Environmental microplastics (EMPs) exposure alter the differentiation potential of mesenchymal stromal cells.
暂无分享,去创建一个
U. Galderisi | G. Di Bernardo | T. Squillaro | G. Conti | M. Ferrante | S. Minucci | M. Banni | N. Alessio | I. Messaoudi | Hana Najahi
[1] M. Banni,et al. Metabolomic disorders unveil hepatotoxicity of environmental microplastics in wild fish Serranus scriba (Linnaeus 1758). , 2022, The Science of the total environment.
[2] A. D. Vethaak,et al. Discovery and quantification of plastic particle pollution in human blood. , 2022, Environment international.
[3] M. Venditti,et al. Autophagic event and metabolomic disorders unveil cellular toxicity of environmental microplastics on marine polychaete Hediste diversicolor. , 2022, Environmental pollution.
[4] G. Conti,et al. Embryotoxicity of polystyrene microplastics in zebrafish Daniorerio. , 2021, Environmental Research.
[5] B. Halamoda-Kenzaoui,et al. Tiered testing of micro- and nanoplastics using intestinal in vitro models to support hazard assessments. , 2021, Environment international.
[6] K. Kannan,et al. A Review of Human Exposure to Microplastics and Insights Into Microplastics as Obesogens , 2021, Frontiers in Endocrinology.
[7] S. Colafarina,et al. Genotoxicity and oxidative stress induction by polystyrene nanoparticles in the colorectal cancer cell line HCT116 , 2021, PloS one.
[8] G. Montalbano,et al. Micro and Nano Plastics Distribution in Fish as Model Organisms: Histopathology, Blood Response and Bioaccumulation in Different Organs , 2021, Applied Sciences.
[9] J. Hare,et al. Exposure of Human Lung Cells to Polystyrene Microplastics Significantly Retards Cell Proliferation and Triggers Morphological Changes. , 2021, Chemical research in toxicology.
[10] E. Fournier,et al. Microplastics in the human digestive environment: A focus on the potential and challenges facing in vitro gut model development. , 2021, Journal of hazardous materials.
[11] U. Galderisi,et al. Different Stages of Quiescence, Senescence, and Cell Stress Identified by Molecular Algorithm Based on the Expression of Ki67, RPS6, and Beta-Galactosidase Activity , 2021, International journal of molecular sciences.
[12] Joanna Kalucka,et al. Angiogenesis in Adipose Tissue: The Interplay Between Adipose and Endothelial Cells , 2021, Frontiers in Physiology.
[13] N. Chèvre,et al. Uptake, tissue distribution and toxicological effects of environmental microplastics in early juvenile fish Dicentrarchus labrax. , 2021, Journal of hazardous materials.
[14] M. Ferrante,et al. Time-dependent metabolic disorders induced by short-term exposure to polystyrene microplastics in the Mediterranean mussel Mytilus galloprovincialis. , 2020, Ecotoxicology and environmental safety.
[15] Susana P. Gaudêncio,et al. Marine Environmental Plastic Pollution: Mitigation by Microorganism Degradation and Recycling Valorization , 2020, Frontiers in Marine Science.
[16] V. Tkachuk,et al. Mesenchymal Stromal Cells as Critical Contributors to Tissue Regeneration , 2020, Frontiers in Cell and Developmental Biology.
[17] J. Lead,et al. Health impacts of environmental contamination of micro- and nanoplastics: a review , 2020, Environmental Health and Preventive Medicine.
[18] A. Cristaldi,et al. Micro- and nano-plastics in edible fruit and vegetables. The first diet risks assessment for the general population. , 2020, Environmental research.
[19] H. Soliman,et al. Antioxidants and molecular damage in Nile Tilapia (Oreochromis niloticus) after exposure to microplastics , 2020, Environmental Science and Pollution Research.
[20] Richard C. Thompson,et al. Microplastics and seafood: lower trophic organisms at highest risk of contamination. , 2019, Ecotoxicology and environmental safety.
[21] A. Cristaldi,et al. Reply for comment on "Exposure to microplastics (<10 μm) associated to plastic bottles mineral water consumption: The first quantitative study by Zuccarello et al. [Water Research 157 (2019) 365-371]". , 2019, Water research.
[22] U. Galderisi,et al. Mesenchymal stromal cells from amniotic fluid are less prone to senescence compared to those obtained from bone marrow: An in vitro study , 2018, Journal of cellular physiology.
[23] D. Slebos,et al. Mesenchymal Stromal Cells to Regenerate Emphysema: On the Horizon? , 2018, Respiration.
[24] U. Galderisi,et al. Neural stem cells from a mouse model of Rett syndrome are prone to senescence, show reduced capacity to cope with genotoxic stress, and are impaired in the differentiation process , 2018, Experimental & Molecular Medicine.
[25] Jeffrey Farner Budarz,et al. Microplastics and Nanoplastics in Aquatic Environments: Aggregation, Deposition, and Enhanced Contaminant Transport. , 2017, Environmental science & technology.
[26] A. Giordano,et al. Misidentified Human Gene Functions with Mouse Models: The Case of the Retinoblastoma Gene Family in Senescence123 , 2017, Neoplasia.
[27] U. Galderisi,et al. Mesenchymal stromal cells having inactivated RB1 survive following low irradiation and accumulate damaged DNA: Hints for side effects following radiotherapy , 2017, Cell cycle.
[28] Su-Jae Lee,et al. Microplastic Size-Dependent Toxicity, Oxidative Stress Induction, and p-JNK and p-p38 Activation in the Monogonont Rotifer (Brachionus koreanus). , 2016, Environmental science & technology.
[29] U. Galderisi,et al. Clinical Trials with Mesenchymal Stem Cells: An Update , 2016, Cell transplantation.
[30] D. Baker,et al. Cellular senescence in aging and age-related disease: from mechanisms to therapy , 2015, Nature Medicine.
[31] C. Wilcox,et al. Plastic waste inputs from land into the ocean , 2015, Science.
[32] M. Pepper,et al. The Role of Reactive Oxygen Species in Mesenchymal Stem Cell Adipogenic and Osteogenic Differentiation: A Review , 2015, Stem cells and development.
[33] U. Galderisi,et al. Low dose radiation induced senescence of human mesenchymal stromal cells and impaired the autophagy process , 2014, Oncotarget.
[34] A. Giordano,et al. The Gap Between the Physiological and Therapeutic Roles of Mesenchymal Stem Cells , 2014, Medicinal research reviews.
[35] N. Mackman,et al. Tumor-derived tissue factor-positive microparticles and venous thrombosis in cancer patients. , 2013, Blood.
[36] David J. Chen,et al. Histone H2AX participates the DNA damage-induced ATM activation through interaction with NBS1. , 2009, Biochemical and biophysical research communications.
[37] Lori A Rowe,et al. DNA damage-induced reactive oxygen species (ROS) stress response in Saccharomyces cerevisiae. , 2008, Free radical biology & medicine.
[38] D. DiMaio,et al. Senescence‐associated β‐galactosidase is lysosomal β‐galactosidase , 2006 .
[39] J. F. Cavender,et al. Research Article: Beta-galactosidase staining as a marker of cells enduring stress , 2004 .