水环境中纳米塑料的行为及其生态毒性研究进展

李俊飞, 叶权运, 王亚西, 翟永江, 贺德春, 潘杰. 水环境中纳米塑料的行为及其生态毒性研究进展[J]. 生态毒理学报, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003
引用本文: 李俊飞, 叶权运, 王亚西, 翟永江, 贺德春, 潘杰. 水环境中纳米塑料的行为及其生态毒性研究进展[J]. 生态毒理学报, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003
Li Junfei, Ye Quanyun, Wang Yaxi, Zhai Yongjiang, He Dechun, Pan Jie. Research Progress on Behavior and Ecotoxicity of Nanoplastics in Aquatic Environment[J]. Asian journal of ecotoxicology, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003
Citation: Li Junfei, Ye Quanyun, Wang Yaxi, Zhai Yongjiang, He Dechun, Pan Jie. Research Progress on Behavior and Ecotoxicity of Nanoplastics in Aquatic Environment[J]. Asian journal of ecotoxicology, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003

水环境中纳米塑料的行为及其生态毒性研究进展

    作者简介: 李俊飞(1998-),男,硕士研究生,研究方向为纳米塑料的环境行为和生态风险,E-mail:lijunfei1998@163.com
    通讯作者: 贺德春,E-mail:69295326@qq.com;  潘杰,E-mail:Panjie155@163.com
  • 基金项目:

    国家重点研发计划课题(2023YFC3709705);广州市科技计划项目(2024A04J5024)

  • 中图分类号: X171.5

Research Progress on Behavior and Ecotoxicity of Nanoplastics in Aquatic Environment

