纳米塑料对硫酸铜抑制铜绿微囊藻生长的影响作用

希日古丽·麦木提敏, 土玛日斯·木合塔尔, 王云, 努扎艾提·艾比布. 纳米塑料对硫酸铜抑制铜绿微囊藻生长的影响作用[J]. 生态毒理学报, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002
引用本文: 希日古丽·麦木提敏, 土玛日斯·木合塔尔, 王云, 努扎艾提·艾比布. 纳米塑料对硫酸铜抑制铜绿微囊藻生长的影响作用[J]. 生态毒理学报, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002
Xirigul Mamtimin, Tumaris Muhtar, Wang Yun, Nuzahat Habibul. Effects of CuSO4 on Cyanobacterium (Microcystis aeruginosa) in Presence of Nanoplastics[J]. Asian journal of ecotoxicology, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002
Citation: Xirigul Mamtimin, Tumaris Muhtar, Wang Yun, Nuzahat Habibul. Effects of CuSO4 on Cyanobacterium (Microcystis aeruginosa) in Presence of Nanoplastics[J]. Asian journal of ecotoxicology, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002

纳米塑料对硫酸铜抑制铜绿微囊藻生长的影响作用

    作者简介: 希日古丽·麦木提敏(1997-),女,硕士研究生,研究方向为水体新污染物环境行为分析,E-mail:2575510713@qq.com
    通讯作者: 努扎艾提·艾比布(1982-),女,博士,教授,主要研究方向为水体新污染物的环境行为分析与去除机制研究。E-mail:nuzahat@mail.ustc.edu.cn
  • 基金项目:

    国家级大学生创新项目(202210762002);新疆天山英才-青年拔尖人才计划项目(2022TSYCCX0010)

  • 中图分类号: X171.5

Effects of CuSO4 on Cyanobacterium (Microcystis aeruginosa) in Presence of Nanoplastics

    Corresponding author: Nuzahat Habibul, nuzahat@mail.ustc.edu.cn
  • Fund Project:
  • 摘要: 研究了水环境中聚苯乙烯(PS)纳米塑料的共存对应急杀藻剂CuSO4抑制铜绿微囊藻的影响作用。带不同基团3种聚苯乙烯纳米塑料单独处理和CuSO4+纳米塑料共存情况下,通过测定藻密度、叶绿素a(Chl a)含量、丙二醛(MDA)含量以及超氧化物歧化酶(SOD)活性,研究了聚苯乙烯纳米塑料与Cu2+对铜绿微囊藻生长抑制的作用机制。结果表明,PS-COOH、PS、PS-NH2这3种纳米塑料均能缓解CuSO4对藻细胞胁迫。与空白对照组(CK)相比,CuSO4、PS-COOH+CuSO4,PS+CuSO4和PS-NH2+CuSO4暴露后藻密度分别抑制了42%、7%、5%、36%,Chl a含量降低了55%、6%、7%和45%,说明PS-NH2与CuSO4共同暴露对藻细胞生长和叶绿素合成的抑制作用与其他2种纳米塑料更为显著。相应地,PS-COOH、PS这2种纳米塑料显著缓解了CuSO4对藻细胞内MDA含量、SOD活性的胁迫。与空白对照相比,PS-COOH+CuSO4和PS+CuSO4处理组MDA含量和SOD活性分别增加了31%、35%和7%、5%,而CuSO4和PS-NH2+CuSO4处理后MDA含量和SOD活性分别增加了99%、66%和22%、5%。同样的,除了PS-NH2外,其他2种纳米塑料均能显著降低在CuSO4处理蓝藻水华过程中铜绿微囊藻胞外藻毒素(MCs)的释放。以上结果表明,带不同基团PS纳米塑料的共存在不同程度上影响CuSO4的除藻效率。
  • 加载中
  • Peschek G A,Bernroitner M,Sari S,et al.Life ImpliesWork:A Holistic Account of Our Microbial BiosphereFocusing on the Bioenergetic Processes of Cyanobacteria,the Ecologically Most Successful Organisms on OurEarth[M]//Bioenergetic Processes of Cyanobacteria.Dordrecht:Springer,2011:3-70
    Paerl H W,Otten T G.Harmful cyanobacterial blooms:Causes,consequences,and controls[J].Microbial Ecology,2013,65(4):995-1010
    Rastogi R P,Madamwar D,Incharoensakdi A.Bloom dynamics of cyanobacteria and their toxins:Environmentalhealth impacts and mitigation strategies[J].Frontiers inMicrobiology,2015,6:1254
    Paerl H W.Mitigating toxic planktonic cyanobacterialblooms in aquatic ecosystems facing increasing anthropogenic and climatic pressures[J].Toxins,2018,10(2):76
    Yang Z,Buley R P,Fernandez-Figueroa E G,et al.Hydrogen peroxide treatment promotes chlorophytes overtoxic cyanobacteria in a hyper-eutrophic aquaculture pond[J].Environmental Pollution,2018,240:590-598
    Lushchak V I,Matviishyn T M,Husak V V,et al.Pesticide toxicity:A mechanistic approach[J].EXCLI Journal,2018,17:1101-1136
    Xu H Z,Brookes J,Hobson P,et al.Impact of copper sulphate,potassium permanganate,and hydrogen peroxideon Pseudanabaena galeata cell integrity,release and degradation of 2-methylisoborneol[J].Water Research,2019,157:64-73
    Le Jeune A H,Charpin M,Deluchat V,et al.Effect of copper sulphate treatment on natural phytoplanktoniccommunities[J].Aquatic Toxicology,2006,80(3):267-280
    Levy J L,Stauber J L,Jolley D F.Sensitivity of marinemicroalgae to copper:The effect of biotic factors on copper adsorption and toxicity[J].The Science of the TotalEnvironment,2007,387(1/3):141-154
    Wang Y H,Yang Y N,Liu X,et al.Interaction of microplastics with antibiotics in aquatic environment:Distribution,adsorption,and toxicity[J].Environmental Science&Technology,2021,55(23):15579-15595
    Gigault J,El Hadri H,Nguyen B,et al.Nanoplastics areneither microplastics nor engineered nanoparticles[J].Nature Nanotechnology,2021,16(5):501-507
    Li J Y,Liu H H,Chen J P.Microplastics in freshwatersystems:A review on occurrence,environmental effects,and methods for microplastics detection[J].Water Research,2018,137:362-374
    Zettler E R,Mincer T J,Amaral-Zettler L A.Life in the"plastisphere":Microbial communities on plastic marinedebris[J].Environmental Science&Technology,2013,47(13):7137-7146
    Murphy F,Russell M,Ewins C,et al.The uptake of macroplasticµplastic by demersal&pelagic fish in theNortheast Atlantic around Scotland[J].Marine PollutionBulletin,2017,122(1/2):353-359
    Guo Y W,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
    中华人民共和国水利部.SL88-2012水质叶绿素的测定分光光度法[S].北京:中国水利水电出版社,2012Ministry of Water Resources of the People's Republic of China.SL88-2012 Water Quality-determination of Chlorophyll by Spectrophotometric Method[S].Beijing:ChinaWater Power Press,2012

