Wang Y, Chou S, Zhang Z. Nanomaterials innovation[J]. Small, 2019, 15(32):1902246
|
Rezvani E, Rafferty A, McGuinness C, et al. Adverse effects of nanosilver on human health and the environment[J]. Acta Biomaterialia, 2019, 94:145-159
|
Sun T Y,Bornhöft N A, Hungerbühler K, et al. Dynamic probabilistic modeling of environmental emissions of engineered nanomaterials[J]. Environmental Science & Technology, 2016, 50(9):4701-4711
|
Leareng S K, Ubomba-Jaswa E, Musee N. Toxicity of zinc oxide and iron oxide engineered nanoparticles to Bacillus subtilis in river water systems[J]. Environmental Science:Nano, 2020, 7(1):172-185
|
Zhao J, Lin M Q, Wang Z Y, et al. Engineered nanomaterials in the environment:Are they safe?[J]. Critical Reviews in Environmental Science and Technology, 2020:1-36. doi:10.1080/10643389.2020.1764279
|
Ganguly P, Breen A, Pillai S C. Toxicity of nanomaterials:Exposure, pathways, assessment, and recent advances[J]. ACS Biomaterials Science & Engineering, 2018, 4(7):2237-2275
|
韩雪, 马晓琳, 晁韶良, 等. 纳米材料对环境抗生素抗性基因污染扩散影响的研究进展[J]. 生态毒理学报, 2019, 14(5):46-54
Han X, Ma X L, Chao S L, et al. Influence of nanomaterials on the spread of environmental antibiotic resistance genes:A review[J]. Asian Journal of Ecotoxicology, 2019, 14(5):46-54(in Chinese)
|
Wang D L, Lin Z F, Wang T, et al. Where does the toxicity of metal oxide nanoparticles come from:The nanoparticles, the ions, or a combination of both?[J]. Journal of Hazardous Materials, 2016, 308:328-334
|
Gottschalk F, Sun T Y, Nowack B. Environmental concentrations of engineered nanomaterials:Review of modeling and analytical studies[J]. Environmental Pollution, 2013, 181:287-300
|
Pérez-De-luque A. Interaction of nanomaterials with plants:What do we need for real applications in agriculture?[J]. Frontiers in Environmental Science, 2017, 5:12
|
Rifna E J, Ratish Ramanan K, Mahendran R. Emerging technology applications for improving seed germination[J]. Trends in Food Science & Technology, 2019, 86:95-108
|
Bandyopadhyay S, Plascencia-Villa G, Mukherjee A, et al. Comparative phytotoxicity of ZnO NPs, bulk ZnO, and ionic zinc onto the alfalfa plants symbiotically associated with Sinorhizobium meliloti in soil[J]. Science of the Total Environment, 2015, 515-516:60-69
|
Acharya P, Jayaprakasha G K, Crosby K M, et al. Nanoparticle-mediated seed priming improves germination, growth, yield, and quality of watermelons (Citrullus lanatus) at multi-locations in texas[J]. Scientific Reports, 2020, 10(1):5037
|
Zhang M, Gao B, Chen J J, et al. Effects of graphene on seed germination and seedling growth[J]. Journal of Nanoparticle Research, 2015, 17(2):78
|
Kumar V, Guleria P, Kumar V, et al. Gold nanoparticle exposure induces growth and yield enhancement in Arabidopsis thaliana[J]. Science of the Total Environment, 2013, 461-462:462-468
|
文双喜, 王毅力. 水培实验中不同粒径纳米TiO2对芦苇种子发芽和植株生长和生理的影响[J]. 生态毒理学报, 2017, 12(2):71-80
Wen S X, Wang Y L. Effect of nano titanium dioxide with different particle size on the seed germination and plant growth and physiology of Phragmites australis in hydroponic experiments[J]. Asian Journal of Ecotoxicology, 2017, 12(2):71-80(in Chinese)
|
Pandey K, Lahiani M H, Hicks V K, et al. Effects of carbon-based nanomaterials on seed germination, biomass accumulation and salt stress response of bioenergy crops[J]. PLoS One, 2018, 13(8):e0202274