    Corresponding authors: He Dechun ;  Pan Jie
  • Fund Project:
  • 摘要: 纳米塑料是一类新兴污染物,其在水环境中的行为和生态毒性是国际前沿研究热点和难点之一。纳米塑料在水环境中会发生聚集和沉降,从而影响其在环境中的迁移和归趋。此外,纳米塑料由于其纳米尺寸效应、高比表面积和添加剂浸出等特性会对水生生物产生潜在毒性效应。然而,目前关于水环境中纳米塑料的环境行为和生态毒性研究尚处于起步阶段。本文基于现有文献调研,系统论述了影响纳米塑料聚集和沉积行为的因素,包括纳米塑料自身理化性质、溶液pH值、离子种类强度、矿物颗粒和天然有机质等的影响。综合梳理了纳米塑料对水生生物的单独毒性,及其与其他污染物共存时的复合毒性。在此基础上,提出了当前研究存在的问题和不足,并对未来的研究方向做出评述和展望,旨在为今后水环境中纳米塑料的环境行为和生态毒性研究提供参考。
  • 加载中
  • MacLeod M, Arp H P H, Tekman M B, et al. The global threat from plastic pollution[J]. Science, 2021, 373(6550): 61-65
    Gigault J, El Hadri H, Nguyen B, et al. Nanoplastics are neither microplastics nor engineered nanoparticles[J]. Nature Nanotechnology, 2021, 16(5): 501-507
    Hartmann N B, Hüffer T, Thompson R C, et al. Are we speaking the same language? Recommendations for a definition and categorization framework for plastic debris[J]. Environmental Science & Technology, 2019, 53(3): 1039-1047
    Gigault J, Halle A T, Baudrimont M, et al. Current opinion: What is a nanoplastic?[J]. Environmental Pollution, 2018, 235: 1030-1034
    Auffan M, Rose J, Wiesner M R, et al. Chemical stability of metallic nanoparticles: A parameter controlling their potential cellular toxicity in vitro[J]. Environmental Pollution, 2009, 157(4): 1127-1133
    Thompson R C, Moore C J, vom Saal F S, et al. Plastics, the environment and human health: Current consensus and future trends[J]. Philosophical Transactions of the Royal Society of London Series B, Biological Sciences, 2009, 364(1526): 2153-2166
    Fendall L S, Sewell M A. Contributing to marine pollution by washing your face: Microplastics in facial cleansers[J]. Marine Pollution Bulletin, 2009, 58(8): 1225-1228
    Rodríguez-Hernández A G, Chiodoni A, Bocchini S, et al. 3D printer waste, a new source of nanoplastic pollutants[J]. Environmental Pollution, 2020, 267: 115609
    Zhu K C, Jia H Z, Sun Y J, et al. Long-term phototransformation of microplastics under simulated sunlight irradiation in aquatic environments: Roles of reactive oxygen species[J]. Water Research, 2020, 173: 115564
    Liu J, Zhang T, Tian L L, et al. Aging significantly affects mobility and contaminant-mobilizing ability of nanoplastics in saturated loamy sand[J]. Environmental Science & Technology, 2019, 53(10): 5805-5815
    Liu Y J, Huang Z Q, Zhou J N, et al. Influence of environmental and biological macromolecules on aggregation kinetics of nanoplastics in aquatic systems[J]. Water Research, 2020, 186: 116316
    Liang H, Wang N, Liu D, et al. Release of microplastics and nanoplastics in water from disposable surgical masks after disinfection[J]. Marine Pollution Bulletin, 2022, 184: 114184
    Li T, Cao X F, Zhao R, et al. Stress response to nanoplastics with different charges in Brassica napus L. during seed germination and seedling growth stages[J]. Frontiers of Environmental Science & Engineering, 2022, 17(4): 43
    Liu J Y, Zeng D, Pan J, et al. Effects of polyethylene microplastics occurrence on estrogens degradation in soil[J]. Chemosphere, 2024, 355: 141727
    Zhou A, Zhang Y, Xie S, et al. Microplastics and their potential effects on the aquaculture systems: A critical review[J]. Reviews in Aquaculture, 2021, 13(1): 719-733
    Law C K Y, Kundu K, Bonin L, et al. Electrochemically assisted production of biogenic palladium nanoparticles for the catalytic removal of micropollutants in wastewater treatment plants effluent[J]. Journal of Environmental Sciences, 2023, 128: 203-212
    Facciolà A, Visalli G, Pruiti Ciarello M, et al. Newly emerging airborne pollutants: Current knowledge of health impact of micro and nanoplastics[J]. International Journal of Environmental Research and Public Health, 2021, 18(6): 2997
    Rose P K, Yadav S, Kataria N, et al. Microplastics and nanoplastics in the terrestrial food chain: Uptake, translocation, trophic transfer, ecotoxicology, and human health risk[J]. TrAC Trends in Analytical Chemistry, 2023, 167: 117249
    Kumar R, Manna C, Padha S, et al. Micro(nano)plastics pollution and human health: How plastics can induce carcinogenesis to humans?[J]. Chemosphere, 2022, 298: 134267
    Dris R, Imhof H, Sanchez W, et al. Beyond the ocean: contamination of freshwater ecosystems with (micro-)plastic particles[J]. Environmental Chemistry, 2015, 12(5): 539
    Xie L, Gong K, Liu Y, et al. Strategies and challenges of identifying nanoplastics in environment by surface-enhanced Raman spectroscopy[J]. Environmental Science & Technology, 2023, 57(1): 25-43
