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    Date Issued2011 (1)2010 (1)Author
    Boyle, Patrick (2)
    Barbagallo, Belinda (1)Bock, Christoph (1)Climer, Jason (1)Francis, Michael M. (1)View MoreUMass Chan AffiliationDepartment of Cancer Biology (1)Department of Pediatrics (1)Francis Lab (1)Graduate School of Biomedical Sciences, Neuroscience Program (1)Neurobiology (1)Document TypeJournal Article (2)KeywordAmino Acid Substitution; Animals; Behavior, Animal; Caenorhabditis elegans; Calnexin; Calreticulin; Cell Death; Genes, Reporter; Homeostasis; Ion Channels; Locomotion; Microscopy, Confocal; Motor Neuron Disease; Necrosis; Nerve Degeneration; Paralysis; Receptors, Nicotinic; Signal Transduction (1)Animals (1)beta-Globins (1)CpG Islands (1)Dinucleoside Phosphates (1)View MoreJournalScience (1)The Journal of neuroscience : the official journal of the Society for Neuroscience (1)

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    Global DNA demethylation during mouse erythropoiesis in vivo

    Shearstone, Jeffrey R.; Pop, Ramona; Bock, Christoph; Boyle, Patrick; Meissner, Alexander; Socolovsky, Merav (American Association for the Advancement of Science, 2011-11-11)
    In the mammalian genome, 5'-CpG-3' dinucleotides are frequently methylated, correlating with transcriptional silencing. Genome-wide demethylation is thought to occur only twice during development, in primordial germ cells and in the pre-implantation embryo. These demethylation events are followed by de novo methylation, setting up a pattern inherited throughout development and modified only at tissue-specific loci. We studied DNA methylation in differentiating mouse erythroblasts in vivo by using genomic-scale reduced representation bisulfite sequencing (RRBS). Demethylation at the erythroid-specific β-globin locus was coincident with global DNA demethylation at most genomic elements. Global demethylation was continuous throughout differentiation and required rapid DNA replication. Hence, DNA demethylation can occur globally during somatic cell differentiation, providing an experimental model for its study in development and disease.
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    A dominant mutation in a neuronal acetylcholine receptor subunit leads to motor neuron degeneration in Caenorhabditis elegans

    Barbagallo, Belinda; Prescott, Hilary A.; Boyle, Patrick; Climer, Jason; Francis, Michael M. (Society for Neuroscience, 2010-10-20)
    Inappropriate or excessive activation of ionotropic receptors can have dramatic consequences for neuronal function and, in many instances, leads to cell death. In Caenorhabditis elegans, nicotinic acetylcholine receptor (nAChR) subunits are highly expressed in a neural circuit that controls movement. Here, we show that heteromeric nAChRs containing the acr-2 subunit are diffusely localized in the processes of excitatory motor neurons and act to modulate motor neuron activity. Excessive signaling through these receptors leads to cell-autonomous degeneration of cholinergic motor neurons and paralysis. C. elegans double mutants lacking calreticulin and calnexin-two genes previously implicated in the cellular events leading to necrotic-like cell death (Xu et al. 2001)-are resistant to nAChR-mediated toxicity and possess normal numbers of motor neuron cell bodies. Nonetheless, excess nAChR activation leads to progressive destabilization of the motor neuron processes and, ultimately, paralysis in these animals. Our results provide new evidence that chronic activation of ionotropic receptors can have devastating degenerative effects in neurons and reveal that ion channel-mediated toxicity may have distinct consequences in neuronal cell bodies and processes.
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