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Original Article

Health surveillance study of workers who manufacture multi-walled carbon nanotubes

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Pages 802-811 | Received 31 Mar 2014, Accepted 15 Oct 2014, Published online: 14 Nov 2014

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Boowook Kim, Jae Hoon Shin, Hoi Pin Kim, Mi Seong Jo, Hee Sang Kim, Jong Sung Lee, Hong Ku Lee, Hyuk Cheol Kwon, Sung Gu Han, Noeul Kang, Mary Gulumian, Dhimiter Bello & Il Je Yu. (2022) On-Site Deployment of an Air-Liquid-Interphase Device to Assess Health Hazard Potency of Airborne Workplace Contaminants: The Case of 3-D Printers. Frontiers in Toxicology 4.
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Saniha Aysha Ajith, Omnia Mohamed, Rana Sabouni, Ghaleb Husseini, Abdollah Karami & Renu Geetha Bai. (2022) Toxicological impact of nanoparticles on human health: A review. Materials Express 12:3, pages 389-411.
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Ekaterina Mostovenko, Matthew M. Dahm, Mary K. Schubauer-Berigan, Tracy Eye, Aaron Erdely, Tamara L. Young, Matthew J. Campen & Andrew K. Ottens. (2021) Serum peptidome: diagnostic window into pathogenic processes following occupational exposure to carbon nanomaterials. Particle and Fibre Toxicology 18:1.
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Enrico Bergamaschi, Giacomo Garzaro, Georgia Wilson Jones, Martina Buglisi, Michele Caniglia, Alessandro Godono, Davide Bosio, Ivana Fenoglio & Irina Guseva Canu. (2021) Occupational Exposure to Carbon Nanotubes and Carbon Nanofibres: More Than a Cobweb. Nanomaterials 11:3, pages 745.
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Marcella Barbarino & Antonio Giordano. (2021) Assessment of the Carcinogenicity of Carbon Nanotubes in the Respiratory System. Cancers 13:6, pages 1318.
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Thomas M. Peters & Peter C. Raynor. 2001. Patty's Industrial Hygiene. Patty's Industrial Hygiene 1 21 .
Ali Kermanizadeh, Flemming R. Cassee & Wim de Jong. 2021. Nanotoxicology in Humans and the Environment. Nanotoxicology in Humans and the Environment 41 58 .
Ivo Iavicoli, Luca Fontana, Veruscka Leso, Maria Carmela Macrini & Daniela Pelclova. (2020) Fractional Exhaled Nitric Oxide and Nanomaterial Exposure in Workplaces. Current Medicinal Chemistry 27:42, pages 7200-7212.
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Mark R. Miller & Craig A. Poland. (2020) Nanotoxicology: The Need for a Human Touch?. Small 16:36, pages 2001516.
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M. Hemmendinger, P. Wild, Y. Shoman, M. Graille, E. Bergamaschi, N. Hopf & I. Guseva Canu. (2020) Reference ranges of oxidative stress biomarkers selected for non-invasive biological surveillance of nanotechnology workers: Study protocol and meta-analysis results for 8-OHdG in exhaled breath condensate. Toxicology Letters 327, pages 41-47.
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Javad GHAFARI, Nargess MOGHADASI & Soqrat OMARI SHEKAFTIK. (2020) Oxidative stress induced by occupational exposure to nanomaterials: a systematic review. Industrial Health 58:6, pages 492-502.
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Muhammad Shafique & Xiaowei Luo. (2019) Nanotechnology in Transportation Vehicles: An Overview of Its Applications, Environmental, Health and Safety Concerns. Materials 12:15, pages 2493.
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Esra Emerce, Manosij Ghosh, Deniz Öner, Radu-Corneliu Duca, Jeroen Vanoirbeek, Bram Bekaert, Peter H. M. Hoet & Lode Godderis. (2019) Carbon Nanotube- and Asbestos-Induced DNA and RNA Methylation Changes in Bronchial Epithelial Cells. Chemical Research in Toxicology 32:5, pages 850-860.
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Matthew M Dahm, Stephen Bertke & Mary K Schubauer-Berigan. (2019) Predicting Occupational Exposures to Carbon Nanotubes and Nanofibers Based on Workplace Determinants Modeling. Annals of Work Exposures and Health 63:2, pages 158-172.
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Kristen A. Russ, Janet A. Thompson, Michael Kashon, Dale W. Porter, Sherri A. Friend, Walter McKinney & Jeffrey S. Fedan. (2019) Comparison of multi-wall carbon nanotube and nitrogen-doped multi-wall carbon nanotube effects on lung function and airway reactivity in rats. Toxicology and Applied Pharmacology 364, pages 153-163.