    Wu J, Liu J, Wu P, et al. The heteroaggregation and deposition behavior of nanoplastics on Al2O3 in aquatic environments[J]. Journal of Hazardous Materials, 2022, 435: 128964
    Lu S, Zhu K, Song W, et al. Impact of water chemistry on surface charge and aggregation of polystyrene microspheres suspensions[J]. Science of The Total Environment, 2018, 630: 951-959
    Hermansson M. The DLVO theory in microbial adhesion[J]. Colloids and Surfaces B: Biointerfaces, 1999, 14(1/4): 105-119
    Handy R D, Von der Kammer F, Lead J R, et al. The ecotoxicology and chemistry of manufactured nanoparticles[J]. Ecotoxicology, 2008, 17(4): 287-314
    Meng Z, Hashmi S M, Elimelech M. Aggregation rate and fractal dimension of fullerene nanoparticles via simultaneous multiangle static and dynamic light scattering measurement[J]. Journal of Colloid and Interface Science, 2013, 392: 27-33
    Chen C Y, Huang W L. Aggregation kinetics of diesel soot nanoparticles in wet environments[J]. Environmental Science & Technology, 2017, 51(4): 2077-2086
    Dong S N, Cai W W, Xia J H, et al. Aggregation kinetics of fragmental PET nanoplastics in aqueous environment: Complex roles of electrolytes, pH and humic acid[J]. Environmental Pollution, 2021, 268(Pt B): 115828
    Zhang F, Wang Z, Wang S, et al. Aquatic behavior and toxicity of polystyrene nanoplastic particles with different functional groups: Complex roles of pH, dissolved organic carbon and divalent cations[J]. Chemosphere, 2019, 228: 195-203
    Chen K L, Elimelech M. Relating colloidal stability of fullerene (C60) nanoparticles to nanoparticle charge and electrokinetic properties[J]. Environmental Science & Technology, 2009, 43(19): 7270-7276
    Cai L, Hu L L, Shi H H, et al. Effects of inorganic ions and natural organic matter on the aggregation of nanoplastics[J]. Chemosphere, 2018, 197: 142-151
    Bastos D, de las Nieves F J. Colloidal stability of sulfonated polystyrene model colloids. Correlation with electrokinetic data[J]. Colloid and Polymer Science, 1994, 272(5): 592-597
    Sakota K, Okaya T. Electrolyte stability of carboxylated latexes prepared by several polymerization processes[J]. Journal of Applied Polymer Science, 1977, 21(4): 1025-1034
    Ramirez L, Ramseier Gentile S, Zimmermann S, et al. Behavior of TiO2 and CeO2 nanoparticles and polystyrene nanoplastics in bottled mineral, drinking and Lake Geneva waters. Impact of water hardness and natural organic matter on nanoparticle surface properties and aggregation[J]. Water, 2019, 11(4): 721
    Romero-Cano M S, Martín-Rodríguez A, de las Nieves F J. Electrosteric stabilization of polymer colloids with different functionality[J]. Langmuir, 2001, 17(11): 3505-3511
    Shams M, Alam I, Chowdhury I. Aggregation and stability of nanoscale plastics in aquatic environment[J]. Water Research, 2020, 171: 115401
    Wang J Y, Zhao X L, Wu A M, et al. Aggregation and stability of sulfate-modified polystyrene nanoplastics in synthetic and natural waters[J]. Environmental Pollution, 2021, 268(Pt A): 114240
    El Badawy A M, Luxton T P, Silva R G, et al. Impact of environmental conditions (pH, ionic strength, and electrolyte type) on the surface charge and aggregation of silver nanoparticles suspensions[J]. Environmental Science & Technology, 2010, 44(4): 1260-1266
    Wu J Y, Ye Q Y, Li P R, et al. The heteroaggregation behavior of nanoplastics on goethite: Effects of surface functionalization and solution chemistry[J]. The Science of the Total Environment, 2023, 870: 161787
    Roberts A P. Magnetic mineral diagenesis[J]. Earth-Science Reviews, 2015, 151: 1-47
    Zhang Y Y, Luo Y Y, Guo X T, et al. Charge mediated interaction of polystyrene nanoplastic (PSNP) with minerals in aqueous phase[J]. Water Research, 2020, 178: 115861
    Choudhary A, Khandelwal N, Singh N, et al. Nanoplastics interaction with feldspar and weathering originated secondary minerals (kaolinite and gibbsite) in the riverine environment[J]. The Science of the Total Environment, 2022, 818: 151831
    Nie X, Xing X H, Xie R Y, et al. Impact of iron/aluminum (hydr)oxide and clay minerals on heteroaggregation and transport of nanoplastics in aquatic environment[J]. Journal of Hazardous Materials, 2023, 446: 130649
    Erhayem M, Sohn M. Stability studies for titanium dioxide nanoparticles upon adsorption of Suwannee River humic and fulvic acids and natural organic matter[J]. The Science of the Total Environment, 2014, 468/469: 249-257
