As the nervous system develops, there is an inherent variability in the connections formed between differentiating neurons. Despite this variability, neural circuits form that are functional and remarkably robust. One way in which neurons deal with variability in their inputs is through compensatory, homeostatic changes in their electrical properties. Here, we show that neurons also make compensatory adjustments to their structure. We analysed the development of dendrites on an identified central neuron (aCC) in the late Drosophila embryo at the stage when it receives its first connections and first becomes electrically active. At the same time, we charted the distribution of presynaptic sites on the developing postsynaptic arbor. Genetic m...
Class I ventral posterior dendritic arborisation (c1vpda) proprioceptive sensory neurons respond to ...
Summary: We have interrogated the synaptic dialog that enables the bi-directional, homeostatic contr...
Our nervous system is made of billions of neurons that process sensory information and control behav...
Brain development requires correct targeting of multiple thousand synaptic terminals onto staggering...
The diverse and intricate dendritic branching patterns of neurons determine their ability to collect...
AbstractDendrites develop morphologies characterized by multiple levels of complexity that involve n...
Thesis (Ph.D.)--University of Washington, 2016-06The directional flow of information in neurons depe...
Spatial arrangement of different neuron types within a territory is essential to neuronal developmen...
The structure and function of the nervous system is continuously changing due to genetic programs an...
Spatial arrangement of different neuron types within a territory is essential to neuronal developmen...
SummaryIn response to changes in the environment, dendrites from certain neurons change their shape,...
SummaryBackgroundMuch of our understanding of how neural networks develop is based on studies of sen...
<p>Dendrites are the primary sites of information input into neurons. Proper establishment and maint...
Neurons and circuits are remarkably dynamic. Their gross structure can change within minutes as neur...
AbstractFunctionally similar neurons can share common dendrite morphology, but how different neurons...
Class I ventral posterior dendritic arborisation (c1vpda) proprioceptive sensory neurons respond to ...
Summary: We have interrogated the synaptic dialog that enables the bi-directional, homeostatic contr...
Our nervous system is made of billions of neurons that process sensory information and control behav...
Brain development requires correct targeting of multiple thousand synaptic terminals onto staggering...
The diverse and intricate dendritic branching patterns of neurons determine their ability to collect...
AbstractDendrites develop morphologies characterized by multiple levels of complexity that involve n...
Thesis (Ph.D.)--University of Washington, 2016-06The directional flow of information in neurons depe...
Spatial arrangement of different neuron types within a territory is essential to neuronal developmen...
The structure and function of the nervous system is continuously changing due to genetic programs an...
Spatial arrangement of different neuron types within a territory is essential to neuronal developmen...
SummaryIn response to changes in the environment, dendrites from certain neurons change their shape,...
SummaryBackgroundMuch of our understanding of how neural networks develop is based on studies of sen...
<p>Dendrites are the primary sites of information input into neurons. Proper establishment and maint...
Neurons and circuits are remarkably dynamic. Their gross structure can change within minutes as neur...
AbstractFunctionally similar neurons can share common dendrite morphology, but how different neurons...
Class I ventral posterior dendritic arborisation (c1vpda) proprioceptive sensory neurons respond to ...
Summary: We have interrogated the synaptic dialog that enables the bi-directional, homeostatic contr...
Our nervous system is made of billions of neurons that process sensory information and control behav...