SummaryA common feature of the brain is the arrangement of synapses in layers. To examine the significance of this organizational feature, we studied the functional development of direction-selective (DS) circuits in the tectum of astray mutant zebrafish in which lamination of retinal ganglion cell (RGC) axons is lost. We show that although never laminar, the tuning of DS-RGC axons targeting the mutant tectum is normal. Analysis of mutant tectal neurons at late developmental stages reveals that directional tuning is indistinguishable from wild-type larvae. Furthermore, we show that structural plasticity of tectal dendrites and RGC axons compensates for the loss of lamination, establishing connectivity between DS-RGCs and their normal tectal...
SummaryBackgroundNeuronal circuits in worms, flies, and mammals are organized so as to minimize wiri...
Neural circuits in the vertebrate retina extract the direction of object motion from visual scenes a...
The function of the brain depends on highly specific patterns of connections between populations of ...
SummaryA common feature of the brain is the arrangement of synapses in layers. To examine the signif...
SummaryTargeting of axons and dendrites to particular synaptic laminae is an important mechanism by ...
The axons of retinal ganglion cells (RGCs) form topographic connections in the optic tectum, recreat...
Histologically discrete, parallel layers occur frequently in the nervous system. In many cases, each...
SummaryDirection selectivity (DS) is an important neuronal property in the visual system, but how DS...
The mechanisms that generate specific neuronal connections in the brain are under intense investigat...
AbstractA major determinant of specific connectivity in the central nervous system is that synapses ...
SummaryNeurons are thought to acquire shapes and configurations consistent with the wiring optimizat...
SummaryNeurons receive signals through dendrites that vary widely in number and organization, rangin...
SummaryTargeting of axons and dendrites to particular synaptic laminae is an important mechanism by ...
The wiring of functional neural circuits during embryonic development requires coordinated organizat...
The wiring of functional neural circuits during embryonic development requires coordinated organizat...
SummaryBackgroundNeuronal circuits in worms, flies, and mammals are organized so as to minimize wiri...
Neural circuits in the vertebrate retina extract the direction of object motion from visual scenes a...
The function of the brain depends on highly specific patterns of connections between populations of ...
SummaryA common feature of the brain is the arrangement of synapses in layers. To examine the signif...
SummaryTargeting of axons and dendrites to particular synaptic laminae is an important mechanism by ...
The axons of retinal ganglion cells (RGCs) form topographic connections in the optic tectum, recreat...
Histologically discrete, parallel layers occur frequently in the nervous system. In many cases, each...
SummaryDirection selectivity (DS) is an important neuronal property in the visual system, but how DS...
The mechanisms that generate specific neuronal connections in the brain are under intense investigat...
AbstractA major determinant of specific connectivity in the central nervous system is that synapses ...
SummaryNeurons are thought to acquire shapes and configurations consistent with the wiring optimizat...
SummaryNeurons receive signals through dendrites that vary widely in number and organization, rangin...
SummaryTargeting of axons and dendrites to particular synaptic laminae is an important mechanism by ...
The wiring of functional neural circuits during embryonic development requires coordinated organizat...
The wiring of functional neural circuits during embryonic development requires coordinated organizat...
SummaryBackgroundNeuronal circuits in worms, flies, and mammals are organized so as to minimize wiri...
Neural circuits in the vertebrate retina extract the direction of object motion from visual scenes a...
The function of the brain depends on highly specific patterns of connections between populations of ...