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1、 2017 年 4 月 许志珍, 等: 人工纳米材料对典型生物的毒性效应研究进展 Apr , 2017 39 KATULI K K,MASSASKY A,HADADI A,et al Silver nanoparticles inhibit the gill Na + / K + ATPase and erythrocyte AChE activities and induce the stress response in adult zebrafish ( Danio rerio) J Ecotoxicology and Environmental Safety,2014 ,106 : 17
2、3180 40 BOULDIN J L,INGLE T M,SENGUPTA A,et al Aqueous toxicity and food chain transfer of Quantum DOTs in freshwater algae and Ceriodaphnia dubiaJ Environmental Toxicology and Chemistry, 2008 , 27 ( 9 ) : 19581963 41 ZHAO C M,WANG W X Biokinetic uptake and efflux of silver nanoparticles in Daphnia
3、magnaJ Environmental Science Technology, 2010 , 44 ( 19 ) : 76997704 42 CAMPOS B,IVETTI C,OSENKANZ P,et al Effects of nanoparticles of TiO2 on food depletion and lifehistory responses of Daphnia magnaJ Aquatic Toxicology,2013 ,130 /131 : 174183 43 LI M,CZYMMEK K J,HUANG C P esponses of Ceriodaphnia
4、dubia to TiO2 and Al2 O3 nanoparticles: a dynamic nanotoxicity assessment of energy budget distributionJ Journal of Hazardours Materials, 2011 , 187 ( 1 /2 /3 ) : 502508 44 BUFFET P E ,PAN J F,POIIE L,et al Biochemical and behavioural responses of the endobenthic bivalve Scrobicularia plana to silve
5、r nanoparticles in seawater and microalgal foodJ Ecotoxicology and Environmental Safety, 2013 , 89 : 117124 45 JACKSON B P,BUGGE D,ANVILLE J F,et al Bioavailability,toxicity,and bioaccumulation of quantum dot nanoparticles to the amphipod Leptocheirus plumulosusJ Environmental Science Technology, 20
6、12 , 46 ( 10 ) : 55505556 46 JAVIS T A,MILLE J,LENIHAN H S,et al Toxicity of ZnO nanoparticles to the copepod Acartia tonsa,exposed through a phytoplankton dietJ Environmental Toxicology and Chemistry, 2013 , 32 ( 6 ) : 12641269 47 JUDY J D,UNINE J M,BETSCH P M Evidence for biomagnification of gold
7、nanoparticles within a terrestrial food chainJ Environmental Science Technology, 2011 , 45 ( 2 ) : 776781 48 DOION K,PELLETIE E,LEMACHAND K Impact of polymercoated silver nanoparticles on marine microbial communities: a microcosm studyJ Aquatic Toxicology,2012 ,124 /125 : 2227 49 PAKASHI S,DALAI S,I
8、TIKA,et al A temporal study on fate of Al 2 O3 nanoparticles in a fresh water microcosm at environmentally relevant low concentrationsJ Ecotoxicology and Environmental Safety, 2012 , 84 : 7077 50 BADFOD A,HANDY D,EADMAN J W,et al Impact of silver nanoparticle contamination on the genetic diversity o
9、f natural bacterial assemblages in estuarine sedimentsJ Environmental Science Technology, 2009 , 43 ( 12 ) : 45304536 51 KULACKI K J,CADINALE B J,KELLE A A,et al How do stream organisms respond to,and influence,the concentration of titanium dioxide nanoparticles? A mesocosm study with algae and herb
10、ivoresJ Environmental Toxicology and Chemistry,2012 , 31 ( 10 ) : 24142422 52 COLMAN B P,WANG S Y,AUFFAN M,et al Antimicrobial effects of commercial silver nanoparticles are attenuated in natural streamwater and sediment J Ecotoxicology,2012 ,21 ( 7 ) : 18671877 53 COLMAN B P,ANAOUT C L,ANCIAUX S,et
11、 al Low concentrations of silver nanoparticles in biosolids cause adverse ecosystem responses under realistic field scenario J PLoS One, 2013 , 8 ( 2 ) : e57189 , 110 54 FENK S,BENMOSHE T, DO I, et al Effect of metal oxide nanoparticles on microbial community structure and function in two different
12、soil types J PLoS One, 2013 , 8 ( 12 ) : e84441 , 112 55 PADHAN A,SEENA S,PASCOAL C,et al Can metal nanoparticles be a threat to microbial decomposers of plant litter in streams? J Microbial Ecology, 2011 , 62 ( 1 ) : 5868 56 KUMA N P G,SHAH V,WALKE V K The effect of silver nanoparticles on seasonal
13、 change in arctic tundra bacterial and fungal assemblages J PloS One, 2014 , 9 ( 6 ) : e99953 , 112 57 KUMA N,OMOEGIE E O,OSE J,et al Inhibition of sulfate reducing bacteria in aquifer sediment by iron nanoparticles J Water esearch, 2014 , 51 : 6472 58 QIU Z,YU Y,CHEN Z,et al Nanoalumina promotes th
14、e horizontal transfer of multiresistance genes mediated by plasmids across genera J Proceedings of the National Academy of Sciences of the United States of America, 2012 , 109 ( 13 ) : 49444949 59 MOHANTY A,KATHAWALA M H,ZHANG J,et al Biogenic tellurium nanorods as a novel antivirulence agent inhibi
15、ting pyoverdine production in Pseudomonas aeruginosaJ Biotechnol Bioeng, 2014 , 111 ( 5 ) : 858865 60 BAUN A,SENSEN S N,ASMUSSEN F,et al Toxicity and bioaccumulation of xenobiotic organic compounds in the presence of aqueous suspensions of aggregates of nanoC 60 J Aquatic Toxicology, 2008 , 86 : 379
