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Pharmacogenetic stimulation of neuronal activity increases myelination in an axon-specific manner.

Nature communications (2018-01-24)
Stanislaw Mitew, Ilan Gobius, Laura R Fenlon, Stuart J McDougall, David Hawkes, Yao Lulu Xing, Helena Bujalka, Andrew L Gundlach, Linda J Richards, Trevor J Kilpatrick, Tobias D Merson, Ben Emery
ABSTRACT

Mounting evidence suggests that neuronal activity influences myelination, potentially allowing for experience-driven modulation of neural circuitry. The degree to which neuronal activity is capable of regulating myelination at the individual axon level is unclear. Here we demonstrate that stimulation of somatosensory axons in the mouse brain increases proliferation and differentiation of oligodendrocyte progenitor cells (OPCs) within the underlying white matter. Stimulated axons display an increased probability of being myelinated compared to neighboring non-stimulated axons, in addition to being ensheathed with thicker myelin. Conversely, attenuating neuronal firing reduces axonal myelination in a selective activity-dependent manner. Our findings reveal that the process of selecting axons for myelination is strongly influenced by the relative activity of individual axons within a population. These observed cellular changes are consistent with the emerging concept that adaptive myelination is a key mechanism for the fine-tuning of neuronal circuitry in the mammalian CNS.

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Sigma-Aldrich
Anticorpo anti-NeuN, clone A60, clone A60, Chemicon®, from mouse
Sigma-Aldrich
Anticorpo anti-proteina fibrillare acida della glia, clone GA5, ascites fluid, clone GA5, Chemicon®
Sigma-Aldrich
Monoclonal Anti-Parvalbumin antibody produced in mouse, clone PARV-19, ascites fluid
Sigma-Aldrich
Anticorpo anti-proteina basica della mielina, a.a. 82-87, culture supernatant, clone 12, Chemicon®