    Zhao J, Wang Z Y, Ghosh S, et al. Phenanthrene binding by humic acid-protein complexes as studied by passive dosing technique[J]. Environmental Pollution, 2014, 184: 145-153
    Filella M. Freshwaters: Which NOM matters?[J]. Environmental Chemistry Letters, 2009, 7(1): 21-35
    Louie S M, Tilton R D, Lowry G V. Effects of molecular weight distribution and chemical properties of natural organic matter on gold nanoparticle aggregation[J]. Environmental Science & Technology, 2013, 47(9): 4245-4254
    Chang H H, Cheng T J, Huang C P, et al. Characterization of titanium dioxide nanoparticle removal in simulated drinking water treatment processes[J]. The Science of the Total Environment, 2017, 601/602: 886-894
    Bian S W, Mudunkotuwa I A, Rupasinghe T, et al. Aggregation and dissolution of 4 nm ZnO nanoparticles in aqueous environments: Influence of pH, ionic strength, size, and adsorption of humic acid[J]. Langmuir, 2011, 27(10): 6059-6068
    Illés E, Tombácz E. The effect of humic acid adsorption on pH-dependent surface charging and aggregation of magnetite nanoparticles[J]. Journal of Colloid and Interface Science, 2006, 295(1): 115-123
    Baalousha M, Manciulea A, Cumberland S, et al. Aggregation and surface properties of iron oxide nanoparticles: Influence of pH and natural organic matter[J]. Environmental Toxicology and Chemistry, 2008, 27(9): 1875-1882
    Tiller C L, O’Melia C R. Natural Organic Matter and Colloidal Stability: Models and Measurements[M]// Tadros T H F, Gregory J. Colloids in the Aquatic Environment. Amsterdam: Elsevier, 1993: 89-102
    Chen K L, Elimelech M. Influence of humic acid on the aggregation kinetics of fullerene (C60) nanoparticles in monovalent and divalent electrolyte solutions[J]. Journal of Colloid and Interface Science, 2007, 309(1): 126-134
    Liu X Y, Wazne M, Chou T, et al. Influence of Ca2+ and Suwannee River humic acid on aggregation of silicon nanoparticles in aqueous media[J]. Water Research, 2011, 45(1): 105-112
    Nason J A, McDowell S A, Callahan T W. Effects of natural organic matter type and concentration on the aggregation of citrate-stabilized gold nanoparticles[J]. Journal of Environmental Monitoring, 2012, 14(7): 1885-1892
    Singh N, Tiwari E, Khandelwal N, et al. Understanding the stability of nanoplastics in aqueous environments: Effect of ionic strength, temperature, dissolved organic matter, clay, and heavy metals[J]. Environmental Science: Nano, 2019, 6(10): 2968-2976
    Alimi O S, Farner J M, Tufenkji N. Exposure of nanoplastics to freeze-thaw leads to aggregation and reduced transport in model groundwater environments[J]. Water Research, 2021, 189: 116533
    Duan J J, Bolan N, Li Y, et al. Weathering of microplastics and interaction with other coexisting constituents in terrestrial and aquatic environments[J]. Water Research, 2021, 196: 117011
    Xi X L, Ding D J, Zhou H L, et al. Interactions of pristine and aged nanoplastics with heavy metals: Enhanced adsorption and transport in saturated porous media[J]. Journal of Hazardous Materials, 2022, 437: 129311
    Liu Y J, Hu Y B, Yang C, et al. Aggregation kinetics of UV irradiated nanoplastics in aquatic environments[J]. Water Research, 2019, 163: 114870
    Alimi O S, Farner Budarz J, Hernandez L M, et al. Microplastics and nanoplastics in aquatic environments: Aggregation, deposition, and enhanced contaminant transport[J]. Environmental Science & Technology, 2018, 52(4): 1704-1724
    Dong Z Q, Zhang W, Qiu Y P, et al. Cotransport of nanoplastics (NPs) with fullerene (C60) in saturated sand: Effect of NPs/C60 ratio and seawater salinity[J]. Water Research, 2019, 148: 469-478
    Shams M, Alam I, Chowdhury I. Interactions of nanoscale plastics with natural organic matter and silica surfaces using a quartz crystal microbalance[J]. Water Research, 2021, 197: 117066
    Li M, He L, Zhang M Y, et al. Cotransport and deposition of iron oxides with different-sized plastic particles in saturated quartz sand[J]. Environmental Science & Technology, 2019, 53(7): 3547-3557
    Myeong H, Kim J, Lee J Y, et al. Kinetics of polystyrene nanoplastic deposition on SiO2 and Al2O3 surfaces: Ionic strength effects[J]. Science Progress, 2023, 106(1): 368504221150430
    Zhu S S, Mo Y J, Luo W D, et al. Aqueous aggregation and deposition kinetics of fresh and carboxyl-modified nanoplastics in the presence of divalent heavy metals[J]. Water Research, 2022, 222: 118877
