轮胎微塑料污染对分蘖期水稻生长的影响

徐新宇, 邓扬悟. 轮胎微塑料污染对分蘖期水稻生长的影响[J]. 生态毒理学报, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002
引用本文: 徐新宇, 邓扬悟. 轮胎微塑料污染对分蘖期水稻生长的影响[J]. 生态毒理学报, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002
Xu Xinyu, Deng Yangwu. Effects of Microplastic Pollution from Tire Wear on Growth of Rice at Tillering Stage[J]. Asian journal of ecotoxicology, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002
Citation: Xu Xinyu, Deng Yangwu. Effects of Microplastic Pollution from Tire Wear on Growth of Rice at Tillering Stage[J]. Asian journal of ecotoxicology, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002

轮胎微塑料污染对分蘖期水稻生长的影响

    作者简介: 徐新宇(1999-),男,硕士研究生,研究方向为微塑料的环境行为,E-mail:971668054@qq.com
    通讯作者: 邓扬悟(1977-),男,博士,教授,主要研究方向为环境污染治理与生态修复。E-mail:tosang@foxmail.com
  • 基金项目:

    国家自然科学基金资助项目(42267050);江西省重点研发计划项目(20212BBG73015,20203BBG73068);江西省自然科学基金资助项目(20212BAB203017)

  • 中图分类号: X171.5

Effects of Microplastic Pollution from Tire Wear on Growth of Rice at Tillering Stage

    Corresponding author: Deng Yangwu, tosang@foxmail.com
  • Fund Project:
  • 摘要: 随着汽车使用量的激增,由汽车轮胎磨损产生的大量轮胎磨损颗粒物(tire wear particles,TWP)引发的环境污染问题,日益受到人们重视。但关于TWP对植物生长影响的研究相对较少,其影响机制也尚不明确。本文以分蘖期水稻为受试植物,通过水培实验探究不同粒径(90、100、125、150和180 μm)、不同浓度(100、500和1 000 mg·L-1) TWP污染对植物生长的影响。结果表明,TWP对水稻生长的影响有明显的浓度效应,无显著的粒径效应。TWP污染对水稻地上部指标(根长、株高、根质量、叶质量等)和根系形态(根长、根表面积、平均直径、根体积、根尖数等)均具有明显的抑制作用。随着TWP浓度升高,叶绿素含量先被促进后被抑制,CAT活性先被促进后被抑制;TWP污染促进水稻根和叶SOD活性,但抑制根系活力和根POD活性,且浓度越高抑制效果越显著;当TWP浓度为100 mg·L-1时,所有处理组水稻叶POD活性均被抑制,而在TWP浓度为500 mg·L-1时,对所有处理组水稻叶POD活性均产生促进作用,当TWP浓度为1 000 mg·L-1时,促进效果有所减弱。可见,轮胎磨损颗粒显著改变水稻的抗氧化酶活性,同时诱导水稻根胁迫反应,通过植物根系和叶的氧化-抗氧化系统诱导应激反应。
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  • 刘力,张立群,杨裕生.轮胎磨损对环境和资源的影响不容忽视[J].中国橡胶,2014,30(7):16-17
    Wagner S,Hüffer T,Klöckner P,et al.Tire wear particlesin the aquatic environment:A review on generation,analysis,occurrence,fate and effects[J].Water Research,2018,139:83-100
    Kim S W,Waldman W R,Kim T Y,et al.Effects of different microplastics on nematodes in the soil environment:Tracking the extractable additives using an ecotoxicological approach[J].Environmental Science&Technology,2020,54(21):13868-13878
    Baensch-Baltruschat B,Kocher B,Stock F,et al.Tyre androad wear particles (TRWP):A review of generation,properties,emissions,human health risk,ecotoxicity,andfate in the environment[J].The Science of the Total Environment,2020,733:137823
    Halle L L,Palmqvist A,Kampmann K,et al.Ecotoxicology of micronized tire rubber:Past,present and future considerations[J].The Science of the Total Environment,2020,706:135694
    Pochron S,Nikakis J,Illuzzi K,et al.Exposure to agedcrumb rubber reduces survival time during a stress test inearthworms (Eisenia fetida)[J].Environmental Scienceand Pollution Research International,2018,25(12):11376-11383
    Rhodes E P,Ren Z Y,Mays D C.Zinc leaching from tirecrumb rubber[J].Environmental Science&Technology,2012,46(23):12856-12863
    Wik A,Dave G.Occurrence and effects of tire wear particles in the environment:A critical review and an initialrisk assessment[J].Environmental Pollution,2009,157(1):1-11
    Wik A,Dave G.Acute toxicity of leachates of tire wearmaterial to Daphnia magna:Variability and toxic components[J].Chemosphere,2006,64(10):1777-1784
    Tian Z Y,Zhao H Q,Peter K T,et al.A ubiquitous tirerubber-derived chemical induces acute mortality in cohosalmon[J].Science,2021,371(6525):185-189
    Sathicq M B,Sabatino R,di Cesare A,et al.PET particlesraise microbiological concerns for human health whiletyre wear microplastic particles potentially affect ecosystem services in waters[J].Journal of Hazardous Materials,2022,429:128397
    王志超,张博文,倪嘉轩,等.微塑料对土壤水分入渗和蒸发的影响[J].环境科学,2022,43(8):4394-4401

