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1Academic Journal
المساهمون: Mühendislik ve Doğa Bilimleri Fakültesi -- Metalurji ve Malzeme Mühendisliği Bölümü, Bölükbaşı, Ömer Saltuk, Yola, Bahar Bankoğlu
مصطلحات موضوعية: Food safety, Molecularly imprinting, Nanocomposite, Paraoxon, Voltammetry, Food Science & Technology, Toxicology, Chemistry - Biosensors - Glucose Oxidase, Parathion Methyl, Organophosphorus Pesticides, Pesticide, Acetylcholinesterase, Electrochemical techniques, Humans, Molecular imprinting, Nanotubes, Carbon, Organophosphorus compounds, Pesticides, Water, Molybdenum disulfide nanoparticle, Monomer, Multi walled nanotube, Nanomaterial, Nanoparticle, Polymer, Pyrrole, Tap water, Unclassified drug, Carbon nanotube
وصف الملف: application/pdf
Relation: Food and Chemical Toxicology; Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı; Web of Science - Scopus - PubMed; Web of Science Core Collection - Science Citation Index Expanded; https://doi.org/10.1016/j.fct.2022.112994; https://hdl.handle.net/20.500.12508/2244; 163
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2Academic Journal
المؤلفون: Pehlivan E., Parlayici
مصطلحات موضوعية: Equilibrium and kinetics, Chitosan, Methylene blue, MWCNT, Nano-TiOsub>2/sub>, Adsorbents, Adsorption isotherms, Fourier transform infrared spectroscopy, Methyl ester, Nanoclay, Titanium dioxide, hydrogel, multi walled nanotube, Adsorption behaviour, Aqueous media, Chitosan hydrogel, Composite beads, Hydrogels composites, MWCNT's, Nano-TiO 2, TiO 2, aqueous solution, composite, dye, equilibrium, isotherm, nanoparticle, pollutant removal, reaction kinetics, wastewater treatment
Relation: Chemosphere; Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı; https://hdl.handle.net/20.500.13091/6388; https://doi.org/10.1016/j.chemosphere.2024.143244; 365; Q1
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3
المساهمون: Mühendislik ve Doğa Bilimleri Fakültesi -- Metalurji ve Malzeme Mühendisliği Bölümü, Bölükbaşı, Ömer Saltuk, Yola, Bahar Bankoğlu, HKÜ, Sağlık Bilimleri Fakültesi, Beslenme ve Diyetetik Bölümü
مصطلحات موضوعية: Organophosphorus compounds, Molecular imprinting, Unclassified drug, Organophosphate Pesticides, Electrode, Parathion Methyl, Toxicology, Pyrrole, Paraoxon, Carbon nanotube, Food safety, Nanoparticle, Molecularly imprinting, Metabolites, Humans, Tap water, Pesticides, Mos2, Polymer, Composites, Chemistry - Biosensors - Glucose Oxidase, Multi walled nanotube, Graphene Analog, Nanocomposite, Nanotubes, Carbon, Glassy-Carbon, Water, General Medicine, Molybdenum disulfide nanoparticle, Nanomaterial, Pesticide, Monomer, Organophosphorus Pesticides, Food Science & Technology, Organophosphorus compound, Acetylcholinesterase, Nanoparticles, Voltammetry, Carbon Nanotubes, Electrochemical techniques, Food Science
وصف الملف: application/pdf
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4
المؤلفون: Chenyang Xiang, Weisheng Guo, Yuxuan Zhang, Xing-Jie Liang
المصدر: Acta Pharmaceutica Sinica B, Vol 10, Iss 2, Pp 239-248 (2020)
Acta Pharmaceutica Sinica. Bمصطلحات موضوعية: hNSCs, human neural stem cells, PEG - Polyethylene glycol, MPO, myeloperoxidase, Review, PD, Parkinson's disease, law.invention, SWCNTP, single-walled nanotube paper, Disease therapy, 0302 clinical medicine, law, NSCs, neural stem cells, Medicine, HD, Huntington's disease, General Pharmacology, Toxicology and Pharmaceutics, BBB, blood–brain barrier, MWCNTTs, multi-walled nanotube towers, PEG, polyethylene-glycol, 0303 health sciences, aSWCNTs, aggregated SWCNTs, ALS, amyotrophic lateral sclerosis, CNT-N, nitrogen-doped carbon nanotubes, NHS, N-hydroxysuccinimide, MWCNTs, multi-walled carbon nanotubes, 030220 oncology & carcinogenesis, Drug delivery, PBEC, porcine brain endothelial cells, Nanomedicine, DTPA, diethylentriaminepentaacetic, AD, Alzheimer's disease, ND, nanodiamond, Therapeutic drug, PET, position emission tomography, POCs, polycyclic organic compounds, Carbon nanotubes, PMo11V, tetrabutylammonium salt of phosphovanadomolybdate, METH, methamphetamine, Nanotechnology, Carbon nanotube, CNS, central nervous system, EBs, embryoid bodies, EDC·HCl, 1-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride, 03 medical and health sciences, TLR9, the toll-like receptor-9, Inherent medication, MCAO, middle cerebral artery occlusion, GO, graphene oxide, 030304 developmental biology, Toxicity, TMZ, temozolomide, PD - Parkinson's disease, business.industry, PPy/SWCNT, polypyrrole/single-walled carbon nanotube, lcsh:RM1-950, Nervous system diseases, PCL, polycaprolactone, CNTs, carbon nanotubes, SWCNTs, single-walled carbon nanotubes, lcsh:Therapeutics. Pharmacology, Neuronal circuits, siRNA, small interfering RNA, NR, nanorod, f-CNTs, functionalized carbon nanotubes, business, RES, reticuloendothelial system, CpG, oligodeoxynucleotides, Potential toxicity
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5
المؤلفون: O. I. Savina, Alexander V. Savin
المصدر: Physics of the Solid State. 61:2241-2248
مصطلحات موضوعية: 010302 applied physics, Nanotube, Materials science, Bistability, Condensed matter physics, Plane (geometry), Carbon nanotube, Substrate (electronics), Condensed Matter::Mesoscopic Systems and Quantum Hall Effect, Condensed Matter Physics, 01 natural sciences, Electronic, Optical and Magnetic Materials, law.invention, Condensed Matter::Materials Science, Energy profile, law, 0103 physical sciences, 010306 general physics, Stationary state, Multi-Walled Nanotube
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6Academic Journal
مصطلحات موضوعية: Biosensor, DJ-1, MWCNT, Neurodegeneration, Parkinson's disease, Biosensors, Brain, Charge transfer, Cyclic voltammetry, Electrochemical electrodes, Electrochemical impedance spectroscopy, Gold nanoparticles, Multiwalled carbon nanotubes (MWCN), Nanocomposites, Neurodegenerative diseases, Plastic bottles, Proteins, Tin oxides, Analytical studies, Cerebro spinal fluids, Charge transfer resistance, Limit of detection, Mitochondrial dysfunction, Selective determination, Standard addition method, Cerebrospinal fluid, gold nanoparticle, indium tin oxide, multi walled nanotube, nanocomposite
Relation: Bioelectrochemistry; Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı; https://doi.org/10.1016/j.bioelechem.2020.107734; https://hdl.handle.net/20.500.11776/5113; 138; WOS:000656695600007; 2-s2.0-85099020205
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7Academic Journal
المؤلفون: Yola, M.L., Eren, T., Atar, Necip
مصطلحات موضوعية: Fe@Au nanoparticles, Cefexime, Human plasma, Molecularly imprinting, Multi-walled carbon nanotubes, Validation, Biosensors, Cyclic voltammetry, Infrared spectroscopy, Multiwalled carbon nanotubes (MWCN), Nanoparticles, Photoelectrons, Plasma (human), Polymer membrane electrodes, Self assembly, X ray photoelectron spectroscopy, Au nanoparticle, Human plasmas, Gold, beta lactam antibiotic, buffer, molecular stability, gold nanoparticle, iron, mercaptamine, multi walled nanotube, phosphate, pyrrole, unclassified drug, carbon nanotube
Relation: Biosensors and Bioelectronics; Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı; https://hdl.handle.net/11499/7354; https://doi.org/10.1016/j.bios.2014.04.045; 60; 277; 285; WOS:000337863900040
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8Academic Journal
المؤلفون: Saeb, M.R., Bakhshandeh, E., Khonakdar, H.A., Mäder, E., Scheffler, C., Heinrich, G.
