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Development of reciprocal connections between the dorsal lateral geniculate nucleus and the thalamic reticular nucleus
by
Campbell, Peter W
, Govindaiah, Gubbi
, Guido, William
in
Anesthesia
/ Autism
/ Axon collaterals
/ Brain slice preparation
/ Cholera
/ Epilepsy
/ Feedback
/ Functional morphology
/ Information processing
/ Innervation
/ Lateral geniculate nucleus
/ Maturation
/ Microscopy
/ Neocortex
/ Neurodevelopmental disorders
/ Neurons
/ Postpartum period
/ Sensory integration
/ Synaptic depression
/ Thalamic nuclei
/ Thalamic reticular nucleus
/ Thalamus
/ Toxins
/ Visual pathways
/ Visual stimuli
2024
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Development of reciprocal connections between the dorsal lateral geniculate nucleus and the thalamic reticular nucleus
by
Campbell, Peter W
, Govindaiah, Gubbi
, Guido, William
in
Anesthesia
/ Autism
/ Axon collaterals
/ Brain slice preparation
/ Cholera
/ Epilepsy
/ Feedback
/ Functional morphology
/ Information processing
/ Innervation
/ Lateral geniculate nucleus
/ Maturation
/ Microscopy
/ Neocortex
/ Neurodevelopmental disorders
/ Neurons
/ Postpartum period
/ Sensory integration
/ Synaptic depression
/ Thalamic nuclei
/ Thalamic reticular nucleus
/ Thalamus
/ Toxins
/ Visual pathways
/ Visual stimuli
2024
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Development of reciprocal connections between the dorsal lateral geniculate nucleus and the thalamic reticular nucleus
by
Campbell, Peter W
, Govindaiah, Gubbi
, Guido, William
in
Anesthesia
/ Autism
/ Axon collaterals
/ Brain slice preparation
/ Cholera
/ Epilepsy
/ Feedback
/ Functional morphology
/ Information processing
/ Innervation
/ Lateral geniculate nucleus
/ Maturation
/ Microscopy
/ Neocortex
/ Neurodevelopmental disorders
/ Neurons
/ Postpartum period
/ Sensory integration
/ Synaptic depression
/ Thalamic nuclei
/ Thalamic reticular nucleus
/ Thalamus
/ Toxins
/ Visual pathways
/ Visual stimuli
2024
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Development of reciprocal connections between the dorsal lateral geniculate nucleus and the thalamic reticular nucleus
Journal Article
Development of reciprocal connections between the dorsal lateral geniculate nucleus and the thalamic reticular nucleus
2024
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Overview
The thalamic reticular nucleus (TRN) serves as an important node between the thalamus and neocortex, regulating thalamocortical rhythms and sensory processing in a state dependent manner. Disruptions in TRN circuitry also figures prominently in several neurodevelopmental disorders including epilepsy, autism, and attentional defects. An understanding of how and when connections between TRN and 1st order thalamic nuclei, such as the dorsal lateral geniculate nucleus (dLGN), develop is lacking. We used the mouse visual thalamus as a model system to study the organization, pattern of innervation and functional responses between TRN and the dLGN. Genetically modified mouse lines were used to visualize and target the feedforward and feedback components of these intra-thalamic circuits and to understand how peripheral input from the retina impacts their development.Retrograde tracing of thalamocortical (TC) afferents through TRN revealed that the modality-specific organization seen in the adult, is present at perinatal ages and seems impervious to the loss of peripheral input. To examine the formation and functional maturation of intrathalamic circuits between the visual sector of TRN and dLGN, we examined when projections from each nuclei arrive, and used an acute thalamic slice preparation along with optogenetic stimulation to assess the maturation of functional synaptic responses. Although thalamocortical projections passed through TRN at birth, feedforward axon collaterals determined by vGluT2 labeling, emerged during the second postnatal week, increasing in density through the third week. Optogenetic stimulation of TC axon collaterals in TRN showed infrequent, weak excitatory responses near the end of week 1. During weeks 2–4, responses became more prevalent, grew larger in amplitude and exhibited synaptic depression during repetitive stimulation. Feedback projections from visual TRN to dLGN began to innervate dLGN as early as postnatal day 2 with weak inhibitory responses emerging during week 1. During week 2–4, inhibitory responses continued to grow larger, showing synaptic depression during repetitive stimulation. During this time TRN inhibition started to suppress TC spiking, having its greatest impact by week 4–6. Using a mutant mouse that lacks retinofugal projections revealed that the absence of retinal input led to an acceleration of TRN innervation of dLGN but had little impact on the development of feedforward projections from dLGN to TRN. Together, these experiments reveal how and when intrathalamic connections emerge during early postnatal ages and provide foundational knowledge to understand the development of thalamocortical network dynamics as well as neurodevelopmental diseases that involve TRN circuitry.
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