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Kostya Kartavenka, Parinya Panuwet, Roby Greenwald, Karen M. Ehret, Priya Esilda D'Souza, Dana Boyd Barr & P. Barry Ryan. (2019) Quantification of malondialdehyde in exhaled breath condensate using pseudo two-dimensional ultra-performance liquid chromatography coupled with single quadrupole mass spectrometry. Journal of Chromatography B 1105, pages 210-216.
Crossref
Enrico Bergamaschi, Mary Gulumian, Jun Kanno & Kai Savolainen. 2019. Biomarkers in Toxicology. Biomarkers in Toxicology 735 755 .
Mary K. Schubauer-Berigan, Matthew M. Dahm, Aaron Erdely, John D. Beard, M. Eileen Birch, Douglas E. Evans, Joseph E. Fernback, Robert R. Mercer, Stephen J. Bertke, Tracy Eye & Marie A. de Perio. (2018) Association of pulmonary, cardiovascular, and hematologic metrics with carbon nanotube and nanofiber exposure among U.S. workers: a cross-sectional study. Particle and Fibre Toxicology 15:1.
Crossref
P. Schulte, V. Leso, M. Niang & I. Iavicoli. (2018) Biological monitoring of workers exposed to engineered nanomaterials. Toxicology Letters 298, pages 112-124.
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Daniela Pelclova, Vladimir Zdimal, Martin Komarc, Stepanka Vlckova, Zdenka Fenclova, Jakub Ondracek, Jaroslav Schwarz, Martin Kostejn, Petr Kacer, Stepanka Dvorackova, Alexey Popov, Pavlina Klusackova, Sergey Zakharov & Dhimiter Bello. (2018) Deep Airway Inflammation and Respiratory Disorders in Nanocomposite Workers. Nanomaterials 8:9, pages 731.
Crossref
Antonio Pietroiusti, Helene Stockmann‐Juvala, Francesca Lucaroni & Kai Savolainen. (2018) Nanomaterial exposure, toxicity, and impact on human health. WIREs Nanomedicine and Nanobiotechnology 10:5.
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John D. Beard, Aaron Erdely, Matthew M. Dahm, Marie A. de Perio, M. Eileen Birch, Douglas E. Evans, Joseph E. Fernback, Tracy Eye, Vamsi Kodali, Robert R. Mercer, Stephen J. Bertke & Mary K. Schubauer-Berigan. (2018) Carbon nanotube and nanofiber exposure and sputum and blood biomarkers of early effect among U.S. workers. Environment International 116, pages 214-228.
Crossref
Eelco Kuijpers, Anjoeka Pronk, Robert Kleemann, Jelle Vlaanderen, Qing Lan, Nathaniel Rothman, Debra Silverman, Peter Hoet, Lode Godderis & Roel Vermeulen. (2018) Cardiovascular effects among workers exposed to multiwalled carbon nanotubes. Occupational and Environmental Medicine 75:5, pages 351-358.
Crossref
Katherine S. Duke & James C. Bonner. (2017) Mechanisms of carbon nanotube‐induced pulmonary fibrosis: a physicochemical characteristic perspective. WIREs Nanomedicine and Nanobiotechnology 10:3.
Crossref
Matthew M. Dahm, Mary K. Schubauer-Berigan, Douglas E. Evans, M. Eileen Birch, Stephen Bertke, John D. Beard, Aaron Erdely, Joseph E. Fernback, Robert R. Mercer & Sergey A. Grinshpun. (2018) Exposure assessments for a cross-sectional epidemiologic study of US carbon nanotube and nanofiber workers. International Journal of Hygiene and Environmental Health 221:3, pages 429-440.
Crossref
Raymond F. HamiltonJr.Jr., Shuji Tsuruoka, Nianqiang Wu, Michael Wolfarth, Dale W Porter, Melisa Bunderson-Schelvan & Andrij Holian. (2017) Length, but Not Reactive Edges, of Cup-stack MWCNT Is Responsible for Toxicity and Acute Lung Inflammation. Toxicologic Pathology 46:1, pages 62-74.
Crossref
Braulio Cardenas-Benitez, Ivan Djordjevic, Samira Hosseini, Marc J. Madou & Sergio O. Martinez-Chapa. (2018) Review—Covalent Functionalization of Carbon Nanomaterials for Biosensor Applications: An Update. Journal of The Electrochemical Society 165:3, pages B103-B117.
Crossref
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 53 60 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 49 52 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 45 48 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 43 44 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 37 39 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 695 715 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 685 693 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 671 684 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 655 669 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 33 36 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 625 654 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 601 624 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 575 600 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 549 574 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 509 545 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 489 507 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 403 488 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 389 402 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 311 388 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 283 309 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 17 31 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 251 282 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 175 249 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 159 174 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 155 155 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 151 154 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 149 150 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 147 148 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 141 146 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 133 139 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 125 132 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 11 16 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 123 124 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 107 119 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 101 106 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 93 99 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 89 90 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 81 87 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 77 79 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 73 75 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 65 72 .