مصطلحات موضوعية: epoxy nanocomposite, epoxy resin, ethylene oxide, multi walled nanotube, nanocomposite, unclassified drug, carbon nanotube, addition reaction, amidation, article, carboxylation, differential scanning calorimetry, dispersion, etherification, kinetics, nucleophilicity, quantitative study, reaction analysis, ring opening, surface property, vitrification, chemistry, review, Nanotubes, Carbon
Time: 620
وصف الملف: application/pdf
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9
المؤلفون: Pradipta Roy, Debarati Dey, Debashis De
المصدر: ISDCS
مصطلحات موضوعية: Condensed Matter::Materials Science, Nanotube, Materials science, Chemical physics, Electrode, Doping, technology, industry, and agriculture, Conductance, Heterojunction, Density functional theory, Conductivity, Condensed Matter::Mesoscopic Systems and Quantum Hall Effect, Multi-Walled Nanotube
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10
المؤلفون: Shichuan Song, Shanshan Guan, Guangshuai Mo, Laina Guo, Hai Li, Shugao Zhao
المصدر: Materials Letters. 216:281-286
مصطلحات موضوعية: Permittivity, chemistry.chemical_classification, Nanotube, Materials science, Nanocomposite, Polydimethylsiloxane, Mechanical Engineering, Percolation threshold, 02 engineering and technology, Polymer, 010402 general chemistry, 021001 nanoscience & nanotechnology, Condensed Matter Physics, 01 natural sciences, 0104 chemical sciences, Hildebrand solubility parameter, chemistry.chemical_compound, Chemical engineering, chemistry, Mechanics of Materials, General Materials Science, 0210 nano-technology, Multi-Walled Nanotube
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11Academic Journal
المساهمون: Universidade Estadual Paulista (UNESP)
مصطلحات موضوعية: Analytical techniques, Pharmaceutical analysis, Pharmaceutical quality control, camptothecin, chlordiazepoxide, chlorzoxazone, clonazepam, diazepam, diltiazem, doxepin, drug, flunarizine, fluphenazine, hydrochlorothiazide, hydroxyzine, ibuprofen, indapamide, irinotecan, lamotrigine, lumiracoxib, multi walled nanotube, nicardipine, nitrazepam, nordazepam, perazine, pregabalin, promazine, rosiglitazone, stavudine, topotecan
وصف الملف: 316-338
Relation: WSEAS Transactions on Biology and Biomedicine; 0,104; http://www.wseas.us/e-library/transactions/biology/2010/53-259.pdf; WSEAS Transactions on Biology and Biomedicine, v. 7, n. 4, p. 316-338, 2010.; http://hdl.handle.net/11449/71921; 2-s2.0-84856349963
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12Academic Journal
المؤلفون: Fatemi F., Abdollahi M.R., Mirzaie-asl A., Dastan D., Papadopoulou K.