    Hirai H, Takada H, Ogata Y, et al. Organic micropollutants in marine plastics debris from the open ocean and remote and urban beaches[J]. Marine Pollution Bulletin, 2011, 62(8): 1683-1692
    Rong H F, He L, Li M, et al. Different electrically charged proteins result in diverse transport behaviors of plastic particles with different surface charge in quartz sand[J]. The Science of the Total Environment, 2021, 756: 143837
    Shiu R F, Vazquez C I, Tsai Y Y, et al. Nano-plastics induce aquatic particulate organic matter (microgels) formation[J]. The Science of the Total Environment, 2020, 706: 135681
    Dong Z Q, Hou Y Z, Han W H, et al. Protein corona-mediated transport of nanoplastics in seawater-saturated porous media[J]. Water Research, 2020, 182: 115978
    Shen M C, Zhang Y X, Zhu Y, et al. Recent advances in toxicological research of nanoplastics in the environment: A review[J]. Environmental Pollution, 2019, 252(Pt A): 511-521
    Guo Y, O’Brien A M, Lins T F, et al. Effects of hydrogen peroxide on cyanobacterium Microcystis aeruginosa in the presence of nanoplastics[J]. ACS ES&T Water, 2021, 1(7): 1596-1607
    Rossi G, Barnoud J, Monticelli L. Polystyrene nanoparticles perturb lipid membranes[J]. The Journal of Physical Chemistry Letters, 2014, 5(1): 241-246
    Jeong C B, Kang H M, Lee Y H, et al. Nanoplastic ingestion enhances toxicity of persistent organic pollutants (POPs) in the monogonont rotifer Brachionus koreanus via multixenobiotic resistance (MXR) disruption[J]. Environmental Science & Technology, 2018, 52(19): 11411-11418
    Zhang T Y, Yang S, Ge Y L, et al. Polystyrene nanoplastics induce lung injury via activating oxidative stress: Molecular insights from bioinformatics analysis[J]. Nanomaterials, 2022, 12(19): 3507
    Halimu G, Zhang Q R, Liu L, et al. Toxic effects of nanoplastics with different sizes and surface charges on epithelial-to-mesenchymal transition in A549 cells and the potential toxicological mechanism[J]. Journal of Hazardous Materials, 2022, 430: 128485
    Hou Z K, Meng R, Chen G H, et al. Distinct accumulation of nanoplastics in human intestinal organoids[J]. The Science of the Total Environment, 2022, 838(Pt 2): 155811
    Qiao J Y, Chen R, Wang M J, et al. Perturbation of gut microbiota plays an important role in micro/nanoplastics-induced gut barrier dysfunction[J]. Nanoscale, 2021, 13(19): 8806-8816
    Dong X S, Liu X B, Hou Q L, et al. From natural environment to animal tissues: A review of microplastics (nanoplastics) translocation and hazards studies[J]. The Science of the Total Environment, 2023, 855: 158686
    Kulkarni S A, Feng S S. Effects of particle size and surface modification on cellular uptake and biodistribution of polymeric nanoparticles for drug delivery[J]. Pharmaceutical Research, 2013, 30(10): 2512-2522
    Shan S, Zhang Y F, Zhao H W, et al. Polystyrene nanoplastics penetrate across the blood-brain barrier and induce activation of microglia in the brain of mice[J]. Chemosphere, 2022, 298: 134261
    Fournier S B, D’Errico J N, Adler D S, et al. Nanopolystyrene translocation and fetal deposition after acute lung exposure during late-stage pregnancy[J]. Particle and Fibre Toxicology, 2020, 17(1): 55
    Lee W S, Cho H J, Kim E, et al. Bioaccumulation of polystyrene nanoplastics and their effect on the toxicity of Au ions in zebrafish embryos[J]. Nanoscale, 2019, 11(7): 3173-3185
    Zhao X L, Sun J Q, Zhou L F, et al. Defining the size ranges of polystyrene nanoplastics according to their ability to cross biological barriers[J]. Environmental Science: Nano, 2023, 10(10): 2634-2645
    Fries E, Dekiff J H, Willmeyer J, et al. Identification of polymer types and additives in marine microplastic particles using pyrolysis-GC/MS and scanning electron microscopy[J]. Environmental Science Processes & Impacts, 2013, 15(10): 1949-1956
    Iguchi T, Watanabe H, Katsu Y. Application of ecotoxicogenomics for studying endocrine disruption in vertebrates and invertebrates[J]. Environmental Health Perspectives, 2006, 114(Suppl.1): 101-105
    Bridson J H, Gaugler E C, Smith D A, et al. Leaching and extraction of additives from plastic pollution to inform environmental risk: A multidisciplinary review of analytical approaches[J]. Journal of Hazardous Materials, 2021, 414: 125571
    Gunaalan K, Fabbri E, Capolupo M. The hidden threat of plastic leachates: A critical review on their impacts on aquatic organisms[J]. Water Research, 2020, 184: 116170
    陈玉芳, 闫振华, 张燕, 等. 城市水体微塑料垂向分布下附着细菌群落结构和功能响应[J]. 环境科学, 2022, 43(6): 3088-3096

