Effects of glyphosate exposure on the miRNA expression profile and construction of the miRNA-mRNA regulatory network in mouse bone marrow cells
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Jiawei Huang | Yuepu Pu | L. Yin | Juan Zhang | Rongli Sun | Kai Xu | Yunqiu Pu | Manman Liu | Jiawei Huang | Fei Xiong | Jinyan Liu | Jiawei Huang
[1] Xia Zhang,et al. MicroRNA-135b-5p regulates trophoblast cell function by targeting phosphoinositide-3-kinase regulatory subunit 2 in preeclampsia , 2022, Bioengineered.
[2] Jiawei Huang,et al. Hematological effects of glyphosate in mice revealed by traditional toxicology and transcriptome sequencing. , 2022, Environmental Toxicology and Pharmacology.
[3] Weifeng Yao,et al. The study of human serum metabolome on the health effects of glyphosate and early warning of potential damage. , 2022, Chemosphere.
[4] A. O. Isaac,et al. A glyphosate-based herbicide disrupted hematopoiesis and induced organ toxicities, ameliorated by vitamin B12 in a mouse model , 2022, Saudi journal of biological sciences.
[5] Beizhong Liu,et al. MiRNA-301b-3p induces proliferation and inhibits apoptosis in AML cells by targeting FOXF2 and regulating Wnt/β-catenin axis. , 2022, Molecular and cellular probes.
[6] Ling Zhang,et al. Mutant NPM1-Regulated FTO-Mediated m6A Demethylation Promotes Leukemic Cell Survival via PDGFRB/ERK Signaling Axis , 2022, Frontiers in Oncology.
[7] Jinxia Hou,et al. The Exosomes Containing LINC00461 Originated from Multiple Myeloma Inhibit the Osteoblast Differentiation of Bone Mesenchymal Stem Cells via Sponging miR-324-3p , 2022, Journal of healthcare engineering.
[8] A. Viggiano,et al. Pleiotropic Outcomes of Glyphosate Exposure: From Organ Damage to Effects on Inflammation, Cancer, Reproduction and Development , 2021, International journal of molecular sciences.
[9] Chengming Sun,et al. PER2: a potential molecular marker for hematological malignancies , 2021, Molecular Biology Reports.
[10] Tong Su,et al. MiR-34a-5p and miR-452-5p: The Novel Regulators of Pancreatic Endocrine Dysfunction in Diabetic Zucker Rats? , 2021, International journal of medical sciences.
[11] G. Canesini,et al. Epigenetic Changes Associated With Exposure to Glyphosate-Based Herbicides in Mammals , 2021, Frontiers in Endocrinology.
[12] G. Aulakh,et al. Pulmonary Inflammatory Response from Co-exposure to LPS and Glyphosate. , 2021, Environmental toxicology and pharmacology.
[13] Jianing Qiu,et al. Identification of lncRNA expression profiles and analysis of ceRNA in the hippocampus of perinatal glyphosate‐exposed mice , 2021, International journal of developmental neuroscience : the official journal of the International Society for Developmental Neuroscience.
[14] R. Mesnage,et al. Use of Shotgun Metagenomics and Metabolomics to Evaluate the Impact of Glyphosate or Roundup MON 52276 on the Gut Microbiota and Serum Metabolome of Sprague-Dawley Rats , 2021, Environmental health perspectives.
[15] F. Meloni,et al. Occupational exposure to glyphosate and risk of lymphoma:results of an Italian multicenter case-control study , 2020, Environmental Health.
[16] Zhao Liang,et al. Metabolic regulation of the bone marrow microenvironment in leukemia. , 2020, Blood reviews.
[17] Shaoyan Hu,et al. Identification of transcobalamin deficiency with two novel mutations in the TCN2 gene in a Chinese girl with abnormal immunity: a case report , 2020, BMC Pediatrics.
[18] Y. Oda,et al. Cancer-associated fibroblasts promote hepatocellular carcinoma progression through downregulation of exosomal miR-150-3p. , 2020, European journal of surgical oncology : the journal of the European Society of Surgical Oncology and the British Association of Surgical Oncology.
[19] A. Keating,et al. Ovarian mitochondrial and oxidative stress proteins are altered by glyphosate exposure in mice. , 2020, Toxicology and applied pharmacology.
[20] Fangxia Wang,et al. miR‐582‐5p serves as an antioncogenic biomarker in intermediate risk AML with normal cytogenetics and could inhibit proliferation and induce apoptosis of leukemia cells , 2020, Cell biology international.
[21] Jing Ye,et al. Identification and integrated analysis of glyphosate stress-responsive microRNAs, lncRNAs, and mRNAs in rice using genome-wide high-throughput sequencing , 2020, BMC Genomics.
[22] Min Yu,et al. Knockdown of long non-coding RNA plasmacytoma variant translocation 1 inhibits cell proliferation while promotes cell apoptosis via regulating miR-486-mediated CDK4 and BCAS2 in multiple myeloma , 2020, Irish Journal of Medical Science (1971 -).
[23] Yin Sun,et al. MiR-100 regulates cell viability and apoptosis by targeting ATM in pediatric acute myeloid leukemia. , 2019, Biochemical and biophysical research communications.
