Polyethylene terephthalate (PET) micro- and nanoplastic particles affect the mitochondrial efficiency of human brain vascular pericytes without inducing oxidative stress
暂无分享,去创建一个
G. Miquelard-Garnier | L. Mackenzie | N. Bourbia | Riddhi Sharma | Sean M. Gettings | William Timbury | Anna Dmochowska
[1] Deyou Jiang,et al. Post-translational modifications of Keap1: the state of the art , 2024, Frontiers in cell and developmental biology.
[2] Toren Finkel,et al. Mitohormesis. , 2023, Cell metabolism.
[3] Mianqi Xue,et al. Detection of Various Microplastics in Patients Undergoing Cardiac Surgery. , 2023, Environmental science & technology.
[4] Yusong Li,et al. Assessing the Release of Microplastics and Nanoplastics from Plastic Containers and Reusable Food Pouches: Implications for Human Health. , 2023, Environmental science & technology.
[5] L. Kenner,et al. Micro- and Nanoplastics Breach the Blood–Brain Barrier (BBB): Biomolecular Corona’s Role Revealed , 2023, Nanomaterials.
[6] Gareth Hazell,et al. In vitro study of ochratoxin A in the expression of genes associated with neuron survival and viability. , 2022, Toxicology.
[7] O. Carnevali,et al. Raman Microspectroscopy Detection and Characterisation of Microplastics in Human Breastmilk , 2022, Polymers.
[8] L. Schurgers,et al. Ageing - Oxidative stress, PTMs and disease. , 2022, Molecular aspects of medicine.
[9] T. Salthammer. Microplastics and their Additives in the Indoor Environment , 2022, Angewandte Chemie.
[10] T. Shutt,et al. The Role of Impaired Mitochondrial Dynamics in MFN2-Mediated Pathology , 2022, Frontiers in Cell and Developmental Biology.
[11] Jianwei Cui,et al. Notch3 regulates ferroptosis via ROS‐induced lipid peroxidation in NSCLC cells , 2022, FEBS open bio.
[12] Laura R. Sadofsky,et al. Detection of microplastics in human lung tissue using μFTIR spectroscopy. , 2022, The Science of the total environment.
[13] A. D. Vethaak,et al. Discovery and quantification of plastic particle pollution in human blood. , 2022, Environment international.
[14] A. Braeuning,et al. Microplastics and nanoplastics: Size, surface and dispersant - What causes the effect? , 2022, Toxicology in vitro : an international journal published in association with BIBRA.
[15] R. A. Bhat,et al. Microplastics from food packaging: An overview of human consumption, health threats, and alternative solutions , 2021, Environmental Nanotechnology, Monitoring & Management.
[16] Yunfei Xie,et al. Microplastics and Nanoplastics: Emerging Contaminants in Food. , 2021, Journal of agricultural and food chemistry.
[17] B. Forsberg,et al. Annual dementia incidence and monetary burden attributable to fine particulate matter (PM2.5) exposure in Sweden , 2021, Environmental Health.
[18] Jian-Hui Xiao,et al. The Keap1-Nrf2 System: A Mediator between Oxidative Stress and Aging , 2021, Oxidative medicine and cellular longevity.
[19] O. Carnevali,et al. Plasticenta: First evidence of microplastics in human placenta. , 2021, Environment international.
[20] J. Rocklöv,et al. Human Health and Ocean Pollution , 2020, Annals of global health.
[21] E. Eleutherio,et al. SOD1, more than just an antioxidant. , 2020, Archives of biochemistry and biophysics.
[22] Bin Zhang,et al. Research progress of nanoplastics in freshwater. , 2020, The Science of the total environment.
[23] Linna Lu,et al. Novel insights on targeting ferroptosis in cancer therapy , 2020, Biomarker research.
[24] Lingxin Chen,et al. Realistic polyethylene terephthalate nanoplastics and the size- and surface coating-dependent toxicological impacts on zebrafish embryos , 2020, Environmental Science: Nano.
[25] R. Westerink,et al. The plastic brain: neurotoxicity of micro- and nanoplastics , 2020, Particle and Fibre Toxicology.
[26] G. Wang,et al. Ferroptosis: past, present and future , 2020, Cell Death & Disease.
[27] Jaeil Ahn,et al. Prostate Cancer Incidence in U.S. Counties and Low Levels of Arsenic in Drinking Water , 2020, International journal of environmental research and public health.