16、387 61 SU Y,YAN X,PU Y,et al isks of singlewalled carbon nanotubes acting as contaminantscarriers: potential release of phenanthrene in Japanese medaka ( Oryzias latipes) J Environmental Science Technology, 2013 , 47 ( 9 ) : 47044710 62 CHEN Q,YIN D,HU X,et al The effect of nC60 on tissue distributi
17、on of ibuprofen in Cyprinus carpioJ Science of the Total Environment, 2014 , 496 : 453460 63 QU ,WANG X,WANG Z,et al Metal accumulation and antioxidant defenses in the freshwater fish Carassius auratus in response to single and combined exposure to cadmium and hydroxylated multiwalled carbon nanotub
18、esJ Journal of Hazardous Materials, 2014 , 275 : 8998 64 LAMMEL T,BOISSEAUX P,NAVAS J M Potentiating effect of graphene nanomaterials on aromatic environmental pollutantinduced cytochrome P450 1A expression in the topminnow fish hepatoma cell line PLHC1J Environmental Toxicology,2015 ,30 ( 10 ) : 11
19、921204 65 TAN C,FAN W,WANG W ole of titanium dioxide nanoparticles in the elevated uptake and retention of cadmium and zinc in Daphnia magna J Environmental Science Technology,2012 , 46 ( 1 ) : 469476 66 TAN C,WANG W Modification of metal bioaccumulation and toxicity in Daphnia magna by titanium dio
20、xide nanoparticlesJ Environmental Pollution, 2014 , 186 : 3642 67 DALAI S,PAKASHI S,BHUVANESHWAI M,et al Toxic effect of Cr( VI ) in presence of nTiO2 and nAl2 O3 particles towards freshwater microalgae J Aquatic Toxicology,2014 ,146 : 2837 791 Vol 17 No 2 安 全 与 环 境 学 报 第 17 卷第 2 期 68 HATMANN N B,VO
21、N DE KAMME F,HOFMANN T,et al Algal testing of titanium dioxide nanoparticlestesting considerations,inhibitory effects and modification of cadmium bioavailability J Toxicology, 2010 , 269 ( 2 /3 ) : 190197 69 OSENFELDT ,SEITZ F,SCHULZ ,et al Heavy metal uptake and toxicity in the presence of titanium
22、 dioxide nanoparticles: a factorial approach using Daphnia magnaJ Environmental Science Technology, 2014 , 48 ( 12 ) : 69656972 70 YU Z,WANG W Interaction of functionalized fullerenes and metal accumulation in Daphnia magnaJ Environmental Toxicology and Chemistry, 2014 , 33 ( 5 ) : 11221128 71 YU Z,
23、 WANG W Influences of ambient carbon nanotubes on toxic metals accumulation in Daphnia magna J Water esearch, 2013 , 47 ( 12 ) : 41794187 production ,the behavioral alterations,mortality and the induction of biochemical defense systems have been used as indicators of the toxicity of nanomaterials to
24、 the organisms On the other hand, nanomaterials combined with other inorganic and organic pollutants in the environment can generate complex effects,for they are easily to interact with other pollutants such as the natural organic matters,heavy metals and organic micropollutants in the water It may
25、increase the toxicity of the pollutants by promoting their uptake in organisms However,they may also decrease the toxicity of the pollutants by decreasing the bioavailability of the pollutants Thus, it can be seen that, on the basis of summarizing the current research results,some aspects of the com
26、plicated ecological toxic effects of the nanomaterials remain to be further investigated and disclosed,for example,the effects of their physiochemical features on their toxicity,their chronic toxicity and interface process and complicated effect of nanomaterials with other pollutants in the surround
27、ing environment Key words: environmentalology; nanomaterial; invertebrate; vertebrate; biological effect; complex effect CLC number: X171 Document code: A Article ID: 10096094 ( 2017 ) 02078607 esearch progress review in the toxic effects of the engineering nanomaterials on the typical organisms 2 X
28、U Zhizhen1, ,ZHAO Peng1 ,ZHANG Yuanbao1 , 3 WANG Yuqian1 ,ZHANG Qunwei1, ,TANG Shichuan1 ( 1 Key Laboratory of Occupational Safety and Health,Beijing Municipal Institute of Labor Protection,Beijing 100054 ,China; 2 College of Life Science and Bioengineering,Beijing University of Technology,Beijing 1
29、00124 , China; 3 Department of Environmental and Occupational Health Sciences, School of Public Health and Information Sciences,University of Louisville,Louisville,Kentucky 40202 ,USA) Abstract: With the fast development of the nanotechnology and the wide application of nanomaterials, it is inevitab
30、le for the nanomaterials to be released into the surrounding environment, which would naturally increase the exposure of the nanomaterials to the ecosystem And,in turn,they may consequently bring their toxic damage to lots of organisms from simple ones to the complex ones It may even exhibit toxicity to the biological communities in the environme
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