[24] I. da Silva,et al. Maternal glyphosate-based herbicide exposure alters antioxidant-related genes in the brain and serum metabolites of male rat offspring. , 2019, Neurotoxicology.
[25] George W. Archibald,et al. Plant circadian rhythms regulate the effectiveness of a glyphosate-based herbicide , 2019, Nature Communications.
[26] Yuan-Hu Jin,et al. miR-671-5p Blocks The Progression Of Human Esophageal Squamous Cell Carcinoma By Suppressing FGFR2 , 2019, International journal of biological sciences.
[27] K. Young,et al. Glyphosate induces benign monoclonal gammopathy and promotes multiple myeloma progression in mice , 2019, Journal of Hematology & Oncology.
[28] Youwu Hao,et al. Evaluation of the cytotoxic effects of glyphosate herbicides in human liver, lung, and nerve , 2019, Journal of environmental science and health. Part. B, Pesticides, food contaminants, and agricultural wastes.
[29] B. Thiede,et al. NIPSNAP1 and NIPSNAP2 Act as "Eat Me" Signals for Mitophagy. , 2019, Developmental cell.
[30] S. Moriya,et al. Molecular Pathogenesis of Gene Regulation by the miR-150 Duplex: miR-150-3p Regulates TNS4 in Lung Adenocarcinoma , 2019, Cancers.
[31] S. Pounds,et al. MicroRNAs Mediated Regulation of Expression of Nucleoside Analog Pathway Genes in Acute Myeloid Leukemia , 2019, Genes.
[32] Xin Liu,et al. MicroRNA-24-3p regulates Hodgkin's lymphoma cell proliferation, migration and invasion by targeting DEDD , 2018, Oncology letters.
[33] Tony Hunter,et al. Metabolic Kinases Moonlighting as Protein Kinases. , 2018, Trends in biochemical sciences.
[34] V. Mai,et al. Environmental and health effects of the herbicide glyphosate. , 2018, The Science of the total environment.
[35] Z. Wang,et al. Differential microRNA expression in the prefrontal cortex of mouse offspring induced by glyphosate exposure during pregnancy and lactation , 2017, Experimental and therapeutic medicine.
[36] D. Parry,et al. Glucose-6-Phosphatase Catalytic Subunit 3 (G6PC3) Deficiency Associated With Autoinflammatory Complications , 2017, Front. Immunol..
[37] M. Kwiatkowska,et al. DNA damage and methylation induced by glyphosate in human peripheral blood mononuclear cells (in vitro study). , 2017, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[38] N. Seki,et al. Dual strands of pre-miR‑150 (miR‑150‑5p and miR‑150‑3p) act as antitumor miRNAs targeting SPOCK1 in naïve and castration-resistant prostate cancer. , 2017, International journal of oncology.
[39] M. Billaud,et al. Desynchronization of Circadian Clocks in Cancer: A Metabolic and Epigenetic Connection , 2017, Front. Endocrinol..
[40] D. Nomura,et al. Mapping Proteome-wide Targets of Glyphosate in Mice. , 2017, Cell chemical biology.
[41] A. Filip,et al. Expression of circulating miRNAs associated with lymphocyte differentiation and activation in CLL—another piece in the puzzle , 2016, Annals of Hematology.
[42] E. O'Duibhir,et al. Hif-1α and Hif-2α synergize to suppress AML development but are dispensable for disease maintenance , 2015, The Journal of experimental medicine.
[43] M. Arno,et al. Transcriptome profile analysis reflects rat liver and kidney damage following chronic ultra-low dose Roundup exposure , 2015, Environmental Health.
[44] Abbas Salavaty,et al. Carcinogenic effects of circadian disruption: an epigenetic viewpoint , 2015, Chinese journal of cancer.
[45] C. Romualdi,et al. Integration Analysis of MicroRNA and mRNA Expression Profiles in Human Peripheral Blood Lymphocytes Cultured in Modeled Microgravity , 2014, BioMed research international.
[46] E. Mały,et al. Polymorphisms in microRNA target sites modulate risk of lymphoblastic and myeloid leukemias and affect microRNA binding , 2014, Journal of Hematology & Oncology.
[47] P. Munson,et al. Integrated analysis of miRNA and mRNA during differentiation of human CD34+ cells delineates the regulatory roles of microRNA in hematopoiesis. , 2014, Experimental hematology.
[48] Chen Jian-hu. The relief of vitamin C on micronuclei and nuclear anomalies of peripheral red blood cells in Danio rerio induced by glyphosate , 2013 .
[49] N. Lazar,et al. MicroRNAs 130a/b are regulated by BCR-ABL and downregulate expression of CCN3 in CML , 2011, Journal of Cell Communication and Signaling.
[50] B. Burwinkel,et al. Characterization of extracellular circulating microRNA , 2011, Nucleic acids research.
[51] Woong-Yang Park,et al. Comprehensive analysis of microRNA-mRNA co-expression in circadian rhythm , 2009, Experimental & Molecular Medicine.
[52] H. Y. Lin,et al. Downregulation of circadian clock genes in chronic myeloid leukemia: Alternative methylation pattern of hPER3 , 2006, Cancer science.
[53] M. Peter,et al. Nuclear localization of DEDD leads to caspase-6 activation through its death effector domain and inhibition of RNA polymerase I dependent transcription , 2001, Cell Death and Differentiation.