[28] U. Lendahl,et al. Emerging links between cerebrovascular and neurodegenerative diseases—a special role for pericytes , 2019, EMBO reports.
[29] D. Lee,et al. Mitochondrial Toxins and Healthy Lifestyle Meet at the Crossroad of Hormesis , 2019, Diabetes & metabolism journal.
[30] G. Krasnov,et al. ROS Generation and Antioxidant Defense Systems in Normal and Malignant Cells , 2019, Oxidative medicine and cellular longevity.
[31] V. Popov,et al. Regulation of Mitochondrial Biogenesis as a Way for Active Longevity: Interaction Between the Nrf2 and PGC-1α Signaling Pathways , 2019, Front. Genet..
[32] J. Mancias,et al. NCOA4-Mediated Ferritinophagy: A Potential Link to Neurodegeneration , 2019, Front. Neurosci..
[33] D. Long,et al. HIF-1α protects against oxidative stress by directly targeting mitochondria , 2019, Redox biology.
[34] Anja Verschoor,et al. Are We Speaking the Same Language? Recommendations for a Definition and Categorization Framework for Plastic Debris. , 2019, Environmental science & technology.
[35] Miguel Oliveira,et al. Studies of the effects of microplastics on aquatic organisms: What do we know and where should we focus our efforts in the future? , 2018, The Science of the total environment.
[36] Kuan-Hung Cho,et al. Chronic pulmonary exposure to traffic-related fine particulate matter causes brain impairment in adult rats , 2018, Particle and Fibre Toxicology.
[37] G. Shadel,et al. Mitohormesis in Mice via Sustained Basal Activation of Mitochondrial and Antioxidant Signaling. , 2018, Cell metabolism.
[38] B. Xie,et al. Polystyrene (nano)microplastics cause size-dependent neurotoxicity, oxidative damage and other adverse effects in Caenorhabditis elegans , 2018 .
[39] Yan-xin Wang,et al. Preparation of Hybrid Nanoparticle Nucleating Agents and Their Effects on the Crystallization Behavior of Poly(ethylene terephthalate) , 2018, Materials.
[40] Duk-Hee Lee,et al. Evolutionarily adapted hormesis-inducing stressors can be a practical solution to mitigate harmful effects of chronic exposure to low dose chemical mixtures. , 2018, Environmental pollution.
[41] H. Hollert,et al. Enhanced uptake of BPA in the presence of nanoplastics can lead to neurotoxic effects in adult zebrafish. , 2017, The Science of the total environment.
[42] P. Oliveira,et al. Extracellular acidification induces ROS- and mPTP-mediated death in HEK293 cells , 2017, Redox biology.
[43] D. Barceló,et al. Cytotoxic effects of commonly used nanomaterials and microplastics on cerebral and epithelial human cells , 2017, Environmental research.
[44] L. Hansson,et al. Brain damage and behavioural disorders in fish induced by plastic nanoparticles delivered through the food chain , 2017, Scientific Reports.
[45] P. Reddy,et al. Mitochondria-targeted molecules MitoQ and SS31 reduce mutant huntingtin-induced mitochondrial toxicity and synaptic damage in Huntington's disease. , 2016, Human molecular genetics.
[46] B. Zlokovic,et al. Accelerated pericyte degeneration and blood–brain barrier breakdown in apolipoprotein E4 carriers with Alzheimer’s disease , 2016, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[47] M. Chin-Chan,et al. Environmental pollutants as risk factors for neurodegenerative disorders: Alzheimer and Parkinson diseases , 2015, Front. Cell. Neurosci..
[48] E. Madarász,et al. Uptake and bio-reactivity of polystyrene nanoparticles is affected by surface modifications, ageing and LPS adsorption: in vitro studies on neural tissue cells. , 2015, Nanoscale.
[49] H. McBride,et al. A new pathway for mitochondrial quality control: mitochondrial‐derived vesicles , 2014, The EMBO journal.
[50] B. Zlokovic,et al. The Pericyte: A Forgotten Cell Type with Important Implications for Alzheimer's Disease? , 2014, Brain pathology.
[51] Hicham Fenniri,et al. Widespread Nanoparticle-Assay Interference: Implications for Nanotoxicity Testing , 2014, PloS one.