|
Khodakovskaya M, Dervishi E, Mahmood M, et al. Carbon nanotubes are able to penetrate plant seed coat and dramatically affect seed germination and plant growth[J]. ACS Nano, 2009, 3(10):3221-3227
|
Oleszczuk P, Czech B, Kończak M, et al. Impact of ZnO and ZnS nanoparticles in sewage sludge-amended soil on bacteria, plant and invertebrates[J]. Chemosphere, 2019, 237:124359
|
Liu R Q, Zhang H Y, Lal R. Effects of stabilized nanoparticles of copper, zinc, manganese, and iron oxides in low concentrations on lettuce (Lactuca sativa) seed germination:Nanotoxicants or nanonutrients?[J]. Water, Air, & Soil Pollution, 2016, 227(1):1-14
|
Seddighinia F S, Iranbakhsh A, Oraghi Ardebili Z, et al. Seed priming with cold plasma and multi-walled carbon nanotubes modified growth, tissue differentiation, anatomy, and yield in bitter melon (Momordica charantia)[J]. Journal of Plant Growth Regulation, 2020, 39(1):87-98
|
Wang Y Y, Zhang P, Li M S, et al. Alleviation of nitrogen stress in rice (Oryza sativa) by ceria nanoparticles[J]. Environmental Science:Nano, 2020, 7(10):2930-2940
|
Ye Y, Cota-Ruiz K, Hernández-Viezcas J A, et al. Manganese nanoparticles control salinity-modulated molecular responses in Capsicum annuum L. through priming:A sustainable approach for agriculture[J]. ACS Sustainable Chemistry & Engineering, 2020, 8(3):1427-1436
|
Kim J H, Oh Y, Yoon H, et al. Iron nanoparticle-induced activation of plasma membrane H(+)-ATPase promotes stomatal opening in Arabidopsis thaliana[J]. Environmental Science & Technology, 2015, 49(2):1113-1119
|
Rizwan M, Ali S, Ali B, et al. Zinc and iron oxide nanoparticles improved the plant growth and reduced the oxidative stress and cadmium concentration in wheat[J]. Chemosphere, 2019, 214:269-277
|
Dai Y, Chen F, Yue L, et al. Uptake, transport, and transformation of CeO2 nanoparticles by strawberry and their impact on the rhizosphere bacterial community[J]. ACS Sustainable Chemistry & Engineering, 2020, 8(12):4792-4800
|
Wan J P, Wang R L, Bai H R, et al. Comparative physiological and metabolomics analysis reveals that single-walled carbon nanohorns and ZnO nanoparticles affect salt tolerance in Sophora alopecuroides[J]. Environmental Science:Nano, 2020, 7(10):2968-2981
|
Zhao D Q, Fang Z W, Tang Y H, et al. Graphene oxide as an effective soil water retention agent can confer drought stress tolerance to Paeonia ostii without toxicity[J]. Environmental Science & Technology, 2020, 54(13):8269-8279
|
Rizwan M, Ali S, Zia Ur Rehman M, et al. Alleviation of cadmium accumulation in maize (Zea mays L.) by foliar spray of zinc oxide nanoparticles and biochar to contaminated soil[J]. Environmental Pollution, 2019, 248:358-367
|
孙耀琴, 申聪聪, 葛源. 典型纳米材料的土壤微生物效应研究进展[J]. 生态毒理学报, 2016, 11(5):2-13
Sun Y Q, Shen C C, Ge Y. Review on microbiological effects of typical nanomaterials in soil ecosystem[J]. Asian Journal of Ecotoxicology, 2016, 11(5):2-13(in Chinese)
|
Guan X Y, Gao X Y, Avellan A, et al. CuO nanoparticles alter the rhizospheric bacterial community and local nitrogen cycling for wheat grown in a calcareous soil[J]. Environmental Science & Technology, 2020, 54(14):8699-8709
|