المصدر: Pharmaceutical Biology ; https://www.scopus.com/inward/record.uri?eid=2-s2.0-85083023312&doi=10.1080%2f13880209.2020.1743324&partnerID=40&md5=a47e574a4ebd5370686bf0d1f2cc9436
مصطلحات موضوعية: ascorbate peroxidase, catalase, guaiacol peroxidase, jasmonic acid methyl ester, multi walled nanotube, plant extract, rosmarinic acid, salicylic acid, Satureja khuzistanica extract, unclassified drug, acetic acid, antifungal agent, antioxidant, carbon nanotube, cinnamic acid derivative, cyclopentane derivative, depside, oxylipin, peroxidase, phytochemical, phytohormone, antifungal activity, antioxidant activity, antioxidant assay, Article, beta carotene bleaching assay, callus (plant), conidium, controlled study, DPPH radical scavenging assay
Relation: http://hdl.handle.net/11615/71498
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13Academic Journal
المؤلفون: Hiroshi Hamana, Kazuyuki Sugita, Kieko Harada, Kiyomi Matsuda, Masahiro Nakada, Shigeru Takahara, Tetsuyuki Taniai
المصدر: Journal of Photopolymer Science and Technology. 2009, 22(3):347
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14Academic Journal
المؤلفون: Hiroshi Hamana, Kazuyuki Sugita, Kieko Harada, Kiyomi Matsuda, Masahiro Nakada, Masaki Okada, Shigeru Tkahara, Toshihiko Hiaki, Yohko Hanzawa
المصدر: Journal of Photopolymer Science and Technology. 2011, 24(4):379
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15Academic Journal
المؤلفون: Katsuyoshi Hoshino, Kazuki Sugita, Kieko Harada, Kiyomi Matsuda, Masahiro Nakada, Shigeru Takahara
المصدر: Journal of Photopolymer Science and Technology. 2010, 23(1):137
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16
المؤلفون: In-taek Han, Shinje Cho, Sang-Eui Lee, Yoonchul Sohn, Ha-Jin Kim
المصدر: RSC Advances. 6:48120-48128
مصطلحات موضوعية: Nanotube, education.field_of_study, Materials science, General Chemical Engineering, Composite number, Thermal decomposition, Population, 02 engineering and technology, General Chemistry, 010402 general chemistry, 021001 nanoscience & nanotechnology, 01 natural sciences, 0104 chemical sciences, chemistry.chemical_compound, Silicone, chemistry, Composite material, 0210 nano-technology, Dispersion (chemistry), education, Electrical conductor, Multi-Walled Nanotube
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17
المساهمون: Orduz García, Carlos Eduardo, Ávila Bernal, Alba Graciela, Briceno-Ayala, Leonardo
المصدر: ISO/TS 27687:2008(en), Nanotechnologies — Terminology and definitions for nano-objects — Nanoparticle, nanofibre and nanoplate [Internet]. [citado 4 de noviembre de 2018]. Disponible en: https://www.iso.org/obp/ui/#iso:std:iso:ts:27687:ed-1:v2:en
NIOSH U. NIOSH current intelligence bulletin 65: occupational exposure to carbon nanotubes and nanofibers. 2013.
Singh S, Nalwa HS. Nanotechnology and health safety–toxicity and risk assessments of nanostructured materials on human health. Journal of nanoscience and nanotechnology. 2007;7(9):3048-70.
Bakand S, Hayes A, Dechsakulthorn F. Nanoparticles: a review of particle toxicology following inhalation exposure. Inhalation toxicology. 2012;24(2):125-35.
Madl AK, Plummer LE, Carosino C, Pinkerton KE. Nanoparticles, Lung Injury, and the Role of Oxidant Stress. En: Julius D, editor. Annual Review of Physiology, Vol 76. 2014. p. 447-65.
Mirshafa A, Nazari M, Jahani D, Shaki F. Size-dependent neurotoxicity of aluminum oxide particles: a comparison between nano-and micrometer size on the basis of mitochondrial oxidative damage. Biological trace element research. 2018;1-9.
Warheit DB, Webb TR, Colvin VL, Reed KL, Sayes CM. Pulmonary bioassay studies with nanoscale and fine-quartz particles in rats: toxicity is not dependent upon particle size but on surface characteristics. Toxicological sciences. 2006;95(1):270-80.
Baroli B, Ennas MG, Loffredo F, Isola M, Pinna R, López-Quintela MA. Penetration of metallic nanoparticles in human full-thickness skin. Journal of Investigative Dermatology. 2007;127(7):1701-12.
Mortensen LJ, Oberdörster G, Pentland AP, DeLouise LA. In vivo skin penetration of quantum dot nanoparticles in the murine model: the effect of UVR. Nano letters. 2008;8(9):2779-87.
Lu W, Senapati D, Wang S, Tovmachenko O, Yu H, Ray P. Shape dependent cellular uptake and toxic effects of silver nanomaterials on human skin HaCaT keratinocytes. J Am Chem Soc. 2009.
Zhang L, Monteiro-Riviere N. Assessment of quantum dot penetration into intact, tape-stripped, abraded and flexed rat skin. Skin pharmacology and physiology. 2008;21(3):166-80.
Pauluhn J. Multi-walled carbon nanotubes (Baytubes): approach for derivation of occupational exposure limit. Regul Toxicol Pharmacol. junio de 2010;57(1):78-89.