[52] M. Platzer,et al. Mitochondrial hormesis links low-dose arsenite exposure to lifespan extension , 2013, Aging cell.
[53] Marcel Leist,et al. A 3-dimensional human embryonic stem cell (hESC)-derived model to detect developmental neurotoxicity of nanoparticles , 2012, Archives of Toxicology.
[54] J. Lancaster,et al. Integration of cellular bioenergetics with mitochondrial quality control and autophagy , 2012, Biological chemistry.
[55] Stavros J. Baloyannis,et al. The vascular factor in Alzheimer's disease: A study in Golgi technique and electron microscopy , 2012, Journal of the Neurological Sciences.
[56] Kevin W Eliceiri,et al. NIH Image to ImageJ: 25 years of image analysis , 2012, Nature Methods.
[57] T. Pieber,et al. Cytotoxity of nanoparticles is influenced by size, proliferation and embryonic origin of the cells used for testing , 2012, Nanotoxicology.
[58] Reinhard Guthke,et al. Impaired insulin/IGF1 signaling extends life span by promoting mitochondrial L-proline catabolism to induce a transient ROS signal. , 2012, Cell metabolism.
[59] A. Lezza. Mitochondrial transcription factor A (TFAM): one actor for different roles , 2012, Frontiers in Biology.
[60] K. Chrissafis,et al. Nonisothermal melt-crystallization kinetics for in situ prepared poly(ethylene terephthalate)/monmorilonite (PET/OMMT) , 2011 .
[61] Berislav V. Zlokovic,et al. Pericytes Control Key Neurovascular Functions and Neuronal Phenotype in the Adult Brain and during Brain Aging , 2010, Neuron.
[62] P. Carmeliet,et al. Pericytes: Blood-Brain Barrier Safeguards against Neurodegeneration? , 2010, Neuron.
[63] Vasco Filipe,et al. Critical Evaluation of Nanoparticle Tracking Analysis (NTA) by NanoSight for the Measurement of Nanoparticles and Protein Aggregates , 2010, Pharmaceutical Research.
[64] P. Carvey,et al. The blood–brain barrier in neurodegenerative disease: a rhetorical perspective , 2009, Journal of neurochemistry.
[65] I. Donelli,et al. Enzymatic surface modification and functionalization of PET: A water contact angle, FTIR, and fluorescence spectroscopy study , 2009, Biotechnology and bioengineering.
[66] S. Kazarian,et al. In situ ATR-FTIR Spectroscopy of Poly(ethylene terephthalate) Subjected to High-Temperature Methanol , 2008 .
[67] A. Tjønneland,et al. Arsenic in Drinking-Water and Risk for Cancer in Denmark , 2007, Environmental health perspectives.
[68] E. Muniz,et al. Surface modification of HDPE, PP, and PET films with KMnO4/HCl solutions , 2007 .
[69] I. Miller,et al. Detecting oxidative post-translational modifications in proteins , 2007, Amino Acids.
[70] J. Kapfhammer,et al. Basic Fibroblast Growth Factor Modulates Density of Blood Vessels and Preserves Tight Junctions in Organotypic Cortical Cultures of Mice: A New In Vitro Model of the Blood–Brain Barrier , 2007, The Journal of Neuroscience.
[71] Rainer Heintzmann,et al. Breaking the resolution limit in light microscopy. , 2006, Methods in cell biology.
[72] E. Calabrese. Paradigm lost, paradigm found: the re-emergence of hormesis as a fundamental dose response model in the toxicological sciences. , 2005, Environmental pollution.
[73] Ana C. Pereira,et al. Modeling the Blood-Brain Barrier Using Human-Induced Pluripotent Stem Cells. , 2023, Methods in molecular biology.
[74] OUP accepted manuscript , 2022, FEMS Yeast Research.
[75] Pedro M. Quirós,et al. Mitohormesis, an Antiaging Paradigm. , 2018, International review of cell and molecular biology.
[76] E. H. Howlett,et al. PCR based determination of mitochondrial DNA copy number in multiple species. , 2015, Methods in molecular biology.
[77] Toren Finkel,et al. Mitohormesis. , 2014, Cell metabolism.
[78] R. Wiesner,et al. Transient overexpression of mitochondrial transcription factor A (TFAM) is sufficient to stimulate mitochondrial DNA transcription, but not sufficient to increase mtDNA copy number in cultured cells. , 2004, Nucleic acids research.