Shang H P, Ma C X, Li C Y, et al. Copper sulfide nanoparticles suppress Gibberella fujikuroi infection in rice (Oryza sativa L.) by multiple mechanisms:Contact-mortality, nutritional modulation and phytohormone regulation[J]. Environmental Science:Nano, 2020, 7(9):2632-2643
|
Xu J B, Luo X S, Wang Y L, et al. Evaluation of zinc oxide nanoparticles on lettuce (Lactuca sativa L.) growth and soil bacterial community[J]. Environmental Science and Pollution Research International, 2018, 25(6):6026-6035
|
Rico C M, Barrios A C, Tan W J, et al. Physiological and biochemical response of soil-grown barley (Hordeum vulgare L.) to cerium oxide nanoparticles[J]. Environmental Science and Pollution Research International, 2015, 22(14):10551-10558
|
Wu H H, Shabala L, Shabala S, et al. Hydroxyl radical scavenging by cerium oxide nanoparticles improves Arabidopsis salinity tolerance by enhancing leaf mesophyll potassium retention[J]. Environmental Science:Nano, 2018, 5(7):1567-1583
|
Rui M M, Ma C X, Hao Y, et al. Iron oxide nanoparticles as a potential iron fertilizer for peanut (Arachis hypogaea)[J]. Frontiers in Plant Science, 2016, 7:815
|
Adhikari T, Sarkar D, Mashayekhi H, et al. Growth and enzymatic activity of maize (Zea mays L.) plant:Solution culture test for copper dioxide nano particles[J]. Journal of Plant Nutrition, 2016, 39(1):99-115
|
Tian L Y, Zhang H L, Zhao X P, et al. CdS nanoparticles in soil induce metabolic reprogramming in broad bean (Vicia faba L.) roots and leaves[J]. Environmental Science:Nano, 2020, 7(1):93-104
|
Abdulla Abdulaziz Alshehddi L, Bokhari N. Influence of gold and silver nanoparticles on the germination and growth of Mimusops laurifolia seeds in the South-Western regions in Saudi Arabia[J]. Saudi Journal of Biological Sciences, 2020, 27(1):574-580
|
Wang L K, Sun J Z, Lin L M, et al. Silver nanoparticles regulate Arabidopsis root growth by concentration-dependent modification of reactive oxygen species accumulation and cell division[J]. Ecotoxicology and Environmental Safety, 2020, 190:110072
|
Hernández H H, Benavides-Mendoza A, Ortega-Ortiz H, et al. Cu nanoparticles in chitosan-PVA hydrogels as promoters of growth, productivity and fruit quality in tomato[J]. Emirates Journal of Food and Agriculture, 2017, 29(8):573-580
|
Rahmani N, Radjabian T, Soltani B M. Impacts of foliar exposure to multi-walled carbon nanotubes on physiological and molecular traits of Salvia verticillata L., as a medicinal plant[J]. Plant Physiology and Biochemistry, 2020, 150:27-38
|
Qiu Z G, Yu Y M, Chen Z L, et al. Nanoalumina promotes the 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):4944-4949
|
Liu X M, Tang J C, Song B R, et al. Exposure to Al2O3 nanoparticles facilitates conjugative transfer of antibiotic resistance genes from Escherichia coli to Streptomyces[J]. Nanotoxicology, 2019, 13(10):1422-1436
|
Lu J, Wang Y, Jin M, et al. Both silver ions and silver nanoparticles facilitate the horizontal transfer of plasmid-mediated antibiotic resistance genes[J]. Water Research, 2020, 169:115229
|
Han X, Lv P, Wang L G, et al. Impact of nano-TiO2 on horizontal transfer of resistance genes mediated by filamentous phage transduction[J]. Environmental Science:Nano, 2020, 7(4):1214-1224
|
Li G Y, Chen X F, Yin H L, et al. Natural sphalerite nanoparticles can accelerate horizontal transfer of plasmid-mediated antibiotic-resistance genes[J]. Environment International, 2020, 136:105497