    (in Chinese)

    Kong Q X,Zhu L Z,Shen X Y.The toxicity of naphthalene to marine Chlorella vulgaris under different nutrientconditions[J].Journal of Hazardous Materials,2010,178(1/3):282-286
    Xian X X,Li X,Ye C S,et al.Higher sensitivity to Cu2+exposure of Microcystis aeruginosa in late lag phase isbeneficial to its control[J].Water Research,2022,214:118207
    Chen C C,Zhu X S,Xu H,et al.Copper adsorption tomicroplastics and natural particles in seawater:A comparison of kinetics,isotherms,and bioavailability[J].Environmental Science&Technology,2021,55(20):13923-13931
    Liu S,Huang J H,Zhang W,et al.Microplastics as a vehicle of heavy metals in aquatic environments:A review of adsorption factors,mechanisms,and biological effects[J].Journal of Environmental Management,2022,302(PtA):113995
    Davarpanah E,Guilhermino L.Single and combinedeffects of microplastics and copper on the populationgrowth of the marine microalgae Tetraselmis chuii[J].Estuarine,Coastal and Shelf Science,2015,167:269-275
    王琼杰,张勇,张阳阳,等.老化微塑料对水体中重金属铜和锌的吸附行为研究[J].环境科学学报,2021,41(7):2712-2726

    Wang Q J,Zhang Y,Zhang Y Y,et al.Adsorption of heavy metal ions Cu2+and Zn2+onto UV-aged microplastics in aquatic system[J].Acta Scientiae Circumstantiae,2021,41(7):2712-2726(in Chinese)