Zhao Y, Nalwa HS. Nanotoxicology: interactions of nanomaterials with biological systems. Vol. 19. American Scientific Publishers; 2007.
Sharma HS, Sharma A. Nanoparticles aggravate heat stress induced cognitive deficits, blood–brain barrier disruption, edema formation and brain pathology. Progress in brain research. 2007;162:245-73.
Hodson L, Hull M. Building a safety program to protect the nanotechnology workforce: a guide for small to medium-sized enterprises. 2016.
Foladori G, Bejarano F, Invernizzi N. Nanotecnología&58; gestión y reglamentación de riesgos para la salud y medio ambiente en América Latina y el Caribe Nanotechnology&58; risk management and regulation for health and environment in Latin America and in the Caribbean. Trabalho. 2013;11(1):145-67.
Hodson L. Protecting the nanotechnology workforce: NIOSH nanotechnology research and guidance strategic plan, 2013–2016. 2013.
Schulte P, Geraci C, Murashov V, Kuempel E, Zumwalde R, Castranova V, et al. Occupational safety and health criteria for responsible development of nanotechnology. Journal of Nanoparticle Research. 2014;16(1):2153.
Kuempel ED. Carbon nanotube risk assessment: implications for exposure and medical monitoring. J Occup Environ Med. junio de 2011;53(6 Suppl):S91-97.
Dong J, Ma Q. Myofibroblasts and lung fibrosis induced by carbon nanotube exposure. Particle and Fibre Toxicology [Internet]. diciembre de 2016 [citado 27 de mayo de 2018];13(1). Disponible en: http://particleandfibretoxicology.biomedcentral.com/articles/10.1186/s12989-016-0172-2.
Sharma M, Nikota J, Halappanavar S, Castranova V, Rothen-Rutishauser B, Clippinger AJ. Predicting pulmonary fibrosis in humans after exposure to multi-walled carbon nanotubes (MWCNTs). Archives of Toxicology. julio de 2016;90(7):1605-22.
Vietti G, Lison D, van den Brule S. Mechanisms of lung fibrosis induced by carbon nanotubes: towards an Adverse Outcome Pathway (AOP). Part Fibre Toxicol. 29 de febrero de 2016;13:11.
Ley B, Collard HR. Epidemiology of idiopathic pulmonary fibrosis. Clinical epidemiology. 2013;5:483.
Harari S, Madotto F, Caminati A, Conti S, Cesana G. Epidemiology of idiopathic pulmonary fibrosis in Northern Italy. PLoS One. 2016;11(2):e0147072.
Barreto-Rodríguez JO, Mejía ME, Buendía-Roldán I. Panorama actual de la fibrosis pulmonar idiopática en México. Neumología y cirugía de tórax. 2015;74(4):256-61.
Torres Villacreses MI, Calero E, Cherrez A, Calderon JC, Cherrez S, Cottin V, et al. Management Patterns And Attitudes About IPF (Idiopathic Pulmonary Fibrosis) Among Pulmonologist And General Physicians In Latin America. En: C37 NEW INSIGHTS IN THE EPIDEMIOLOGY, MANAGEMENT, AND OUTCOMES OF CYSTIC FIBROSIS, ILD, AND RESPIRATORY DISEASE. American Thoracic Society; 2017. p. A5349-A5349.
Mercer RR, Scabilloni JF, Hubbs AF, Battelli LA, McKinney W, Friend S, et al. Distribution and fibrotic response following inhalation exposure to multi-walled carbon nanotubes. Part Fibre Toxicol. 30 de julio de 2013;10:33.
Park E-J, Roh J, Kim S-N, Kang M-S, Han Y-A, Kim Y, et al. A single intratracheal instillation of single-walled carbon nanotubes induced early lung fibrosis and subchronic tissue damage in mice. Arch Toxicol. septiembre de 2011;85(9):1121-31.
Shvedova AA, Kisin ER, Murray AR, Mouithys-Mickalad A, Stadler K, Mason RP, et al. ESR evidence for in vivo formation of free radicals in tissue of mice exposed to single-walled carbon nanotubes. Free Radic Biol Med. agosto de 2014;73:154-65.
