Integration of Odor-Induced Activity of Kenyon Cells in an Electrotonically Compact Drosophila Mushroom Body Output Neuron (MBON)
Hafez, O.; Escribano, B.; Pielage, J.; Niebur, E.
Show abstract
The formation of an ecologically useful lasting memory requires that the brain has an accurate internal representation of the surrounding environment. In addition, it must have the ability to integrate a variety of different sensory stimuli and associate them with rewarding and aversive behavioral outcomes. Over the previous years, a number of studies have dissected the anatomy and elucidated some of the working principles of the Drosophila mushroom body (MB), the flys center for learning and memory. As a consequence, we now have a functional understanding of where and how in the MB sensory stimuli converge and are associated. However, the molecular and cellular dynamics at the critical synaptic intersection for this process, the Kenyon cell-mushroom body output neuron (KC-MBON) synapse, are largely unknown. Here, we introduce a first approach to understand this integration process and the physiological changes occurring at the KC-MBON synapse during Kenyon cell (KC) activation. We use the published connectome of the Drosophila MB to construct a functional computational model of the MBON-3 dendritic structure. We simulate synaptic input by individual KC-MBON synapses by current injections into precisely (m) identified local dendritic sections, and the input from a model population of KCs representing an odor by a spatially distributed cluster of current injections. By recording the effect of the simulated current injections on the membrane potential of the neuron, we show that the MBON-3 is electrotonically compact. This suggests that odor-induced MBON activity is likely governed by input strength while the positions of KC input synapses are largely irrelevant.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Analyzing the differences in olfactory bulb mitral cell spiking with ortho- and retronasal stimulation 96%
- Activity-mediated accumulation of potassium induces a switch in firing pattern and neuronal excitability type 96%
- Modelling the spatial and temporal constrains of the GABAergic influence on neuronal excitability 96%
Similar papers in this journal
Similar papers in this journal
- Dynamic gain decomposition reveals functional effects of dendrites, ion channels and input statistics in population coding 96%
- Nonlinear dendritic integration supports Up-Down states in single neurons 95%
- The input-output relation of primary nociceptive neurons is determined by the morphology of the peripheral nociceptive terminals 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.