|
Zhang Y R, Yang Z H, Xiang Y P, et al. Evolutions of antibiotic resistance genes (ARGs), class 1integron-integrase (intⅠ1) and potential hosts of ARGs during sludge anaerobic digestion with the iron nanoparticles addition[J]. Science of the Total Environment, 2020, 724:138248
|
Xiang Y P, Yang Z H, Zhang Y R, et al. Influence of nanoscale zero-valent iron and magnetite nanoparticles on anaerobic digestion performance and macrolide, aminoglycoside, β-lactam resistance genes reduction[J]. Bioresource Technology, 2019, 294:122139
|
Chen Y R, Guo X P, Feng J N, et al. Impact of ZnO nanoparticles on the antibiotic resistance genes (ARGs) in estuarine water:ARG variations and their association with the microbial community[J]. Environmental Science:Nano, 2019, 6(8):2405-2419
|
Hu X J, Yang B, Zhang W, et al. Plasmid binding to metal oxide nanoparticles inhibited lateral transfer of antibiotic resistance genes[J]. Environmental Science:Nano, 2019, 6(5):1310-1322
|
Ding C S, Pan J, Jin M, et al. Enhanced uptake of antibiotic resistance genes in the presence of nanoalumina[J]. Nanotoxicology, 2016, 10(8):1051-1060
|
Zhang Y, Gu A Z, Cen T, et al. Sub-inhibitory concentrations of heavy metals facilitate the horizontal transfer of plasmid-mediated antibiotic resistance genes in water environment[J]. Environmental Pollution, 2018, 237:74-82
|
Huang H N, Chen Y G, Yang S Y, et al. CuO and ZnO nanoparticles drive the propagation of antibiotic resistance genes during sludge anaerobic digestion:Possible role of stimulated signal transduction[J]. Environmental Science:Nano, 2019, 6(2):528-539
|
陆贤, 郭美婷, 张伟贤. 纳米零价铁对耐四环素菌耐药特性的影响[J]. 中国环境科学, 2017, 37(1):381-385
Lu X, Guo M T, Zhang W X. Influence of nanoscale zero-valent iron (nZVI) on resistance character of tetracycline resistant bacteria[J]. China Environmental Science, 2017, 37(1):381-385(in Chinese)
|
Zhang S, Wang Y, Song H L, et al. Copper nanoparticles and copper ions promote horizontal transfer of plasmid-mediated multi-antibiotic resistance genes across bacterial genera[J]. Environment International, 2019, 129:478-487
|
Wang X L, Yang F X, Zhao J, et al. Bacterial exposure to ZnO nanoparticles facilitates horizontal transfer of antibiotic resistance genes[J]. NanoImpact, 2018, 10:61-67
|
Guo M T, Zhang G S. Graphene oxide in the water environment could affect tetracycline-antibiotic resistance[J]. Chemosphere, 2017, 183:197-203
|
Zou W, Li X K, Lai Z Y, et al. Graphene oxide inhibits antibiotic uptake and antibiotic resistance gene propagation[J]. ACS Applied Materials & Interfaces, 2016, 8(48):33165-33174
|
Yu W C, Zhan S H, Shen Z Q, et al. Efficient removal mechanism for antibiotic resistance genes from aquatic environments by graphene oxide nanosheet[J]. Chemical Engineering Journal, 2017, 313:836-846
|
Dickschat J S. Quorum sensing and bacterial biofilms[J]. Natural Product Reports, 2010, 27(3):343-369
|
Ouyang K, Mortimer M, Holden P A, et al. Towards a better understanding of Pseudomonas putida biofilm formation in the presence of ZnO nanoparticles (NPs):Role of NP concentration[J]. Environment International, 2020, 137:105485
|
Yang Y, Alvarez P J J. Sublethal concentrations of silver nanoparticles stimulate biofilm development[J]. Environmental Science & Technology Letters, 2015, 2(8):221-226