    Wang Z C,Zhang B W,Ni J X,et al.Effect of microplastics on soil water infiltration and evaporation[J].Environmental Science,2022,43(8):4394-4401(in Chinese)

    Tiwari B,Ajmera B,Moubayed S,et al.Improvinggeotechnical behavior of clayey soils with shredded rubber tires:Preliminary study[C]//Geo-Congress 2014Technical Papers.Atlanta,Georgia:American Society of Civil Engineers,2014:3734-3743
    Sun H F,Lei C L,Xu J H,et al.Foliar uptake and leaf-toroot translocation of nanoplastics with different coatingcharge in maize plants[J].Journal of Hazardous Materials,2021,416:125854
    Zhang Q G,Zhao M S,Meng F S,et al.Effect of polystyrene microplastics on rice seed germination and antioxidant enzyme activity[J].Toxics,2021,9(8):179
    Bosker T,Bouwman L J,Brun N R,et al.Microplasticsaccumulate on pores in seed capsule and delay germination and root growth of the terrestrial vascular plant Lepidium sativum[J].Chemosphere,2019,226:774-781
    Rozman U,Turk T,Skalar T,et al.An extensive characterization of various environmentally relevant microplastics:Material properties,leaching and ecotoxicity testing[J].The Science of the Total Environment,2021,773:145576
    Kalc'íkováG,Žgajnar Gotvajn A,Kladnik A,et al.Impact of polyethylene microbeads on the floating freshwaterplant duckweed Lemna minor[J].Environmental Pollution,2017,230:1108-1115
    Gao M L,Xu Y L,Liu Y,et al.Effect of polystyrene ondi-butyl phthalate (DBP) bioavailability and DBP-inducedphytotoxicity in lettuce[J].Environmental Pollution,2021,268(Pt B):115870
    Maity S,Chatterjee A,Guchhait R,et al.Cytogenotoxicpotential of a hazardous material,polystyrene microparticles on Allium cepa L.[J].Journal of Hazardous Materials,2020,385:121560
    Wu X,Hou H J,Liu Y,et al.Microplastics affect rice (Oryza sativa L.) quality by interfering metabolite accumulation and energy expenditure pathways:A field study[J].Journal of Hazardous Materials,2022,422:126834
    孙晓东.不同电荷纳米塑料在拟南芥体内的毒性、吸收和积累[D].济南:山东大学,2019:28-33Sun X D.Phytotoxicity,uptake and accumulation of differentially charged nanoplastics in Arabidopsis thaliana[D].Jinan:Shandong University,2019:28

    -33(in Chinese)

