre-screening algal toxin detection tool in the event of water contamination[J]. Scientific Reports, 2018, 8(1): 10686.
[19] [19] Ding Y J, Mutharasan R. Highly sensitive and rapid detection of microcystin-LR in source and finished water samples using cantilever sensors[J]. Environmental Science & Technology, 2011, 45(4): 1490-1496.
[20] [20] Maguire I, Fitzgerald J, Heery B, et al. Novel microfluidic analytical sensing platform for the simultaneous detection of three algal toxins in water[J]. Acs Omega, 2018, 3(6): 6624-6634.
[21] [21] Wang Saisai. Inversion of Microcystin MC-LR Concentration Based on Characteristic Components of Extracellular Organic Matter[D]. Yangzhou: Master′s Thesis of Yangzhou University of China, 2019(in Chinese).
[22] [22] Heng O, Xiao J R, Li X Y, et al. Compositional characteristics of dissolved organic matter in water treatment systems of water source heat pump based on three-dimensional fluorescence analysis[J]. Spectroscopy & Spectral Analysis, 2018, 38(4):1146-1152.
[23] [23] Zhao N J, Zhang X L, Yin G F, et al. On-line analysis of algae in water by discrete three-dimensional fluorescence spectroscopy[J]. Optics Express, 2018, 26(6): A251-A259.
[24] [24] Watson K, Farré M J, Leusch F D L, et al. Using fluorescence-parallel factor analysis for assessing disinfection by-product formation and natural organic matter removal efficiency in secondary treated synthetic drinking waters[J]. Science of the Total Environment, 2018, s 640-641: 31-40.
[25] [25] Bertone E, Burford M A, Hamilton D P. Fluorescence probes for real-time remote cyanobacteria monitoring: a review of challenges and opportunities[J]. Water Research, 2018, 141(1): 152-162.
[26] [26] Johnstone D W, Miller C M. Fluorescence excitation-emission matrix regional transformation and chlorine consumption to predict trihalomethane and haloacetic acid formation[J]. Environmental Engineering Science, 2009, 26(7): 1163-1170.
[27] [27] Peleato N M, Andrews R C. Comparison of three-dimensional fluorescene analysis methods for predicting formation of trihalomethanes and haloacetic acids[J]. Journal of Environmental Sciences, 2015, 27(1): 159-167.
[29] [29] Jones V, Meador T B, Gogou A, et al. Characterisation and dynamics of dissolved organic matter in the Northwestern Mediterranean Sea[J]. Progress in Ocesnography, 2013, 119(6): 78-89.
[30] [30] Qu F S, Liang H, He J G, et al. Characterization of dissolved extracellular organic matter (dEOM) and bound extracellular organic matter (bEOM) of Microcystis aeruginosa and their impacts on UF membrane fouling[J]. Water Research, 2012, 46(9): 2881-2890.
[31] [31] Huguet A, Vacher L, Relexans S, et al. Properties of fluorescent dissolved organic matter in the Gironde Estuary[J]. Organic Geochemistry, 2009, 40(6): 706-719.
[32] [32] Brophy M J, Trueman B F, Park Y, et al. Fluorescence spectra predict microcystin-LR and disinfection byproduct formation potential in lake water[J]. Environmental Science & Technology,2019, 53(2): 586-594.
[33] [33] Chu H Q, Yu H, Tan X B, et al. Extraction procedure optimization and the characteristics of dissolved extracellular organic matter (dEOM) and bound extracellular organic matter (bEOM) from Chlorella pyren-oidosa[J]. Colloids and surfaces B : Biointerfaces, 2015, 125: 238-246.
[34] [34] Yao Dawei. Fingerprint Fluorescence Analysis of the Release Process of Extracellular Organic Matter from Cyanobacteria During Algal Blooms[D]. Yangzhou: Master′s Thesis of Yangzhou University of China, 2018(in Chinese).
[35] [35] Jiang F H, Lee F S C, Wang X, et al. The application of Excitation/Emission Matrix spectroscopy combined with multivariate analysis for the charat erization and source identification of dissolved organic matter in seawater of Bohai Sea, China[J]. Marine Chemistry, 2008, 110(1): 109-119.
[36] [36] Coble P G . Characterization of marine and terrestrial DOM in seawater using excitation-emission matrix spectroscopy[J]. Marine Chemistry, 1996, 51(4): 325-346.
[37] [37] Namguk H, Amy G, Park H R, et al. Characterizing algogenic organic matter (AOM) and evaluating associated NF membrane fouling[J]. Water Research, 2004, 38(6): 1427-1438.
[38] [38] Ahmad U K, Ujang Z, Yusop Z, et al. Fluorescence technique for the characterization of natural organic matter in river water[J]. Water Science & Technology, 2002, 46(9): 117-125.
[39] [39] Wu F C, Tanoue E, Liu C Q. Fluorescence and amino acid characteristics of molecular size fractions of DOM in the waters of Lake Biwa[J]. Biogeochemistry, 2003, 65(2): 245-257.
[40] [40] Song Xiaolan, Liu Zhengwen, Pan Hongkai, et al. Comparison of phytoplankton community between Meiliang Bay and in Lake Wuli and Lake Taihu[J]. Journal of Lake Sciences, 2007, 19(6): 643-651.
[41] [41] Kong Fanxiang, Ma Ronghua, Gao Junfeng, et al. The theory and practice of prevention, forecast and early warning on cyanobacteria bloom in Lake Taihu[J]. Journal of Lake Sciences, 2009, 21(3): 314-328.
Get Citation
Copy Citation Text
ZHANG Qingjing, WANG Zhigang, WANG Saisai, YAO Dawei, CHEN Xiaofeng. Dynamic Release Correlation Between Extracellular Organic Components and Microcystins MC-LR Based on Three-Dimensional Fluorescence Spectroscopy[J]. Journal of Atmospheric and Environmental Optics, 2020, 15(4): 285
Category:
Received: Apr. 8, 2019
Accepted: --
Published Online: Nov. 4, 2020
The Author Email: Qingjing ZHANG (1525071951@qq.com)