    Chen Y F, Yan Z H, Zhang Y, et al. Community structure and microbial function responses of biofilms colonizing on microplastics with vertical distribution in urban water[J]. Environmental Science, 2022, 43(6): 3088-3096(in Chinese)

    Gong H, Li R X, Li F, et al. Toxicity of nanoplastics to aquatic organisms: Genotoxicity, cytotoxicity, individual level and beyond individual level[J]. Journal of Hazardous Materials, 2023, 443(Pt B): 130266
    Okshevsky M, Gautier E, Farner J M, et al. Biofilm formation by marine bacteria is impacted by concentration and surface functionalization of polystyrene nanoparticles in a species-specific manner[J]. Environmental Microbiology Reports, 2020, 12(2): 203-213
    Sun X M, Chen B J, Li Q F, et al. Toxicities of polystyrene nano- and microplastics toward marine bacterium Halomonas alkaliphila[J]. The Science of the Total Environment, 2018, 642: 1378-1385
    Liu S Q, Wu R, Yang X, et al. Water-dispersible nano-pollutions reshape microbial metabolism in type-specific manners: A metabolic and bacteriological investigation in Escherichia coli[J]. Frontiers of Environmental Science & Engineering, 2022, 16(9): 116
    Yokota K, Waterfield H, Hastings C, et al. Finding the missing piece of the aquatic plastic pollution puzzle: Interaction between primary producers and microplastics[J]. Limnology and Oceanography Letters, 2017, 2(4): 91-104
    Ferreira I, Venâncio C, Lopes I, et al. Nanoplastics and marine organisms: What has been studied?[J]. Environmental Toxicology and Pharmacology, 2019, 67: 1-7
    Wang S Y, Liu M H, Wang J M, et al. Polystyrene nanoplastics cause growth inhibition, morphological damage and physiological disturbance in the marine microalga Platymonas helgolandica[J]. Marine Pollution Bulletin, 2020, 158: 111403
    Vicentini D S, Nogueira D J, Melegari S P, et al. Toxicological evaluation and quantification of ingested metal-core nanoplastic by Daphnia magna through fluorescence and inductively coupled plasma-mass spectrometric methods[J]. Environmental Toxicology and Chemistry, 2019, 38(10): 2101-2110
    Rist S, Baun A, Hartmann N B. Ingestion of micro- and nanoplastics in Daphnia magna: Quantification of body burdens and assessment of feeding rates and reproduction[J]. Environmental Pollution, 2017, 228: 398-407
    Saavedra J, Stoll S, Slaveykova V I. Influence of nanoplastic surface charge on eco-corona formation, aggregation and toxicity to freshwater zooplankton[J]. Environmental Pollution, 2019, 252(Pt A): 715-722
    Mateos-Cárdenas A, van Pelt F N A M, O’Halloran J, et al. Adsorption, uptake and toxicity of micro- and nanoplastics: Effects on terrestrial plants and aquatic macrophytes[J]. Environmental Pollution, 2021, 284: 117183
    Sundbæk K B, Koch I D W, Villaro C G, et al. Sorption of fluorescent polystyrene microplastic particles to edible seaweed Fucus vesiculosus[J]. Journal of Applied Phycology, 2018, 30(5): 2923-2927
    Sjollema S B, Redondo-Hasselerharm P, Leslie H A, et al. Do plastic particles affect microalgal photosynthesis and growth?[J]. Aquatic Toxicology, 2016, 170: 259-261
    van Weert S, Redondo-Hasselerharm P E, Diepens N J, et al. Effects of nanoplastics and microplastics on the growth of sediment-rooted macrophytes[J]. The Science of the Total Environment, 2019, 654: 1040-1047
    Li Y M, Liu Z Q, Jiang Q C, et al. Effects of nanoplastic on cell apoptosis and ion regulation in the gills of Macrobrachium nipponense[J]. Environmental Pollution, 2022, 300: 118989
    Lu Y Y, Li H Y, Ren H Y, et al. Size-dependent effects of polystyrene nanoplastics on autophagy response in human umbilical vein endothelial cells[J]. Journal of Hazardous Materials, 2022, 421: 126770
    Chen Y C, Chen K F, Lin K A, et al. The nephrotoxic potential of polystyrene microplastics at realistic environmental concentrations[J]. Journal of Hazardous Materials, 2022, 427: 127871
    Tang Y, Han Y, Zhang W X, et al. Bisphenol A and microplastics weaken the antimicrobial ability of blood clams by disrupting humoral immune responses and suppressing hemocyte chemotactic activity[J]. Environmental Pollution, 2022, 307: 119497
    Trevisan R, Uzochukwu D, di Giulio R T. PAH sorption to nanoplastics and the Trojan horse effect as drivers of mitochondrial toxicity and PAH localization in zebrafish[J]. Frontiers in Environmental Science, 2020, 8: 78
    Lai W C, Xu D, Li J M, et al. Dietary polystyrene nanoplastics exposure alters liver lipid metabolism and muscle nutritional quality in carnivorous marine fish large yellow croaker (Larimichthys crocea)[J]. Journal of Hazardous Materials, 2021, 419: 126454
    Li L A, Gu H X, Chang X Q, et al. Oxidative stress induced by nanoplastics in the liver of juvenile large yellow croaker Larimichthys crocea[J]. Marine Pollution Bulletin, 2021, 170: 112661
    Li Z L, Feng C H, Wu Y H, et al. Impacts of nanoplastics on bivalve: Fluorescence tracing of organ accumulation, oxidative stress and damage[J]. Journal of Hazardous Materials, 2020, 392: 122418
    Zhang P P, Wang Y Q, Zhao X Z, et al. Surface-enhanced Raman scattering labeled nanoplastic models for reliable bio-nano interaction investigations[J]. Journal of Hazardous Materials, 2022, 425: 127959
    Ullah S, Ahmad S, Guo X L, et al. A review of the endocrine disrupting effects of micro and nano plastic and their associated chemicals in mammals[J]. Frontiers in Endocrinology, 2022, 13: 1084236
    Xu D H, Ma Y H, Han X D, et al. Systematic toxicity evaluation of polystyrene nanoplastics on mice and molecular mechanism investigation about their internalization into Caco-2 cells[J]. Journal of Hazardous Materials, 2021, 417: 126092