    Li Z X,Li R J,Li Q F,et al.Physiological response of cucumber (Cucumis sativus L.) leaves to polystyrene nanoplastics pollution[J].Chemosphere,2020,255:127041
    杨雅杰,褚玲珑,宋新山,等.2种微米级聚苯乙烯颗粒对菘蓝幼苗生长及土壤群落结构的影响[J].生态毒理学报,2022,17(6):244-255

    Yang Y J,Chu L L,Song X S,et al.Effects of two micron-sized polystyrene particles on Isatis indigotica seedlings growth and soil community structure[J].AsianJournal of Ecotoxicology,2022,17(6):244-255(in Chinese)

    牛佳瑞,邹勇军,简敏菲,等.聚苯乙烯微塑料联合镉污染对土壤理化性质和生菜(Lactuca sativa)生理生态的影响[J].环境科学,2024,45(1):470-479

    Niu J R,Zou Y J,Jian M F,et al.Effects of polystyrenemicroplastics combined with cadmium contamination onsoil physicochemical properties and physiological ecology of Lactuca sativa[J].Environmental Science,2024,45(1):470-479(in Chinese)

    焦萌,曹秉帝,张涛.环境中的轮胎磨损颗粒:从路面到海洋[J].环境科学学报,2020,40(12):4263-4278

    Jiao M,Cao B D,Zhang T.Tire wear particles in the environment:From road to ocean[J].Acta Scientiae Circumstantiae,2020,40(12):4263-4278(in Chinese)

    Kreider M L,Panko J M,McAtee B L,et al.Physical andchemical characterization of tire-related particles:Comparison of particles generated using different methodologies[J].The Science of the Total Environment,2010,408(3):652-659
    王成伟,刘禹,宋正国,等.微塑料对DBP胁迫下生菜光合作用及品质的影响[J].农业环境科学学报,2021,40(3):508-516

    Wang C W,Liu Y,Song Z G,et al.Effects of microplastics and DBP on photosynthesis and nutritional quality of lettuce[J].Journal of Agro-Environment Science,2021,40(3):508-516(in Chinese)

    赵梦赛.聚苯乙烯纳米塑料对水稻种子发芽和抗氧化活性的影响研究[D].北京:北京林业大学,2020:14-17Zhao M S.Effect of polystyrene nano-plastics on germination and antioxidant activity of rice seeds[D].Beijing:Beijing Forestry University,2020:14

    -17(in Chinese)

    Zhu F Y,Chen M X,Chan W L,et al.SWATH-MS quantitative proteomic investigation of nitrogen starvation inArabidopsis reveals new aspects of plant nitrogen stressresponses[J].Journal of Proteomics,2018,187:161-170
    朱秀云,梁梦,马玉.根系活力的测定(TTC法)实验综述报告[J].广东化工,2020,47(6):211-212

    Zhu X Y,Liang M,Ma Y.A review report on the experiments for the determination of root activity by TTC method[J].Guangdong Chemical Industry,2020,47(6):211-212(in Chinese)

