Open Access
Issue |
E3S Web of Conf.
Volume 537, 2024
International Scientific and Practical Conference “Sustainable Development of the Environment and Agriculture: Green and Environmental Technologies” (SDEA 2024)
|
|
---|---|---|
Article Number | 04003 | |
Number of page(s) | 6 | |
Section | Environmental Safety is the Result of the Introduction of Green Technologies | |
DOI | https://doi.org/10.1051/e3sconf/202453704003 | |
Published online | 13 June 2024 |
- P. Abboud, K.J. Wilkinson, Role of metal mixtures (Ca, Cu and Pb) on Cd bioaccumulation and phytochelatin production by Chlamydomonas reinhardtii. Environ. Pollut., 179 (2013) [Google Scholar]
- A. Aguilera, R. Amils, Tolerance to cadmium in Chlamydomonas sp. (Chlorophyta) strains isolated from an extreme acidic environment, the Tinto River (SW, Spain). Aquat. Toxicol., 75 (2005) [Google Scholar]
- V.P. Andreev, Z.V. Plakhotskaya, Comparative analisis of cupper and cadmium accumulation by macrophytes of the Chupa inlet, 12(1), 124–127 (2019) [Google Scholar]
- M.D. Belando, A. Marin, M. Aboal, A.J. Garciafernandez, L. Maringuirao, Combined in situ effects of metals and nutrients on marine biofilms: shifts in the diatom assemblage structure and biological trait, 574 (2017) [Google Scholar]
- B. Chen, F. Li, N. Liu, F. Ge, H. Xiao, Y. Yang, Role of extracellular polymeric substances from Chlorella vulgaris in the removal of ammonium and orthophosphate under the stress of cadmium, 190 (2015) [Google Scholar]
- E.N. Chernova, Ocenka kachestva vodnoj sredy i biomonitoring: raschet porogovyh koncentracij i osobennosti akkumulyacii tyazhelyh metallov v fonovyh usloviyah, 234–236 (2019) [Google Scholar]
- C. Cervantes, F. Gutierrz-Corona, Copper resistance mechanisms in bacteria and fungi, 14(2), 121–138 (1994) [Google Scholar]
- J.-H. Chen, L. Lion, W. Ghiorse, M. Shuler, Mobilization of adsorbed cadmium and lead in aquifer material by bacterial extracellular polymers, 29(2), 421–430 (1995) [Google Scholar]
- G.G. Geesey, L. Jang, J.G. Jolley, M.R. Hankins, T. Iwaoka, P.R. Griffiths, Binding of metalions by extracellular polymers of biofilm bacteria, 20, 161–165 (1989) [Google Scholar]
- C. Chuang, P.H. Santschi, L. Wen, L. Guo, C. Xu, S. Zhang, D. Schumann, Binding of Th, Pa, Pb, Po and Be radionuclides to marine colloidal macromolecular organic matter, 173 (2015) [Google Scholar]
- P. Echeveste, J.C. Silva, A.T. Lombardi, Cu and Cd affect distinctly the physiology of a cosmopolitan tropical freshwater phytoplankton, 143 (2017) [Google Scholar]
- H.C. Flemming, Sorption sites in biofilms, 32(12), 27–33 (1995) [Google Scholar]
- B. Frølund, R. Palmgren, K. Keiding, P.H. Nielsen, Extraction of extracellular polymers from activated sludge using a cation exchange resin, 30(8) (1996) [Google Scholar]
- C. Gao, L. Gao, P. Duan, H. Wu, M. Li, Evaluating combined toxicity of binary heavy metals to the cyanobacterium Microcystis: a theoretical non-linear combined toxicity assessment method. Ecotoxicol, 187 (2020) [Google Scholar]
- S.M. Hamed, G. Zinta, G. Klock, H. Asard, S. Selim, H. AbdElgawad, Zincinduced differential oxidative stress and antioxidant responses in Chlorella sorokiniana and Scenedesmus acuminatus, 140 (2017) [Google Scholar]
- C.S. Hassler, V.I. Slaveykova, K.J. Wilkinson, Discriminating between intraand extracellular metals using chemical extractions, 2 (2004) [Google Scholar]
- J. Hou, Y. Yang, P. Wang, C. Wang, L. Miao, X. Wang, Z. Liu, Effects of CeO2, CuO, and ZnO nanoparticles on physiological features of Microcystis aeruginosa and the production and composition of extracellular polymeric substances, 24 (2017) [Google Scholar]
- M.S. Islam, M. Tanaka, Impacts of pollution on coastal and marine ecosystems including coastal and marine fisheries and approach for management: a review and synthesis, 48 (2004) [Google Scholar]