Li J, Li W, Xu J, Cai X, Liu R, Li Y, et al. Comparative study of pathological lesions induced by multiwalled carbon nanotubes in lungs of mice by intratracheal instillation and inhalation. Environmental Toxicology: An International Journal. 2007;22(4):415-21.
Sargent L, Porter D, Lowry D, Battelli L, Siegrist K, Kashon M, et al. Multiwalled carbon nanotube-induced lung tumors. Toxicologist. 2013;132:98.
Porter DW, Hubbs AF, Chen BT, McKinney W, Mercer RR, Wolfarth MG, et al. Acute pulmonary dose–responses to inhaled multi-walled carbon nanotubes. Nanotoxicology. noviembre de 2012;7(7):1179-94.
Wang X, Katwa P, Podila R, Chen P, Ke PC, Rao AM, et al. Multi-walled carbon nanotube instillation impairs pulmonary function in C57BL/6 mice. Part Fibre Toxicol. 18 de agosto de 2011;8:24.
Muller J, Huaux F, Moreau N, Misson P, Heilier J-F, Delos M, et al. Respiratory toxicity of multi-wall carbon nanotubes. Toxicology and Applied Pharmacology. 15 de septiembre de 2005;207(3):221-31.
Pauluhn J. Subchronic 13-week inhalation exposure of rats to multiwalled carbon nanotubes: toxic effects are determined by density of agglomerate structures, not fibrillar structures. Toxicological Sciences. 2009;113(1):226-42.
Osmond-McLeod MJ, Poland CA, Murphy F, Waddington L, Morris H, Hawkins SC, et al. Durability and inflammogenic impact of carbon nanotubes compared with asbestos fibres. Particle and fibre toxicology. 2011;8(1):15.
Ryman-Rasmussen JP, Tewksbury EW, Moss OR, Cesta MF, Wong BA, Bonner JC. Inhaled multiwalled carbon nanotubes potentiate airway fibrosis in murine allergic asthma. Am J Respir Cell Mol Biol. marzo de 2009;40(3):349-58.
Wick P, Manser P, Limbach LK, Dettlaff-Weglikowska U, Krumeich F, Roth S, et al. The degree and kind of agglomeration affect carbon nanotube cytotoxicity. Toxicology letters. 2007;168(2):121-31.
Oyabu T, Myojo T, Morimoto Y, Ogami A, Hirohashi M, Yamamoto M, et al. Biopersistence of inhaled MWCNT in rat lungs in a 4-week well-characterized exposure. Inhalation toxicology. 2011;23(13):784-91.
Avila A, Ocampo AM, Wootton O, Muñoz F, Vieira P. Nanotechnology and Manufactured Nanomaterials in Latin America and the Caribbean: Safety Issues: [Internet]. Universidad Los Andes; 2015. Disponible en: https://nanoseguridad.uniandes.edu.co/images/Nanotechnology_ingles_digital_012016AA.pdf.
Martínez MJR, Ganzer JR, Huertas MLC. Aplicaciones actuales y futuras de los nanotubos de carbono. Fundación Madri+ d para el Conocimiento; 2007.
Roco MC, Mirkin CA, Hersam MC. Nanotechnology research directions for societal needs in 2020: summary of international study. 2011.
Nakanishi J, Morimoto Y, Ogura I, Kobayashi N, Naya M, Ema M, et al. Risk assessment of the carbon nanotube group. Risk Analysis. 2015;35(10):1940-56.
Aschberger K, Johnston HJ, Stone V, Aitken RJ, Hankin SM, Peters SA, et al. Review of carbon nanotubes toxicity and exposure—Appraisal of human health risk assessment based on open literature. Critical reviews in toxicology. 2010;40(9):759-90.
Wang L, Mercer RR, Rojanasakul Y, Qiu A, Lu Y, Scabilloni JF, et al. Direct fibrogenic effects of dispersed single-walled carbon nanotubes on human lung fibroblasts. J Toxicol Environ Health Part A. 2010;73(5):410-22.
Ravichandran P, Baluchamy S, Gopikrishnan R, Biradar S, Ramesh V, Goornavar V, et al. Pulmonary biocompatibility assessment of inhaled single-wall and multiwall carbon nanotubes in BALB/c mice. J Biol Chem. 26 de agosto de 2011;286(34):29725-33.