    Zhong Z H,Liu Z Y,Zhuang L C,et al.Effects of temperature on photosynthetic performance and nitrate reductase activity in vivo assay in Gracilariopsis lemaneiformis (Rhodophyta)[J].Journal of Oceanology and Limnology,2021,39(1):362-371
    Kabange N R,Park S Y,Lee J Y,et al.New insights intothe transcriptional regulation of genes involved in the nitrogen use efficiency under potassium chlorate in rice (Oryza sativa L.)[J].International Journal of MolecularSciences,2021,22(4):2192
    Meng F R,Yang X M,Riksen M,et al.Response of common bean (Phaseolus vulgaris L.) growth to soil contaminated with microplastics[J].The Science of the Total Environment,2021,755(Pt 2):142516
    Kim S W,Kim D,Chae Y,et al.Crop-dependent changesin water absorption of expanded polystyrene in soil environments[J].Chemosphere,2019,219:345-350
    Urbina M A,Correa F,Aburto F,et al.Adsorption of polyethylene microbeads and physiological effects on hydroponic maize[J].The Science of the Total Environment,2020,741:140216
    Wu X,Liu Y,Yin S S,et al.Metabolomics revealing theresponse of rice (Oryza sativa L.) exposed to polystyrenemicroplastics[J].Environmental Pollution,2020,266(Pt1):115159
    Jiang X F,Chen H,Liao Y C,et al.Ecotoxicity and genotoxicity of polystyrene microplastics on higher plant Vicia faba[J].Environmental Pollution,2019,250:831-838
    Fu D L,Wu H Q,Wang Z K,et al.Effects of microplastics/nanoplastics on Vallisneria natans roots and sediment:Size effect,enzymology,and microbial communities[J].Chemosphere,2023,341:140052
    Zhou C Q,Lu C H,Mai L,et al.Response of rice (Oryzasativa L.) roots to nanoplastic treatment at seedling stage[J].Journal of Hazardous Materials,2021,401:123412
    Fu F,Long B B,Huang Q,et al.Integrated effects of residual plastic films on soil-rhizosphere microbe-plant ecosystem[J].Journal of Hazardous Materials,2023,445:130420
    Lian J P,Wu J N,Xiong H X,et al.Impact of polystyrenenanoplastics (PSNPs) on seed germination and seedlinggrowth of wheat (Triticum aestivum L.)[J].Journal of Hazardous Materials,2020,385:121620
    Baker N R.Chlorophyll fluorescence:A probe of photosynthesis in vivo[J].Annual Review of Plant Biology,2008,59:89-113
    Mittler R.Oxidative stress,antioxidants and stress tolerance[J].Trends in Plant Science,2002,7(9):405-410
    Lee D H,Kim Y S,Lee C B.The inductive responses of the antioxidant enzymes by salt stress in the rice (Oryzasativa L.)[J].Journal of Plant Physiology,2001,158(6):737-745
    Knight H,Knight M R.Abiotic stress signalling pathways:Specificity and cross-talk[J].Trends in Plant Science,2001,6(6):262-267
    Apel K,Hirt H.Reactive oxygen species:Metabolism,oxidative stress,and signal transduction[J].Annual Review of Plant Biology,2004,55:373-399
    Delaunay A,Pflieger D,Barrault M B,et al.A thiol peroxidase is an H2O2 receptor and redox-transducer in geneactivation[J].Cell,2002,111(4):471-481
    Li Z X,Li Q F,Li R J,et al.Physiological responses of lettuce (Lactuca sativa L.) to microplastic pollution[J].Environmental Science and Pollution Research International,2020,27(24):30306-30314
    Xu G H,Liu Y,Yu Y.Effects of polystyrene microplasticson uptake and toxicity of phenanthrene in soybean[J].The Science of the Total Environment,2021,783:147016
    廉宇航,刘维涛,史瑞滢,等.聚乙烯和聚乳酸微塑料对大豆生长和生理生化及代谢的影响[J].中国环境科学,2022,42(6):2894-2903

    Lian Y H,Liu W T,Shi R Y,et al.Impact of polyethyleneand polylactic acid microplastics on growth,physio-biochemistry and metabolism in soybean (Glycine max)[J].China Environmental Science,2022,42(6):2894-2903(inChinese)

    安菁,刘欢语,郑艳,等.土壤微塑料残留对大豆幼苗生长及生理生化特征的影响[J].四川农业大学学报,2021,39(1):41-46

    ,113An J,Liu H Y,Zheng Y,et al.Effects of soil microplasticsresidue on soybean seedlings growth and the physiological and biochemical characteristics[J].Journal of SichuanAgricultural University,2021,39(1):41-46,113(in Chinese)