Prasanna ChandrasekharPrasanna Chandrasekhar. 2018. Conducting Polymers, Fundamentals and Applications. Conducting Polymers, Fundamentals and Applications 61 64 .
O. V. Sinitsyna, G. B. Meshkov & I. V. Yaminsky. 2018. Nanomaterials: Ecotoxicity, Safety, and Public Perception. Nanomaterials: Ecotoxicity, Safety, and Public Perception 237 252 .
Vicki Stone, Mark R. Miller, Martin J.D. Clift, Alison Elder, Nicholas L. Mills, Peter Møller, Roel P.F. Schins, Ulla Vogel, Wolfgang G. Kreyling, Keld Alstrup Jensen, Thomas A.J. Kuhlbusch, Per E. Schwarze, Peter Hoet, Antonio Pietroiusti, Andrea De Vizcaya-Ruiz, Armelle Baeza-Squiban, João Paulo Teixeira, C. Lang Tran & Flemming R. Cassee. (2017) Nanomaterials Versus Ambient Ultrafine Particles: An Opportunity to Exchange Toxicology Knowledge. Environmental Health Perspectives 125:10.
Crossref
David K. Scoville, Dianne Botta, Karen Galdanes, Stefanie C. Schmuck, Collin C. White, Patricia L. Stapleton, Theo K. Bammler, James W. MacDonald, William A. Altemeier, Michelle Hernandez, Steven R. Kleeberger, Lung‐Chi Chen, Terry Gordon & Terrance J. Kavanagh. (2017) Genetic determinants of susceptibility to silver nanoparticle‐induced acute lung inflammation in mice. The FASEB Journal 31:10, pages 4600-4611.
Crossref
Lindsey Bishop, Lorenzo Cena, Marlene Orandle, Naveena Yanamala, Matthew M. Dahm, M. Eileen Birch, Douglas E. Evans, Vamsi K. Kodali, Tracy Eye, Lori Battelli, Patti C. Zeidler-Erdely, Gary Casuccio, Kristin Bunker, Jason S. Lupoi, Traci L. Lersch, Aleksandr B. Stefaniak, Tina Sager, Aliakbar Afshari, Diane Schwegler-Berry, Sherri Friend, Jonathan Kang, Katelyn J. Siegrist, Constance A. Mitchell, David T. Lowry, Michael L. Kashon, Robert R. Mercer, Charles L. Geraci, Mary K. Schubauer-Berigan, Linda M. Sargent & Aaron Erdely. (2017) In Vivo Toxicity Assessment of Occupational Components of the Carbon Nanotube Life Cycle To Provide Context to Potential Health Effects . ACS Nano 11:9, pages 8849-8863.
Crossref
Saou-Hsing Liou, Wei-Te Wu, Hui-Yi Liao, Chao-Yu Chen, Cheng-Yen Tsai, Wei-Ting Jung & Hui-Ling Lee. (2017) Global DNA methylation and oxidative stress biomarkers in workers exposed to metal oxide nanoparticles. Journal of Hazardous Materials 331, pages 329-335.
Crossref
Daniela Pelclova, Vladimir Zdimal, Petr Kacer, Martin Komarc, Zdenka Fenclova, Stepanka Vlckova, Nadezda Zikova, Jaroslav Schwarz, Otakar Makes, Tomas Navratil, Sergey Zakharov & Dhimiter Bello. (2017) Markers of lipid oxidative damage among office workers exposed intermittently to air pollutants including nanoTiO2 particles. Reviews on Environmental Health 32:1-2, pages 193-200.
Crossref
Serge Kouassi, Cyril Catto, Claude Ostiguy, Gilles L’Espérance, Jens Kroeger & Maximilien Debia. (2017) Exposure Assessment in a Single-Walled Carbon Nanotube Primary Manufacturer. Annals of Work Exposures and Health 61:2, pages 260-266.
Crossref
Enrico Bergamaschi, Irina Guseva Canu, Adriele Prina-Mello & Andrea Magrini. 2017. Adverse Effects of Engineered Nanomaterials. Adverse Effects of Engineered Nanomaterials 125 158 .
Maximilien Debia, Bouchra Bakhiyi, Claude Ostiguy, Jos H. Verbeek, Derk H. Brouwer & Vladimir Murashov. (2016) A Systematic Review of Reported Exposure to Engineered Nanomaterials. Annals of Occupational Hygiene 60:8, pages 916-935.