Porter DW, Hubbs AF, Mercer RR, Wu N, Wolfarth MG, Sriram K, et al. Mouse pulmonary dose-and time course-responses induced by exposure to multi-walled carbon nanotubes. Toxicology. 10 de marzo de 2010;269(2/3):136-47.
Zhang Y, Deng J, Zhang Y, Guo F, Li C, Zou Z, et al. Functionalized single-walled carbon nanotubes cause reversible acute lung injury and induce fibrosis in mice. J Mol Med. enero de 2013;91(1):117-28.
Honda K, Naya M, Takehara H, Kataura H, Fujita K, Ema M. A 104-week pulmonary toxicity assessment of long and short single-wall carbon nanotubes after a single intratracheal instillation in rats. Inhalation Toxicology. 19 de septiembre de 2017;29(11):471-82.
Taylor AJ, McClure CD, Shipkowski KA, Thompson EA, Hussain S, Garantziotis S, et al. Atomic Layer Deposition Coating of Carbon Nanotubes with Aluminum Oxide Alters Pro-Fibrogenic Cytokine Expression by Human Mononuclear Phagocytes In Vitro and Reduces Lung Fibrosis in Mice In Vivo. PLOS ONE. 12 de septiembre de 2014;9(9):e106870.
Dandley EC, Taylor AJ, Duke KS, Ihrie MD, Shipkowski KA, Parsons GN, et al. Atomic layer deposition coating of carbon nanotubes with zinc oxide causes acute phase immune responses in human monocytes in vitro and in mice after pulmonary exposure. Particle and Fibre Toxicology [Internet]. diciembre de 2015 [citado 27 de mayo de 2018];13(1). Disponible en: http://particleandfibretoxicology.biomedcentral.com/articles/10.1186/s12989-016-0141-9.
Kobayashi N, Naya M, Ema M, Endoh S, Maru J, Mizuno K, et al. Biological response and morphological assessment of individually dispersed multi-wall carbon nanotubes in the lung after intratracheal instillation in rats. Toxicology. 29 de octubre de 2010;276(3):143-53.
Park E-J, Roh J, Kim SN, Kang M-S, Lee B-S, Kim Y, et al. Biological Toxicity and Inflammatory Response of Semi-Single-Walled Carbon Nanotubes. Plos One. 7 de octubre de 2011;6(10):e25892.
Frank EA, Carreira VS, Birch ME, Yadav JS. Carbon Nanotube and Asbestos Exposures Induce Overlapping but Distinct Profiles of Lung Pathology in Non-Swiss Albino CF-1 Mice. Toxicol Pathol. febrero de 2016;44(2):211-25.
Crouzier D, Follot S, Gentilhomme E, Flahaut E, Arnaud R, Dabouis V, et al. Carbon nanotubes induce inflammation but decrease the production of reactive oxygen species in lung. Toxicology. 4 de junio de 2010;272(1-3):39-45.
Ma-Hock L, Strauss V, Treumann S, Küttler K, Wohlleben W, Hofmann T, et al. Comparative inhalation toxicity of multi-wall carbon nanotubes, graphene, graphite nanoplatelets and low surface carbon black. Particle and fibre toxicology. 2013;10(1):23.
Teeguarden JG, Webb-Robertson B-J, Waters KM, Murray AR, Kisin ER, Varnum SM, et al. Comparative Proteomics and Pulmonary Toxicity of Instilled Single-Walled Carbon Nanotubes, Crocidolite Asbestos, and Ultrafine Carbon Black in Mice. Toxicological Sciences. marzo de 2011;120(1):123-35.
Roda E, Coccini T, Acerbi D, Barni S, Vaccarone R, Manzo L. Comparative pulmonary toxicity assessment of pristine and functionalized multi-walled carbon nanotubes intratracheally instilled in rats: morphohistochemical evaluations. Histol Histopathol. 2011;26(3):357-67.
Mühlfeld C, Poland CA, Duffin R, Brandenberger C, Murphy FA, Rothen-Rutishauser B, et al. Differential effects of long and short carbon nanotubes on the gas-exchange region of the mouse lung. Nanotoxicology. diciembre de 2012;6:867-79.