    Holmes L A,Turner A,Thompson R C.Adsorption of trace metals to plastic resin pellets in the marine environment[J].Environmental Pollution,2012,160(1):42-48
    Feng L J,Sun X D,Zhu F P,et al.Nanoplastics promotemicrocystin synthesis and release from cyanobacterial Microcystis aeruginosa[J].Environmental Science&Technology,2020,54(6):3386-3394
    Latifi A,Ruiz M,Zhang C C.Oxidative stress in cyanobacteria[J].FEMS Microbiology Reviews,2009,33(2):258-278
    Lu T,Zhu Y C,Xu J H,et al.Evaluation of the toxic response induced by azoxystrobin in the non-target greenalga Chlorella pyrenoidosa[J].Environmental Pollution,2018,234:379-388
    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
    Zheng W,Zou H F,Lv S W,et al.The effect of nanoTiO2 photocatalysis on the antioxidant activities of Cu,Zn-SOD at physiological pH[J].Journal of Photochemistry and Photobiology B,Biology,2017,174:251-260
    Qian H F,Yu S Q,Sun Z Q,et al.Effects of copper sulfate,hydrogen peroxide and N-phenyl-2-naphthylamineon oxidative stress and the expression of genes involvedphotosynthesis and microcystin disposition in Microcystisaeruginosa[J].Aquatic Toxicology,2010,99(3):405-412
    Zhou S Q,Yu Y H,Sun J L,et al.Oxidation of microcystin-LR by copper (Ⅱ) coupled with ascorbic acid:Kineticmodeling towards generation of H2O2[J].Chemical Engineering Journal,2018,333:443-450
    Pestana C J,Moura D S,Capelo-Neto J,et al.Potentiallypoisonous plastic particles:Microplastics as a vector forcyanobacterial toxins microcystin-LR and microcystin-LF[J].Environmental Science&Technology,2021,55(23):15940-15949
  • 加载中
计量
  • 文章访问数:  1087
  • HTML全文浏览数:  1087
  • PDF下载数:  231
  • 施引文献:  0
出版历程
  • 收稿日期:  2023-07-10
  • 录用日期:  2023-10-30
希日古丽·麦木提敏, 土玛日斯·木合塔尔, 王云, 努扎艾提·艾比布. 纳米塑料对硫酸铜抑制铜绿微囊藻生长的影响作用[J]. 生态毒理学报, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002
引用本文: 希日古丽·麦木提敏, 土玛日斯·木合塔尔, 王云, 努扎艾提·艾比布. 纳米塑料对硫酸铜抑制铜绿微囊藻生长的影响作用[J]. 生态毒理学报, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002
Xirigul Mamtimin, Tumaris Muhtar, Wang Yun, Nuzahat Habibul. Effects of CuSO4 on Cyanobacterium (Microcystis aeruginosa) in Presence of Nanoplastics[J]. Asian journal of ecotoxicology, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002
Citation: Xirigul Mamtimin, Tumaris Muhtar, Wang Yun, Nuzahat Habibul. Effects of CuSO4 on Cyanobacterium (Microcystis aeruginosa) in Presence of Nanoplastics[J]. Asian journal of ecotoxicology, 2024, 19(2): 359-366. doi: 10.7524/AJE.1673-5897.20230710002

纳米塑料对硫酸铜抑制铜绿微囊藻生长的影响作用

    通讯作者: 努扎艾提·艾比布(1982-),女,博士,教授,主要研究方向为水体新污染物的环境行为分析与去除机制研究。E-mail:nuzahat@mail.ustc.edu.cn
    作者简介: 希日古丽·麦木提敏(1997-),女,硕士研究生,研究方向为水体新污染物环境行为分析,E-mail:2575510713@qq.com
  • 新疆师范大学化学化工学院,乌鲁木齐 830054
基金项目:

国家级大学生创新项目(202210762002);新疆天山英才-青年拔尖人才计划项目(2022TSYCCX0010)

摘要: 研究了水环境中聚苯乙烯(PS)纳米塑料的共存对应急杀藻剂CuSO4抑制铜绿微囊藻的影响作用。带不同基团3种聚苯乙烯纳米塑料单独处理和CuSO4+纳米塑料共存情况下,通过测定藻密度、叶绿素a(Chl a)含量、丙二醛(MDA)含量以及超氧化物歧化酶(SOD)活性,研究了聚苯乙烯纳米塑料与Cu2+对铜绿微囊藻生长抑制的作用机制。结果表明,PS-COOH、PS、PS-NH2这3种纳米塑料均能缓解CuSO4对藻细胞胁迫。与空白对照组(CK)相比,CuSO4、PS-COOH+CuSO4,PS+CuSO4和PS-NH2+CuSO4暴露后藻密度分别抑制了42%、7%、5%、36%,Chl a含量降低了55%、6%、7%和45%,说明PS-NH2与CuSO4共同暴露对藻细胞生长和叶绿素合成的抑制作用与其他2种纳米塑料更为显著。相应地,PS-COOH、PS这2种纳米塑料显著缓解了CuSO4对藻细胞内MDA含量、SOD活性的胁迫。与空白对照相比,PS-COOH+CuSO4和PS+CuSO4处理组MDA含量和SOD活性分别增加了31%、35%和7%、5%,而CuSO4和PS-NH2+CuSO4处理后MDA含量和SOD活性分别增加了99%、66%和22%、5%。同样的,除了PS-NH2外,其他2种纳米塑料均能显著降低在CuSO4处理蓝藻水华过程中铜绿微囊藻胞外藻毒素(MCs)的释放。以上结果表明,带不同基团PS纳米塑料的共存在不同程度上影响CuSO4的除藻效率。

English Abstract

参考文献 (31)

返回顶部

目录

/

返回文章
返回