The hazardous impact of true-to-life PET nanoplastics in Drosophila.
暂无分享,去创建一个
[1] H. El‐Seedi,et al. Environmental risk, toxicity, and biodegradation of polyethylene: a review , 2022, Environmental Science and Pollution Research.
[2] K. Krishnamurthi,et al. Mitochondrial dysfunctions elicited by solid waste leachates provide insights into mechanisms of leachates induced cell death and pathophysiological disorders. , 2022, Chemosphere.
[3] R. Marcos,et al. A new source of representative secondary PET nanoplastics. Obtention, characterization, and hazard evaluation. , 2022, Journal of hazardous materials.
[4] P. Møller,et al. Genotoxicity of Particles From Grinded Plastic Items in Caco-2 and HepG2 Cells , 2022, Frontiers in Public Health.
[5] Danlian Huang,et al. Recent advances on the transport of microplastics/nanoplastics in abiotic and biotic compartments. , 2022, Journal of hazardous materials.
[6] R. Marcos,et al. Antagonistic in vivo interaction of polystyrene nanoplastics and silver compounds. A study using Drosophila. , 2022, The Science of the total environment.
[7] Zhiping Wang,et al. Polystyrene microplastics induce mitochondrial damage in mouse GC-2 cells. , 2022, Ecotoxicology and environmental safety.
[8] June-Woo Park,et al. Long-term exposure of the Mediterranean mussels, Mytilus galloprovincialis to polyethylene terephthalate microfibers: Implication for reproductive and neurotoxic effects. , 2022, Chemosphere.
[9] A. D. Vethaak,et al. Discovery and quantification of plastic particle pollution in human blood. , 2022, Environment international.
[10] Yu-Chun Lin,et al. Drosophila Model for Studying Gut Microbiota in Behaviors and Neurodegenerative Diseases , 2022, Biomedicines.
[11] R. Meli,et al. The Pressing Issue of Micro- and Nanoplastic Contamination: Profiling the Reproductive Alterations Mediated by Oxidative Stress , 2022, Antioxidants.
[12] R. Marcos,et al. Hazard assessment of ingested polystyrene nanoplastics in Drosophila larvae , 2022, Environmental Science: Nano.
[13] H. El‐Seedi,et al. Dopamine Modulates Drosophila Gut Physiology, Providing New Insights for Future Gastrointestinal Pharmacotherapy , 2021, Biology.
[14] E. Zeng,et al. Microplastics: A review of analytical methods, occurrence and characteristics in food, and potential toxicities to biota. , 2021, The Science of the total environment.
[15] Dokyung Kim,et al. Effects of synthetic and natural microfibers on Daphnia magna-Are they dependent on microfiber type? , 2021, Aquatic toxicology.
[16] B. Kaya,et al. Genotoxic effect of microplastics and COVID-19: The hidden threat. , 2021, Chemosphere.
[17] Jie Shen,et al. Effects of PET microplastics on the physiology of Drosophila. , 2021, Chemosphere.
[18] C. Feng,et al. Nanoplastic-Induced Genotoxicity and Intestinal Damage in Freshwater Benthic Clams (Corbicula fluminea): Comparison with Microplastics. , 2021, ACS nano.
[19] E. Demir. Adverse biological effects of ingested polystyrene microplastics using Drosophila melanogaster as a model in vivo organism , 2021, Journal of toxicology and environmental health. Part A.
[20] H. Yoshida,et al. Drosophila models to study causative genes for human rare intractable neurological diseases. , 2021, Experimental cell research.
[21] M. Renzi,et al. Short-term physiological and biometrical responses of Lepidium sativum seedlings exposed to PET-made microplastics and acid rain. , 2021, Ecotoxicology and environmental safety.
[22] O. Carnevali,et al. Plasticenta: First evidence of microplastics in human placenta. , 2021, Environment international.
[23] J. Giesy,et al. Consequences of a short-term exposure to a sub lethal concentration of CdO nanoparticles on key life history traits in the fruit fly (Drosophila melanogaster). , 2020, Journal of hazardous materials.
[24] R. Marcos,et al. Novel insights into biodegradation, interaction, internalization and impacts of high-aspect-ratio TiO2 nanomaterials: A systematic in vivo study using Drosophila melanogaster. , 2020, Journal of hazardous materials.
[25] I. Nabipour,et al. Abundance, composition, and potential intake of microplastics in canned fish. , 2020, Marine pollution bulletin.
[26] A. Braeuning,et al. Micro- and nanoplastics – current state of knowledge with the focus on oral uptake and toxicity , 2020, Nanoscale advances.
[27] B. Lemos,et al. Exposure to microplastics cause gut damage, locomotor dysfunction, epigenetic silencing, and aggravate cadmium (Cd) toxicity in Drosophila. , 2020, The Science of the total environment.
[28] R. Marcos,et al. In vivo evaluation of the toxic and genotoxic effects of exposure to cobalt nanoparticles using Drosophila melanogaster , 2020 .
[29] R. Marcos,et al. Nanoplastics as a potential environmental health factor: effects of polystyrene nanoparticles on human intestinal epithelial Caco-2 cells , 2020 .
[30] H. Ren,et al. Accumulation of different shapes of microplastics initiates intestinal injury and gut microbiota dysbiosis in the gut of zebrafish. , 2019, Chemosphere.
[31] B. Liebmann,et al. Detection of Various Microplastics in Human Stool , 2019, Annals of Internal Medicine.
[32] R. Vazquez-Duhalt,et al. A novel and simple method for polyethylene terephthalate (PET) nanoparticle production , 2019, Environmental Science: Nano.
[33] Yang Song,et al. Uptake and adverse effects of polyethylene terephthalate microplastics fibers on terrestrial snails (Achatina fulica) after soil exposure. , 2019, Environmental pollution.
[34] Zhiquan Liu,et al. Age-dependent survival, stress defense, and AMPK in Daphnia pulex after short-term exposure to a polystyrene nanoplastic. , 2018, Aquatic toxicology.
[35] A. Athanassiou,et al. Laser Ablation as a Versatile Tool To Mimic Polyethylene Terephthalate Nanoplastic Pollutants: Characterization and Toxicology Assessment. , 2018, ACS nano.
[36] Zhenhua Fu,et al. Microplastic particles cause intestinal damage and other adverse effects in zebrafish Danio rerio and nematode Caenorhabditis elegans. , 2018, The Science of the total environment.
[37] Rajendra Sv. Genotoxicity: Mechanisms, Testing Guidelines and Methods , 2017 .
[38] R. Marcos,et al. Drosophila melanogaster as a suitable in vivo model to determine potential side effects of nanomaterials: A review , 2016, Journal of toxicology and environmental health. Part B, Critical reviews.
[39] R. Marcos,et al. Antioxidant and antigenotoxic properties of CeO2 NPs and cerium sulphate: Studies with Drosophila melanogaster as a promising in vivo model , 2015, Nanotoxicology.