|
Xiao X, Zhu W W, Liu Q Y, et al. Impairment of biofilm formation by TiO2 photocatalysis through quorum quenching[J]. Environmental Science & Technology, 2016, 50(21):11895-11902
|
Chen Y, Zhang G M, Wang H J. Enhancement of photosynthetic bacteria biomass production and wastewater treatment efficiency by zero-valent iron nanoparticles[J]. Journal of Bioscience and Bioengineering, 2020, 130(3):306-310
|
Wang C, Liu S Q, Hou J, et al. Effects of silver nanoparticles on coupled nitrification-denitrification in suspended sediments[J]. Journal of Hazardous Materials, 2020, 389:122130
|
Li Z W, Wang X J, Ma B R, et al. Long-term impacts of titanium dioxide nanoparticles (TiO2 NPs) on performance and microbial community of activated sludge[J]. Bioresource Technology, 2017, 238:361-368
|
Peng M W, Yu X L, Guan Y, et al. Underlying promotion mechanism of high concentration of silver nanoparticles on anammox process[J]. ACS Nano, 2019, 13(12):14500-14510
|
Amen T W M, Eljamal O, Khalil A M E, et al. Wastewater degradation by iron/copper nanoparticles and the microorganism growth rate[J]. Journal of Environmental Sciences, 2018, 74:19-31
|
Vaghari H, Jafarizadeh-Malmiri H, Mohammadlou M, et al. Application of magnetic nanoparticles in smart enzyme immobilization[J]. Biotechnology Letters, 2016, 38(2):223-233
|
Zhang Y F, Shen J Q. Enhancement effect of gold nanoparticles on biohydrogen production from artificial wastewater[J]. International Journal of Hydrogen Energy, 2007, 32(1):17-23
|
Beckers L, Hiligsmann S, Lambert S D, et al. Improving effect of metal and oxide nanoparticles encapsulated in porous silica on fermentative biohydrogen production by Clostridium butyricum[J]. Bioresource Technology, 2013, 133:109-117
|
Engliman N S, Abdul P M, Wu S Y, et al. Influence of iron (Ⅱ) oxide nanoparticle on biohydrogen production in thermophilic mixed fermentation[J]. International Journal of Hydrogen Energy, 2017, 42(45):27482-27493
|
Mohanraj S, Kodhaiyolii S, Rengasamy M, et al. Phytosynthesized iron oxide nanoparticles and ferrous iron on fermentative hydrogen production using Enterobacter cloacae:Evaluation and comparison of the effects[J]. International Journal of Hydrogen Energy, 2014, 39(23):11920-11929
|
Cervantes-Avilés P, Ida J, Toda T, et al. Effects and fate of TiO2 nanoparticles in the anaerobic treatment of wastewater and waste sludge[J]. Journal of Environmental Management, 2018, 222:227-233
|
Aguilar-Moreno G S, Navarro-Cerón E, Velázquez-Hernández A, et al. Enhancing methane yield of chicken litter in anaerobic digestion using magnetite nanoparticles[J]. Renewable Energy, 2020, 147:204-213
|
Ambuchi J J, Zhang Z H, Shan L L, et al. Response of anaerobic granular sludge to iron oxide nanoparticles and multi-wall carbon nanotubes during beet sugar industrial wastewater treatment[J]. Water Research, 2017, 117:87-94
|
Yang C H, Aslan H, Zhang P, et al. Carbon dots-fed Shewanella oneidensis MR-1 for bioelectricity enhancement[J]. Nature Communications, 2020, 11(1):1379
|
Kim C, Kim J R,Heo J. Enhancement of bioelectricity generation by a microbial fuel cell using Ti nanoparticle-modified carbon electrode[J]. Journal of Chemical Technology & Biotechnology, 2019, 94(5):1622-1627
|