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      Function and Dysfunction of Microglia during Brain Development: Consequences for Synapses and Neural Circuits

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          Abstract

          Many diverse factors, ranging from stress to infections, can perturb brain homeostasis and alter the physiological activity of microglia, the immune cells of the central nervous system. Microglia play critical roles in the process of synaptic maturation and brain wiring during development. Any perturbation affecting microglial physiological function during critical developmental periods could result in defective maturation of synaptic circuits. In this review, we critically appraise the recent literature on the alterations of microglial activity induced by environmental and genetic factors occurring at pre- and early post-natal stages. Furthermore, we discuss the long-lasting consequences of early-life microglial perturbation on synaptic function and on vulnerability to neurodevelopmental and psychiatric disorders.

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          Most cited references120

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          Conditional gene targeting in macrophages and granulocytes using LysMcre mice.

          Conditional mutagenesis in mice has recently been made possible through the combination of gene targeting techniques and site-directed mutagenesis, using the bacteriophage P1-derived Cre/loxP recombination system. The versatility of this approach depends on the availability of mouse mutants in which the recombinase Cre is expressed in the appropriate cell lineages or tissues. Here we report the generation of mice that express Cre in myeloid cells due to targeted insertion of the cre cDNA into their endogenous M lysozyme locus. In double mutant mice harboring both the LysMcre allele and one of two different loxP-flanked target genes tested, a deletion efficiency of 83-98% was determined in mature macrophages and near 100% in granulocytes. Partial deletion (16%) could be detected in CD11c+ splenic dendritic cells which are closely related to the monocyte/macrophage lineage. In contrast, no significant deletion was observed in tail DNA or purified T and B cells. Taken together, LysMcre mice allow for both specific and highly efficient Cre-mediated deletion of loxP-flanked target genes in myeloid cells.
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            Neural consequences of environmental enrichment.

            Neuronal plasticity is a central theme of modern neurobiology, from cellular and molecular mechanisms of synapse formation in Drosophila to behavioural recovery from strokes in elderly humans. Although the methods used to measure plastic responses differ, the stimuli required to elicit plasticity are thought to be activity-dependent. In this article, we focus on the neuronal changes that occur in response to complex stimulation by an enriched environment. We emphasize the behavioural and neurobiological consequences of specific elements of enrichment, especially exercise and learning.
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              The P2Y12 receptor regulates microglial activation by extracellular nucleotides.

              Microglia are primary immune sentinels of the CNS. Following injury, these cells migrate or extend processes toward sites of tissue damage. CNS injury is accompanied by release of nucleotides, serving as signals for microglial activation or chemotaxis. Microglia express several purinoceptors, including a G(i)-coupled subtype that has been implicated in ATP- and ADP-mediated migration in vitro. Here we show that microglia from mice lacking G(i)-coupled P2Y(12) receptors exhibit normal baseline motility but are unable to polarize, migrate or extend processes toward nucleotides in vitro or in vivo. Microglia in P2ry(12)(-/-) mice show significantly diminished directional branch extension toward sites of cortical damage in the living mouse. Moreover, P2Y(12) expression is robust in the 'resting' state, but dramatically reduced after microglial activation. These results imply that P2Y(12) is a primary site at which nucleotides act to induce microglial chemotaxis at early stages of the response to local CNS injury.
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                Author and article information

                Contributors
                Journal
                Front Synaptic Neurosci
                Front Synaptic Neurosci
                Front. Synaptic Neurosci.
                Frontiers in Synaptic Neuroscience
                Frontiers Media S.A.
                1663-3563
                10 May 2017
                2017
                : 9
                : 9
                Affiliations
                [1] 1IREM, Institute for Regenerative Medicine, University of Zurich Zürich, Switzerland
                [2] 2ZNZ Neuroscience Center Zurich Zürich, Switzerland
                Author notes

                Edited by: Owen Murray Rennert, National Institute of Child Health and Human Development (NIH), USA

                Reviewed by: Jason D. Shepherd, University of Utah, USA; Irmgard Dorothea Dietzel-Meyer, Ruhr University Bochum, Germany

                *Correspondence: Rosa C. Paolicelli, rosachiara.paolicelli@ 123456irem.uzh.ch Maria T. Ferretti, mariateresa.ferretti@ 123456irem.uzh.ch

                These authors have contributed equally to this work.

                Article
                10.3389/fnsyn.2017.00009
                5423952
                28539882
                2f61ccd0-a403-4ed3-8c60-6ce4bfdb9310
                Copyright © 2017 Paolicelli and Ferretti.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

                History
                : 29 January 2017
                : 27 April 2017
                Page count
                Figures: 1, Tables: 3, Equations: 0, References: 200, Pages: 17, Words: 0
                Categories
                Neuroscience
                Review

                Neurosciences
                microglia,synapses,brain development,synaptic function,synaptic pruning,neurodevelopmental disorders,infections,stress

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