    Pitt J A, Trevisan R, Massarsky A, et al. Maternal transfer of nanoplastics to offspring in zebrafish (Danio rerio): A case study with nanopolystyrene[J]. The Science of the Total Environment, 2018, 643: 324-334
    Sun N, Shi H J, Li X X, et al. Combined toxicity of micro/nanoplastics loaded with environmental pollutants to organisms and cells: Role, effects, and mechanism[J]. Environment International, 2023, 171: 107711
    Fu L N, Li J, Wang G Y, et al. Adsorption behavior of organic pollutants on microplastics[J]. Ecotoxicology and Environmental Safety, 2021, 217: 112207
    Berkowitz B, Dror I, Yaron B. Contaminant geochemistry: Interactions and transport in the subsurface environment[J]. Environmental Earth Sciences, 2015, 73(12): 8715-8716
    Wan T, Lu S H, Cheng W, et al. A spectroscopic and theoretical investigation of interaction mechanisms of tetracycline and polystyrene nanospheres under different conditions[J]. Environmental Pollution, 2019, 249: 398-405
    Wan J K, Chu W L, Kok Y Y, et al. Influence of polystyrene microplastic and nanoplastic on copper toxicity in two freshwater microalgae[J]. Environmental Science and Pollution Research International, 2021, 28(25): 33649-33668
    Kang H M, Byeon E, Jeong H, et al. Arsenic exposure combined with nano- or microplastic induces different effects in the marine rotifer Brachionus plicatilis[J]. Aquatic Toxicology, 2021, 233: 105772
    Yu H W, Peng J F, Cao X F, et al. Effects of microplastics and glyphosate on growth rate, morphological plasticity, photosynthesis, and oxidative stress in the aquatic species Salvinia cucullata[J]. Environmental Pollution, 2021, 279: 116900
    Abdolahpur Monikh F, Vijver M G, Guo Z L, et al. Metal sorption onto nanoscale plastic debris and Trojan horse effects in Daphnia magna: Role of dissolved organic matter[J]. Water Research, 2020, 186: 116410
    Li Z C, Yi X L, Zhou H, et al. Combined effect of polystyrene microplastics and dibutyl phthalate on the microalgae Chlorella pyrenoidosa[J]. Environmental Pollution, 2020, 257: 113604
    Rowenczyk L, Dazzi A, Deniset-Besseau A, et al. Microstructure characterization of oceanic polyethylene debris[J]. Environmental Science & Technology, 2020, 54(7): 4102-4109
    Huang B, Wei Z B, Yang L Y, et al. Combined toxicity of silver nanoparticles with hematite or plastic nanoparticles toward two freshwater algae[J]. Environmental Science & Technology, 2019, 53(7): 3871-3879
    Jeong C B, Kang H M, Byeon E, et al. Phenotypic and transcriptomic responses of the rotifer Brachionus koreanus by single and combined exposures to nano-sized microplastics and water-accommodated fractions of crude oil[J]. Journal of Hazardous Materials, 2021, 416: 125703
    Bhagat J, Zang L Q, Nakayama H, et al. Effects of nanoplastic on toxicity of azole fungicides (ketoconazole and fluconazole) in zebrafish embryos[J]. The Science of the Total Environment, 2021, 800: 149463
    Gao X L, Zhang Y L, Hou L, et al. Co-exposure to nanoplastics and acetaminophen causes skeletal dysplasia and behavioral abnormalities in zebrafish[J]. Ecotoxicology and Environmental Safety, 2023, 253: 114640
    Chen J F, Lei Y H, Wen J, et al. The neurodevelopmental toxicity induced by combined exposure of nanoplastics and penicillin in embryonic zebrafish: The role of aging processes[J]. Environmental Pollution, 2023, 335: 122281
    Zheng Q Z, Cui L H, Liao H P, et al. Combined exposure to polystyrene nanoplastics and bisphenol A induces hepato- and intestinal-toxicity and disturbs gut microbiota in channel catfish (Ictalurus punctatus)[J]. The Science of the Total Environment, 2023, 891: 164319
    Lin W, Jiang R F, Xiong Y X, et al. Quantification of the combined toxic effect of polychlorinated biphenyls and nano-sized polystyrene on Daphnia magna[J]. Journal of Hazardous Materials, 2019, 364: 531-536
    González-Soto N, Hatfield J, Katsumiti A, et al. Impacts of dietary exposure to different sized polystyrene microplastics alone and with sorbed benzo[a]pyrene on biomarkers and whole organism responses in mussels Mytilus galloprovincialis[J]. The Science of the Total Environment, 2019, 684: 548-566
    Lu X B, Wang Z. Molecular mechanism for combined toxicity of micro(nano)plastics and carbon nanofibers to freshwater microalgae Chlorella pyrenoidosa[J]. Environmental Pollution, 2024, 344: 123403
    Feng L J, Shi Y, Li X Y, et al. Behavior of tetracycline and polystyrene nanoparticles in estuaries and their joint toxicity on marine microalgae Skeletonema costatum[J]. Environmental Pollution, 2020, 263(Pt A): 114453
    Yilimulati M, Wang L F, Ma X L, et al. Adsorption of ciprofloxacin to functionalized nano-sized polystyrene plastic: Kinetics, thermochemistry and toxicity[J]. The Science of the Total Environment, 2021, 750: 142370
  • 加载中
计量
  • 文章访问数:  1162
  • HTML全文浏览数:  1162
  • PDF下载数:  168
  • 施引文献:  0
出版历程
  • 收稿日期:  2024-03-26
李俊飞, 叶权运, 王亚西, 翟永江, 贺德春, 潘杰. 水环境中纳米塑料的行为及其生态毒性研究进展[J]. 生态毒理学报, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003
引用本文: 李俊飞, 叶权运, 王亚西, 翟永江, 贺德春, 潘杰. 水环境中纳米塑料的行为及其生态毒性研究进展[J]. 生态毒理学报, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003
Li Junfei, Ye Quanyun, Wang Yaxi, Zhai Yongjiang, He Dechun, Pan Jie. Research Progress on Behavior and Ecotoxicity of Nanoplastics in Aquatic Environment[J]. Asian journal of ecotoxicology, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003
Citation: Li Junfei, Ye Quanyun, Wang Yaxi, Zhai Yongjiang, He Dechun, Pan Jie. Research Progress on Behavior and Ecotoxicity of Nanoplastics in Aquatic Environment[J]. Asian journal of ecotoxicology, 2024, 19(5): 173-188. doi: 10.7524/AJE.1673-5897.20240326003