Wang X, Xia T, Ntim SA, Ji Z, Lin S, Meng H, et al. Dispersal state of multiwalled carbon nanotubes elicits profibrogenic cellular responses that correlate with fibrogenesis biomarkers and fibrosis in the murine lung. ACS Nano. 27 de diciembre de 2011;5(12):9772-87.
Wang L, Castranova V, Mishra A, Chen B, Mercer RR, Schwegler-Berry D, et al. Dispersion of single-walled carbon nanotubes by a natural lung surfactant for pulmonary in vitro and in vivo toxicity studies. Part Fibre Toxicol. 19 de octubre de 2010;7:31.
Manke A, Luanpitpong S, Dong C, Wang L, He X, Battelli L, et al. Effect of fiber length on carbon nanotube-induced fibrogenesis. Int J Mol Sci. 29 de abril de 2014;15(5):7444-61.
Sager TM, Wolfarth MW, Andrew M, Hubbs A, Friend S, Chen T, et al. Effect of multi-walled carbon nanotube surface modification on bioactivity in the C57BL/6 mouse model. Nanotoxicology. 2014;8(3):317-27.
Chang C-C, Tsai M-L, Huang H-C, Chen C-Y, Dai S-X. Epithelial-mesenchymal transition contributes to SWCNT-induced pulmonary fibrosis. Nanotoxicology. septiembre de 2012;6(6):600-10.
Chen T, Nie H, Gao X, Yang J, Pu J, Chen Z, et al. Epithelial-mesenchymal transition involved in pulmonary fibrosis induced by multi-walled carbon nanotubes via TGF-beta/Smad signaling pathway. Toxicol Lett. 21 de abril de 2014;226(2):150-62.
Khaliullin T, Shvedova A, Kisin E, Zalyalov R, Fatkhutdinova L. Evaluation of fibrogenic potential of industrial multi-walled carbon nanotubes in acute aspiration experiment. Bulletin of experimental biology and medicine. 2015;158(5):684-7.
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Repositorio EdocUR-U. Rosario
Universidad del Rosario
instacron:Universidad del Rosarioمصطلحات موضوعية: Nanotubos de pared múltiple, Nanotubos de carbón, Fibrosis pulmonar, Nanotubos, Lung fibrosis, Animal experiment, Enfermedades, Animales experimentación, Nanotubos de pared simple, Carbon nanotube, Multi walled nanotube, Single walled nanotube
وصف الملف: application/pdf
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18
المؤلفون: Li, Fusheng, Li, Lin, Tong, Lianpeng, Daniel, Quentin, Göthelid, Mats, Sun, Licheng
المصدر: Chemical Communications. 50(90):13948-13951
مصطلحات موضوعية: multi walled nanotube, ruthenium, water
وصف الملف: print
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19Academic Journal
المؤلفون: Wang, Xiaofeng, Hu, Weiming, Deng, Baolin, Liang, Xinhua
المصدر: Chemical and Biochemical Engineering Faculty Research & Creative Works
مصطلحات موضوعية: Alcohols, Aluminum, Atomic Layer Deposition (ALD), Carbon, Catalyst Selectivity, Catalysts, Chemical Reactors, Convergence of Numerical Methods, Deposition, Fluid Catalytic Cracking, Fluidized Beds, Hydrogenation, Monoterpenes, Multiwalled Carbon Nanotubes (MWCN), Platinum (Pt), Silica Gel, Substrates, Yarn, Citral Hydrogenation, Electronic Effects, Fluidized Bed Reactors, Nano-Structured Catalyst, Nanoparticle (NPs), Selective Hydrogenation, Unsaturated Alcohols (UA), Various Substrates, Catalyst Supports, Alcohol, Geraniol, Multi Walled Nanotube
Relation: https://scholarsmine.mst.edu/che_bioeng_facwork/536; https://doi.org/10.1007/s11051-017-3845-3
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20
المؤلفون: Woo I. Lee, Jeong U. Roh
المصدر: Advanced Materials Research. 845:868-872
مصطلحات موضوعية: Polypropylene, Nanotube, Materials science, food.ingredient, Composite number, General Engineering, engineering.material, Gelatin, chemistry.chemical_compound, food, Coating, chemistry, engineering, Direct shear test, Composite material, Layer (electronics), Multi-Walled Nanotube