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纳米氧化锌对大鼠肝及肝癌细胞的毒性效应 被引量:3

Cytotoxicity of ZnO nanoparticles in rat liver cells and hepatocarcinoma cells
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摘要 目的研究氧化锌纳米颗粒引致大鼠肝细胞(BRL-3A)和大鼠肝癌细胞(CBRH-7919)毒性的潜在机制。方法不同浓度(0.1~100mg/L)的氧化锌纳米颗粒与细胞相互作用不同时间(12~48h)后,检测细胞的生存率及细胞生成的活性氧(ROS)和谷胱甘肽(GSH)浓度的变化。结果氧化锌纳米颗粒以浓度依赖模式及时间依赖模式诱导细胞毒性,且大鼠肝癌细胞对氧化锌纳米颗粒的耐受性好于正常大鼠肝细胞;ROS的浓度变化与GSH浓度变化的关系及其与细胞生存率变化的关系都呈负相关,即氧化锌纳米颗粒诱导的细胞毒性是通过氧化应激产生作用的。结论本研究揭示了纳米颗粒诱导的细胞毒性在不同种类的细胞间存在差异,这一结果有利于准确评估纳米材料对生物机体的整体毒性效应,并为应用纳米材料科学、合理地治疗肿瘤提供了依据。 Objective To explore the potential cytotoxicity mechanisms of ZnO nanoparticles(NPs) in BRL-3A(rat liver cell line) and CBRH-7919(rat hepatocarcinoma cell line) cells.Methods We checked cell viability after ZnO exposure at varying concentrations(0.1-100 mg/L) and different exposure periods(12-48 h) and changes in reactive oxygen species(ROS) and glutathione(GSH) levels.Results Compared to the NP-free controls,ZnO NPs induced cytotoxicity in concentration-dependent and time-dependent manners in both cell lines.We found high cell viability in CBRH-7919 cells,indicating the better tolerance of CBRH-7919 cells to ZnO NPs than to BRL-3A cells.The increased ROS levels had a negative correlation with reduced cell viability and GSH levels,indicating that ZnO NPs could lead to cytotoxicity through oxidative stress in normal and cancer cells.Conclusion These results suggest that there exist different degrees of cytotoxicity induced by ZnO NPs in normal and cancer cells,which may deserve consideration in future assessment of nanotoxicity and treatment of cancer.
出处 《西安交通大学学报(医学版)》 CAS CSCD 北大核心 2012年第3期266-270,共5页 Journal of Xi’an Jiaotong University(Medical Sciences)
基金 国家自然科学基金资助项目(No.10825210 No.11120101002) 高校学科创新引智计划项目(No.B06024)~~
关键词 氧化锌纳米颗粒 细胞毒性 活性氧 谷胱甘肽 ZnO nanoparticle cytotoxicity reactive oxygen species(ROS) glutathione(GSH)
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  • 1周丽宏,陈自强,黄国友,翟晓,陈咏梅,徐峰,卢天健.细胞打印技术及应用[J].中国生物工程杂志,2010,30(12):95-104. 被引量:15
  • 2杨辉,杨丹凤,张华山,张伟,刘焕亮,刘超,袭著革.4种典型纳米材料对小鼠胚胎成纤维细胞毒性的初步研究[J].生态毒理学报,2007,2(4):427-434. 被引量:29
  • 3ZHENG YF,LI RZ,WANG YD.In Vitro and in Vivo bio-compatibility studies of ZnO nanoparticlesInt J Mod PhysB,2009.
  • 4SEMETE B,BOOYSEN L,LEMMER Y,et al.In vivo evalua-tion of the biodistribution and safety of PLGA nanoparticles asdrug delivery systemsNanomed-Nanotechnol,2010.
  • 5HONG H,SHI J,YANG YA,et al.Cancer-targeted opticalimaging with fluorescent zinc oxide nanowiresNano Letters,2011.
  • 6WINGETT D,HANLEY C,LAYNE J,et al.Preferential kill-ing of cancer cells and activated human T cells using ZnO nano-particlesNanotechnology,2008.
  • 7SHA BY,GAO W,WANG SQ,et al.Cytotoxicity of titaniumdioxide nanoparticles differs in four liver cells from human andratComposites Part B Engineering,2011.
  • 8LANGSCH A,GIRI S,ACIKGOZ A,et al.Interspecies differ-ence in liver-specific functions and biotransformation of testosteroneof primary rat,porcine and human hepatocyte in an organotypicalsandwich cultureToxicology Letters,2009.
  • 9Finkel T,Holbrook NJ.Oxidants, oxidative stress and the biology of ageingNature,2000.
  • 10Qi, L,Xu, Z,Chen, M.In vitro and in vivo suppression of hepatocellular carcinoma growth by chitosan nanoparticlesEuropean Journal of Cancer,2007.

