Glial Biology in Learning and Cognition

Author:

Fields R. Douglas1,Araque Alfonso2,Johansen-Berg Heidi3,Lim Soo-Siang4,Lynch Gary5,Nave Klaus-Armin6,Nedergaard Maiken7,Perez Ray8,Sejnowski Terrence9,Wake Hiroaki10

Affiliation:

1. National Institutes of Health, NICHD, Bethesda, MD, USA

2. Instituto Cajal, Madrid, Spain

3. Radcliffe Hospital, Oxford, UK

4. National Science Foundation, Arlington, VA, USA

5. University of California, Irvine, CA, USA

6. Max-Planck Institute for Experimental Medicine, Gottingen, Germany

7. University of Rochester, Rochester, NY, USA

8. Office of Naval Research, Arlington, VA, USA

9. Salk Institute, La Jolla, CA, USA

10. National Institute for Basic Biology, Okazaki, Japan

Abstract

Neurons are exquisitely specialized for rapid electrical transmission of signals, but some properties of glial cells, which do not communicate with electrical impulses, are well suited for participating in complex cognitive functions requiring broad spatial integration and long-term temporal regulation. Astrocytes, microglia, and oligodendrocytes all have biological properties that could influence learning and cognition. Myelination by oligodendrocytes increases conduction velocity, affecting spike timing and oscillations in neuronal activity. Astrocytes can modulate synaptic transmission and may couple multiple neurons and synapses into functional assemblies. Microglia can remove synapses in an activity-dependent manner altering neural networks. Incorporating glia into a bicellular mechanism of nervous system function may help answer long-standing questions concerning the cellular mechanisms of learning and cognition.

Publisher

SAGE Publications

Subject

Clinical Neurology,General Neuroscience

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