Crossref
Megan M. Cartwright, Stefanie C. Schmuck, Charlie Corredor, Bingbing Wang, David K. Scoville, Claire R. Chisholm, Hui-Wen Wilkerson, Zahra Afsharinejad, Theodor K. Bammler, Jonathan D. Posner, Vaithiyalingam Shutthanandan, Donald R. Baer, Somenath Mitra, William A. Altemeier & Terrance J. Kavanagh. (2016) The pulmonary inflammatory response to multiwalled carbon nanotubes is influenced by gender and glutathione synthesis. Redox Biology 9, pages 264-275.
Crossref
Aaron Erdely, Matthew M. Dahm, Mary K. Schubauer-Berigan, Bean T. Chen, James M. Antonini & Mark D. Hoover. (2016) Bridging the gap between exposure assessment and inhalation toxicology: Some insights from the carbon nanotube experience. Journal of Aerosol Science 99, pages 157-162.
Crossref
Sandra Camarero-Espinosa, Carola Endes, Silvana Mueller, Alke Petri-Fink, Barbara Rothen-Rutishauser, Christoph Weder, Martin Clift & E. Foster. (2016) Elucidating the Potential Biological Impact of Cellulose Nanocrystals. Fibers 4:4, pages 21.
Crossref
Daniela Pelclova, Vladimir Zdimal, Petr Kacer, Zdenka Fenclova, Stepanka Vlckova, Martin Komarc, Tomas Navratil, Jaroslav Schwarz, Nadezda Zikova, Otakar Makes, Kamila Syslova, Jaroslav Belacek & Sergey Zakharov. (2016) Leukotrienes in exhaled breath condensate and fractional exhaled nitric oxide in workers exposed to TiO 2 nanoparticles . Journal of Breath Research 10:3, pages 036004.
Crossref
Yke Jildouw Arnoldussen, Kristine Haugen Anmarkrud, Vidar Skaug, Ron N. Apte, Aage Haugen & Shanbeh Zienolddiny. (2016) Effects of carbon nanotubes on intercellular communication and involvement of IL-1 genes. Journal of Cell Communication and Signaling 10:2, pages 153-162.
Crossref
Liliya M. Fatkhutdinova, Timur O. Khaliullin, Olga L. Vasil'yeva, Ramil R. Zalyalov, Ilshat G. Mustafin, Elena R. Kisin, M. Eileen Birch, Naveena Yanamala & Anna A. Shvedova. (2016) Fibrosis biomarkers in workers exposed to MWCNTs. Toxicology and Applied Pharmacology 299, pages 125-131.
Crossref
Maricica Pacurari, Kristine Lowe, Paul Tchounwou & Ramzi Kafoury. (2016) A Review on the Respiratory System Toxicity of Carbon Nanoparticles. International Journal of Environmental Research and Public Health 13:3, pages 325.
Crossref
Eileen D. Kuempel & Vincent Castranova. 2016. Assessing Nanoparticle Risks to Human Health. Assessing Nanoparticle Risks to Human Health 45 82 .
M.-C. Jaurand. 2016. Nanosized Tubular Clay Minerals - Halloysite and Imogolite. Nanosized Tubular Clay Minerals - Halloysite and Imogolite 485 508 .
David K. Scoville, Collin C. White, Dianne Botta, Lisa A. McConnachie, Megan E. Zadworny, Stefanie C. Schmuck, Xiaoge Hu, Xiaohu Gao, Jianbo Yu, Russell L. Dills, Lianne Sheppard, Martha A. Delaney, William C. Griffith, Richard P. Beyer, Richard C. Zangar, Joel G. Pounds, Elaine M. Faustman & Terrance J. Kavanagh. (2015) Susceptibility to quantum dot induced lung inflammation differs widely among the Collaborative Cross founder mouse strains. Toxicology and Applied Pharmacology 289:2, pages 240-250.
Crossref
Saou-Hsing Liou, Candace S. J. Tsai, Daniela Pelclova, Mary K. Schubauer-Berigan & Paul A. Schulte. (2015) Assessing the first wave of epidemiological studies of nanomaterial workers. Journal of Nanoparticle Research 17:10.
Crossref
Sung Gu Han, Jin Kwon Kim, Jae Hoon Shin, Joo Hwan Hwang, Jong Seong Lee, Tae-Gyu Kim, Ji Hyun Lee, Gun Ho Lee, Keun Soo Kim, Heon Sang Lee, Nam Woong Song, Kangho Ahn & Il Je Yu. (2015) Pulmonary Responses of Sprague-Dawley Rats in Single Inhalation Exposure to Graphene Oxide Nanomaterials. BioMed Research International 2015, pages 1-9.
Crossref
Ji Hyun Lee, Kang Ho Ahn, Sun Man Kim, Ellen Kim, Gun Ho Lee, Jeong Hee Han & Il Je Yu. (2015) Three-Day Continuous Exposure Monitoring of CNT Manufacturing Workplaces. BioMed Research International 2015, pages 1-10.
Crossref

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