二级参考文献80

  • 1刘海霞,颜永年.组织器官的修复与重建[J].科学技术与工程,2005,5(1):36-43. 被引量:5
  • 2颜永年,刘海霞,李生杰,熊卓,王小红.生物制造工程的发展和趋势[J].中国科学基金,2007,21(2):65-68. 被引量:11
  • 3[1]Bremer S,Hartung T.2004.The use of embryonic stem cells for regulatory developmental toxicity testing in vitro-the current status of test development[J].Current Pharmaceutical Design,10:2733-2747
  • 4[2]Borm P J,Robbins D,Haubold S,Kuhlbusch T,Fissan H,Donaldson K,Schins R,Stone V,Kreyling W,Lademann J,Krutmann J,Warheit D,Oberd(o)rster E.2006.The potential risks of nanomaterials:a review carried out for ECETOC[J].Part Fibre Toxicol,14:11
  • 5[3]Chan V S W.2006.Nanomedicine:an unresolved regulatory issue[J].Regulatory Toxicology and Pharmacology,46:218-224
  • 6[4]Donaldson K,Brown D,Clouter A,Duffin R,Macnee W,Renwick L,Tran L,Stone V.2002.The pulmonary toxicology of ultrafine particles[J].J Aerosol Med,15:213-220
  • 7[5]Fubini B,Hubbard A.2003.Reactive oxygen species (ROS)and reactive nitrogen species (RNS)generation by silica in inflammation and fibrosis[J].Free Radical Biol Med,34:1507-1516
  • 8[6]Geiser M,Rothen-Rutishauser B,Kapp N,Schürch S,Kreyling W,Schulz H,Semmler M,Hof V I,Heyder J,Gehr P.2005.Ultrafine particles cross cellular membranes by non-phagocytic mechanisms in lungs and in cultured cells[J].Environ Health Perspect,113:1555-1560
  • 9[7]Holsapple M P,Farland W H,Landry T D,Monteiro-Riviere N A,Carter J M,Walker N J,Thomas K V.2005.Research strategies for safety evaluation of nanomaterials,part Ⅱ:toxicological and safety evaluation of nanomaterials,current challenges and data needs[J].Toxicol Sci,88:12-17
  • 10[8]Hussain S M,Hess K L,Gearhart J M,Geiss K T,Schlager J J.2005.In vitro toxicity of nanoparticles in BRL 3A rat liver cells[J].Toxicol in Vitro,19(7):975-983

共引文献42

同被引文献37

  • 1戴伟.水生动物重金属污染生物标志物的研究进展[J].水生态学杂志,2010,3(6):116-119. 被引量:10
  • 2刘慧,王晓蓉,王为木,于海霞.不同形态锌离子对鲫鱼谷胱甘肽系统的影响[J].中国环境科学,2005,25(2):169-173. 被引量:10
  • 3瞿林海,郑明,楼宜嘉.三七总皂苷提取工艺研究[J].中药材,2006,29(6):593-595. 被引量:38
  • 4NOWACK B.The behavior and effects of nanoparticles in the environment[J].Environmental Pollution,2009,157(4):1063.
  • 5NAVARRO E,BAUN A,BEHRA R,et al.Environmental behavior and ecotoxicity of engineered nanoparticles to algae,plants,and fungi[J].Ecotoxicology,2008,17(5):372-386.
  • 6NEL A,XIA T,MADLER L,et al.Toxic potential of materials at the nanolevel[J].Science,2006,311 (5761):622-627.
  • 7ADAMS L K,LYON D Y,ALVAREZ P J J.Comparative eco-toxicity of nanoscale TiO2,SiO2,and ZnO water suspensions[J].Water Research,2006,40 (19):3527-3532.
  • 8LI M,ZHU L,LIN D.Toxicity of ZnO Nanoparticles to Escherichia coli:Mechanism and the Influence of Medium Components[J].Environmental Science & Technology,2011,45(5):1977-1983.
  • 9KUMAR A,PANDEY A K,SINGH S S,et al.Engineered ZnO and TiO2 nanoparticles induce oxidative stress and DNA damage leading to reduced viability of Escherichia coli[J].Free Radic Biol Med,2011,51 (10):1872-1881.
  • 10ZHANG L,MANTHIRAM A.Chains composed of nanosize metal particles and identifying the factors driving their formation[J].Applied Physics Letters,1997,70(18):2469-2471.

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