Synaptic and circuit mechanisms prevent detrimentally precise correlation in the developing mammalian visual system

Author:

Tikidji-Hamburyan Ruben A1ORCID,Govindaiah Gubbi2,Guido William2,Colonnese Matthew T1ORCID

Affiliation:

1. Department of Pharmacology and Physiology, The George Washington University

2. Department of Anatomical Sciences and Neurobiology, University of Louisville

Abstract

The developing visual thalamus and cortex extract positional information encoded in the correlated activity of retinal ganglion cells by synaptic plasticity, allowing for the refinement of connectivity. Here, we use a biophysical model of the visual thalamus during the initial visual circuit refinement period to explore the role of synaptic and circuit properties in the regulation of such neural correlations. We find that the NMDA receptor dominance, combined with weak recurrent excitation and inhibition characteristic of this age, prevents the emergence of spike-correlations between thalamocortical neurons on the millisecond timescale. Such precise correlations, which would emerge due to the broad, unrefined connections from the retina to the thalamus, reduce the spatial information contained by thalamic spikes, and therefore we term them ‘parasitic’ correlations. Our results suggest that developing synapses and circuits evolved mechanisms to compensate for such detrimental parasitic correlations arising from the unrefined and immature circuit.

Funder

National Eye Institute

National Institute of Neurological Disorders and Stroke

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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