- M.S. Islam, K. Sazawa, N. Hata, K. Sugawara, H. Kuramitz, Determination of heavy metal toxicity by using a micro-droplet hydrodynamic voltammetry for microalgal bioassay based on alkaline phosphatase, 188 (2017) [Google Scholar]
- M.M. Ismaiel, A.A. Said, Tolerance of Pseudochlorella pringsheimii to Cd and Pb stress: role of antioxidants and biochemical contents in metal detoxification.Ecotoxicol, 164 (2018) [Google Scholar]
- A. Jamers, M. Lenjou, P. Deraedt, D.V. Bockstaele, R. Blust, W.D. Coen, Flow cytometric analysis of the cadmium-exposed green alga Chlamydomonas reinhardtii (Chlorophyceae), 44 (2009) [Google Scholar]
- L. Jarup, Hazards of heavy metal contamination, 68 (2003) [Google Scholar]
- I.B. Karadjova, V.I. Slaveykova, D.L. Tsalev, The biouptake and toxicity of arsenic species on the green microalga Chlorella salina in seawater, 87 (2008) [Google Scholar]
- D.J. Koppel, F. Gissi, M.S. Adams, C.K. King, D.F. Jolley, Chronic toxicity of five metals to the polar marine microalga Cryothecomonas armigeraeApplication of a new bioassay, 228 (2017) [Google Scholar]
- P.L. Lalhmunsiama Gupta, H. Jung, D. Tiwari, S.H. Kong, S.M. Lee, Insight into the mechanism of Cd (II) and Pb (II) removal by sustainable magnetic biosorbent precursor to Chlorella vulgaris, 71 (2017) [Google Scholar]
- T.T.Y. Le, S. Zimmermann, B. Sures, How does the metallothionein induction in bivalves meet the criteria for biomarkers of metal exposure? 212 (2016) [Google Scholar]
- J. Li, Z. Jiang, S. Chen, T. Wang, L. Jiang, M. Wang, Z. Li, Biochemical changes of polysaccharides and proteins within EPS under Pb(II) stress in Rhodotorula mucilaginosa, 174 (2019) [Google Scholar]
- L. Liu, G. Pohnert, D. Wei, Extracellular metabolites from industrial microalgae and their biotechnological potential, 191 (2016) [Google Scholar]
- M.M. Montazerrahmati, P. Rabbani, A. Abdolali, A.R. Keshtkar, Kinetics and equilibrium studies on biosorption of cadmium, lead, and nickel ions from aqueous solutions by intact and chemically modified brown algae, 185, 401e407 (2011) [Google Scholar]
- S. Naveed, Q. Yu, C. Zhang, Y. Ge, Extracellular polymeric substances alter cell surface properties, toxicity, and accumulation of arsenic in Synechocystis, 261 (2020) [Google Scholar]
- D.H. Nies, S. Silver, Metal ion uptake by a plasmidfree metal-sensitive Alcaligenes eutrophus strain, 171(7), 4073–4075 (1989) [Google Scholar]
- L.V. Perelomov, I.V. Perelomova, D.L. Pinskij, Molekulyarnye mekhanizmy vzaimodejstviya mezhdu mikroelementami i mikroorganizmami v biokosnyh sistemah (biosorbciya i bioakkumulyaciya), 3, 80–94 (2013) [Google Scholar]
- F. Perreault, D. Dewez, C. Fortin, P. Juneau, A. Diallo, R. Popovic, Effect of aluminum on cellular division and photosynthetic electron transport in Euglena gracilis and Chlamydomonas acidophila. Environ, 29 (2010) [Google Scholar]
- A. Plette, M. Benedetti, W. vanRiemsdijk, Competitive binding of protons, calcium, cadmium, and zinc to isolated cell walls of a Gram-positive soil bacterium, 30(6), 1902–1910 (1996) [Google Scholar]
- J. Scott, G. Sage, S. Palmer, Metal immobilisation by microbial capsular coatings, 1(1), 51–58 (1998) [Google Scholar]
- S. Tripathi, P.K. Mohan, Heavy metal detoxification mechanisms by microalgae: Insights from transcriptomics analysis, 285 (2021) [Google Scholar]
- L.A. Warren, E.A. Haack, Biogeochemical controls on metal behavior in freshwater environments, 54, 261–320 (2001) [Google Scholar]
- P. Weppen, A. Hornburg, Calorimetric studies on interactions of divalent cations and microorganisms or microbial envelopes, 269–404 (1995) [Google Scholar]
- A.R. Wilson, L.W. Lion, Y.M. Nelson, M.L. Shuler, W.C. Ghiorse, The effects of pH and surface composition on Pb adsorption to neutral freshwater biofilms, 35, 3182–3189, 47 (2001) [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.