水环境中纳米塑料的行为及其生态毒性研究进展

    通讯作者: 贺德春,E-mail:69295326@qq.com;  潘杰,E-mail:Panjie155@163.com
    作者简介: 李俊飞(1998-),男,硕士研究生,研究方向为纳米塑料的环境行为和生态风险,E-mail:lijunfei1998@163.com
  • 1. 重庆三峡学院环境与化学工程学院, 重庆 404000;
  • 2. 生态环境部华南环境科学研究所, 广州 510530
基金项目:

国家重点研发计划课题(2023YFC3709705);广州市科技计划项目(2024A04J5024)

摘要: 纳米塑料是一类新兴污染物,其在水环境中的行为和生态毒性是国际前沿研究热点和难点之一。纳米塑料在水环境中会发生聚集和沉降,从而影响其在环境中的迁移和归趋。此外,纳米塑料由于其纳米尺寸效应、高比表面积和添加剂浸出等特性会对水生生物产生潜在毒性效应。然而,目前关于水环境中纳米塑料的环境行为和生态毒性研究尚处于起步阶段。本文基于现有文献调研,系统论述了影响纳米塑料聚集和沉积行为的因素,包括纳米塑料自身理化性质、溶液pH值、离子种类强度、矿物颗粒和天然有机质等的影响。综合梳理了纳米塑料对水生生物的单独毒性,及其与其他污染物共存时的复合毒性。在此基础上,提出了当前研究存在的问题和不足,并对未来的研究方向做出评述和展望,旨在为今后水环境中纳米塑料的环境行为和生态毒性研究提供参考。

English Abstract

参考文献 (136)

返回顶部

目录

/

返回文章
返回