期刊文献+

纳米TiO_2对短裸甲藻的毒性效应 被引量:13

Toxic Effects of Nano-TiO_2 on Gymnodinium breve
原文传递
导出
摘要 为了揭示纳米TiO2对藻类的毒性作用和机制,研究了纳米TiO2对短裸甲藻的抑制特性及对酶活性、氧自由基等生理指标的影响.结果表明,纳米TiO2对短裸甲藻的生长有抑制作用,72 h半数致死浓度(EC50)为9.7 mg.L-1.在受试范围内随着纳米TiO2浓度的升高,超氧化物歧化酶(SOD)的活性显著性下降(P<0.05),随TiO2浓度增加,羟自由基的含量和过氧化氢酶(CAT)的活性显著性增加(P<0.05),超氧阴离子自由基含量也呈现升高的趋势.对照组羟自由基的含量是0.083U.mL-1,而在30 mg.L-1的纳米TiO2作用下,羟自由基的含量上升到1.1 U.mL-1.在20 mg.L-1纳米TiO2作用下,随着时间的延长,SOD活性、CAT活性和MDA(丙二醛)在暴露时间为12 h时达到最大,而48 h时降低到最小.12 h SOD的活性是0.14U.(107cell.min)-1,而48 h SOD的活性为0.01 U.(107cell.min)-1,而羟自由基只在48 h处呈显著性上升(P<0.05).纳米TiO2对抗氧化体系和自由基的影响可能与其抑藻机制有关.本研究为揭示纳米材料的环境生态效应提供了基础. In order to reveal the toxicity and mechanism of nano-TiO2 on algae, the inhibition effect, enzyme activity, oxygen free radicals of nano-TiO2 on the growth of G. breve were investigated. The results showed that G. breve was inhibited by nano-TiO2, and the 72 h-EC50 was 9.7 mg·L-1. With the increasing concentration of nano-titanium dioxide, the activities of SOD decrease significantly(P〈0.05). The content of hydrogen peroxide radicals and the activities of CAT increase significantly(P〈0.05), and the content of superoxide anion shows the increasing trend. The content of hydrogen peroxide radicals was 0.083 U·mL-1 in 0 mg·L-1nano-TiO2 suspension while that was 1.1 U·mL-1 in control after 48 h. Through the study of 20 mg·L-1 nano-titanium dioxide on G. breve at different times, the activities of SOD and CAT, the content of MDA are consistent, which the highest values is achieved at the exposure time of 12 hours and the lowest value is found at the exposure time of 48 hours. The content of hydroxyl radical increased significantly at the exposure time of 48 hours. The activity of SOD was 0.14 U·(107 cell·min)-1in G. breve at 12 h which was ten times higher than that at 48 h.
出处 《环境科学》 EI CAS CSCD 北大核心 2012年第1期233-238,共6页 Environmental Science
基金 国家自然科学基金项目(40906053) 国家水体污染控制与治理科技重大专项(2009ZX07010-008 2009ZX07010-009)
关键词 纳米TIO2 短裸甲藻 自由基 抗氧化酶 过氧化反应 nano-TiO2 Gymnodinium breve reactive oxygen species~ (ROS) antioxidant enzyme peroxidation
  • 相关文献

参考文献19

  • 1Lin D H, Xing B S. Phytotoxicity of nanoparticles: Inhibition of seed germination and root growth [ J]. Environmental Pollution, 2007, 150(2): 243-250.
  • 2Biswas P, Wu C Y. Critical review: nanoparticles and the environment [ J ]. Journal of the Air and Waste Management Association, 2005, 55(6): 708-746.
  • 3Nel A, Xia T, Madler L, et al. Toxic potential of materials at the nanolevel [ J]. Science, 2006, 311(5761) : 622-627.
  • 4Zhang W X, Kam B. Nanoscale environmental science and technology: challenges and opportunities [ J ]. Environmental Science and Technology, 2005, 39(5) : 94A-95A.
  • 5Lu P J, Ho I C, Lee T C. Induction of sister chromatid exchanges and micronuclei by titanium dioxide in Chinese hamster ovary-K1 cells [ J ]. Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 1998, 414 ( 1-3 ) : 15-20.
  • 6Rahman Q, Lohani M, Dopp E, et al. Evidence that ultrafine titanium dioxide induces micronuclei and apoptosis in Syrian hamster embryo fibroblasts [J]. Environmental Health Perspect, 2002, 110(8): 797-800.
  • 7Gurr J R, Wang A S S, Chen C H, et al. Uhrafine titanium dioxide particles in the absence of photoactivation can induce oxidative damage to human bronchial epithelial cells [ J ]. Toxicology, 2005, 213( 1-2): 66-73.
  • 8Wang J J, Sanderson B J, Wang H, Cyto-and genotoxicity of ultrafine TiO2 particles in cultured human lymphoblastoid cells [J]. Mutation Research, 2007, 628(2): 99-106.
  • 9Kang S J, Kim B M, Lee Y J, et al. Titanium dioxide nanoparticles trigger p53-mediated damage response in peripheral blood lymphocytes [ J ]. Environmental and Moleeular Mutagenesis, 2008, 49(5): 399-405.
  • 10Huang S, Chueh P J, Lin Y W, et al. Disturbed mitotic progression and genome segregation are involved in cell transformation mediated by nano-TiO2 long-term exposure [ J ].Toxicology and Applied Pharmacology, 2009, 241 (2) : 182- 194.

二级参考文献41

  • 1白茹,王雯,金星龙,宋文华.纳米材料生物安全性研究进展[J].环境与健康杂志,2007,24(1):59-61. 被引量:15
  • 2Allen N S, Edge M, Sandoval G, et al. Photocatalytic coatings for environmental applications[ J]. Photochem Photobiol, 2005, 81 (2) :279-290.
  • 3Wolf R, Matz H, Orion E, et al. Sunscreens-the ultimate cosmetic [ J ]. Acta Dermatovenerol Croat, 2003, 11 ( 3 ) : 158-162.
  • 4Cai R, Kubota Y, Shuin T, et al. Induction of cytotoxicity by photoexeited TiO2 particles [ J ]. Cancer Res, 1992, 52: 2346 -2348.
  • 5Srinivasan C. Toxicity of carbon nanotubes-some recent studies [J]. CurrSci, 2008, 95(3) :307-308.
  • 6Lee W M, An Y J, Yoon H. Toxicity and bioavailability of copper nanoparticles to the terrestrial plant mung bean ( Phaseolus radiatus) and wheat (Triticum aestivum):plant agar test for water-insoluble nanoparticles[J]. Environ Toxicol Chem, 2008, 27(9) :1915-1921.
  • 7Lin D H, Xing B S. Root uptake and phytotoxicity of ZnO nanoparticles [ J ]. Envion Sci Technol, 2008, 42 ( 15 ) : 5580-5585.
  • 8Zhu H, Han J, John Q, et al. Uptake, translocation, and accumulation of manufactured iron oxide nanoparticles by pumpkin plants[ J]. J Environ Monit, 2008, 10(6) :713-717.
  • 9Yang L, Watts D J. Particle surface characteristics may play an important role in phytotoxicity of alumina nanoparticles [ J ]. Toxicol Lett, 2005, 158 : 122-132.
  • 10Lin D H, Xing B S. Phytotoxicity of nanoparticles:Inhibition of seed germination and root growth [ J ]. Environ Pollut, 2007, 150:243-250.

共引文献85

同被引文献317

引证文献13

二级引证文献92

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部