Literature DB >> 24519525

Lead exposure disrupts global DNA methylation in human embryonic stem cells and alters their neuronal differentiation.

Marie-Claude Senut1, Arko Sen, Pablo Cingolani, Asra Shaik, Susan J Land, Douglas M Ruden.   

Abstract

Exposure to lead (Pb) during childhood can result in learning disabilities and behavioral problems. Although described in animal models, whether Pb exposure also alters neuronal differentiation in the developing brains of exposed children is unknown. Here, we investigated the effects of physiologically relevant concentrations of Pb (from 0.4 to 1.9μM) on the capacity of human embryonic stem cells (hESCs) to progress to a neuronal fate. We found that neither acute nor chronic exposure to Pb prevented hESCs from generating neural progenitor cells (NPCs). NPCs derived from hESCs chronically exposed to 1.9μM Pb throughout the neural differentiation process generated 2.5 times more TUJ1-positive neurons than those derived from control hESCs. Pb exposure of hESCs during the stage of neural rosette formation resulted in a significant decrease in the expression levels of the neural marker genes PAX6 and MSI1. Furthermore, the resulting NPCs differentiated into neurons with shorter neurites and less branching than control neurons, as assessed by Sholl analysis. DNA methylation studies of control, acutely treated hESCs and NPCs derived from chronically exposed hESCs using the Illumina HumanMethylation450 BeadChip demonstrated that Pb exposure induced changes in the methylation status of genes involved in neurogenetic signaling pathways. In summary, our study shows that exposure to Pb subtly alters the neuronal differentiation of exposed hESCs and that these changes could be partly mediated by modifications in the DNA methylation status of genes crucial to brain development.

Entities:  

Keywords:  DNA methylation; Heavy metal; human embryonic stem cell; lead; neuronal differentiation

Mesh:

Substances:

Year:  2014        PMID: 24519525      PMCID: PMC4023291          DOI: 10.1093/toxsci/kfu028

Source DB:  PubMed          Journal:  Toxicol Sci        ISSN: 1096-0929            Impact factor:   4.849


  95 in total

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3.  Alzheimer's disease biomarkers and epigenetic intermediates following exposure to Pb in vitro.

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6.  Moderate lead exposure elicits neurotrophic effects in cerebral cortical precursor cells in culture.

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7.  Infant exposure to lead (Pb) and epigenetic modifications in the aging primate brain: implications for Alzheimer's disease.

Authors:  Syed Waseem Bihaqi; Hui Huang; Jinfang Wu; Nasser H Zawia
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8.  Maturation-dependent neurotoxicity of lead acetate in vitro: implication of glial reactions.

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9.  Altered myelination and axonal integrity in adults with childhood lead exposure: a diffusion tensor imaging study.

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10.  Low-level environmental lead exposure and children's intellectual function: an international pooled analysis.

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  32 in total

1.  Using a Multi-Stage hESC Model to Characterize BDE-47 Toxicity during Neurogenesis.

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2.  Variation in an Iron Metabolism Gene Moderates the Association Between Blood Lead Levels and Attention-Deficit/Hyperactivity Disorder in Children.

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3.  Evaluation of combined developmental neurological toxicity of di (n-butyl) phthalates and lead using immature mice.

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4.  Sex- and tissue-specific methylome changes in brains of mice perinatally exposed to lead.

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5.  Prenatal arsenic exposure alters REST/NRSF and microRNA regulators of embryonic neural stem cell fate in a sex-dependent manner.

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Review 6.  Select Prenatal Environmental Exposures and Subsequent Alterations of Gene-Specific and Repetitive Element DNA Methylation in Fetal Tissues.

Authors:  Benjamin B Green; Carmen J Marsit
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Review 7.  Metal Toxicity Links to Alzheimer's Disease and Neuroinflammation.

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10.  Size-Dependent Toxicity of Gold Nanoparticles on Human Embryonic Stem Cells and Their Neural Derivatives.

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