    Gao K,Li B,Chen R Z,et al.A feasibility study of usingsilkworm larvae as a novel in vivo model to evaluate thebiotoxicity of ionic liquids[J].Ecotoxicology and Environmental Safety,2021,209:111759
    Bu C F,Wang C,Yang Y S,et al.Physiological responses of artificial moss biocrusts to dehydration-rehydrationprocess and heat stress on the Loess Plateau,China[J].Journal of Arid Land,2017,9(3):419-431
    Liu S Q,Wang J W,Zhu J H,et al.The joint toxicity of polyethylene microplastic and phenanthrene to wheatseedlings[J].Chemosphere,2021,282:130967
    Qin M,Chen C Y,Song B,et al.A review of biodegradable plastics to biodegradable microplastics:Another ecological threat to soil environments?[J].Journal of CleanerProduction,2021,312:127816
    李连祯,周倩,尹娜,等.食用蔬菜能吸收和积累微塑料[J].科学通报,2019,64(9):928-934

    Li L Z,Zhou Q,Yin N,et al.Uptake and accumulation of microplastics in an edible plant[J].Chinese Science Bulletin,2019,64(9):928-934(in Chinese)

    Dong Y M,Bao Q L,Gao M L,et al.A novel mechanismstudy of microplastic and As co-contamination on indicarice (Oryza sativa L.)[J].Journal of Hazardous Materials,2022,421:126694
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  • 收稿日期:  2023-11-30
  • 录用日期:  2024-02-07
徐新宇, 邓扬悟. 轮胎微塑料污染对分蘖期水稻生长的影响[J]. 生态毒理学报, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002
引用本文: 徐新宇, 邓扬悟. 轮胎微塑料污染对分蘖期水稻生长的影响[J]. 生态毒理学报, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002
Xu Xinyu, Deng Yangwu. Effects of Microplastic Pollution from Tire Wear on Growth of Rice at Tillering Stage[J]. Asian journal of ecotoxicology, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002
Citation: Xu Xinyu, Deng Yangwu. Effects of Microplastic Pollution from Tire Wear on Growth of Rice at Tillering Stage[J]. Asian journal of ecotoxicology, 2024, 19(2): 295-310. doi: 10.7524/AJE.1673-5897.20231130002

轮胎微塑料污染对分蘖期水稻生长的影响

    通讯作者: 邓扬悟(1977-),男,博士,教授,主要研究方向为环境污染治理与生态修复。E-mail:tosang@foxmail.com
    作者简介: 徐新宇(1999-),男,硕士研究生,研究方向为微塑料的环境行为,E-mail:971668054@qq.com
  • 1. 江西理工大学资源与环境工程学院,赣州 341000;
  • 2. 国家离子型稀土资源高效开发利用工程技术研究中心/江西离子型稀土工程技术研究有限公司,赣州 341000
基金项目:

国家自然科学基金资助项目(42267050);江西省重点研发计划项目(20212BBG73015,20203BBG73068);江西省自然科学基金资助项目(20212BAB203017)

摘要: 随着汽车使用量的激增,由汽车轮胎磨损产生的大量轮胎磨损颗粒物(tire wear particles,TWP)引发的环境污染问题,日益受到人们重视。但关于TWP对植物生长影响的研究相对较少,其影响机制也尚不明确。本文以分蘖期水稻为受试植物,通过水培实验探究不同粒径(90、100、125、150和180 μm)、不同浓度(100、500和1 000 mg·L-1) TWP污染对植物生长的影响。结果表明,TWP对水稻生长的影响有明显的浓度效应,无显著的粒径效应。TWP污染对水稻地上部指标(根长、株高、根质量、叶质量等)和根系形态(根长、根表面积、平均直径、根体积、根尖数等)均具有明显的抑制作用。随着TWP浓度升高,叶绿素含量先被促进后被抑制,CAT活性先被促进后被抑制;TWP污染促进水稻根和叶SOD活性,但抑制根系活力和根POD活性,且浓度越高抑制效果越显著;当TWP浓度为100 mg·L-1时,所有处理组水稻叶POD活性均被抑制,而在TWP浓度为500 mg·L-1时,对所有处理组水稻叶POD活性均产生促进作用,当TWP浓度为1 000 mg·L-1时,促进效果有所减弱。可见,轮胎磨损颗粒显著改变水稻的抗氧化酶活性,同时诱导水稻根胁迫反应,通过植物根系和叶的氧化-抗氧化系统诱导应激反应。

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