Spike frequency adaptation facilitates the encoding of input gradient in insect olfactory projection neurons. 2023

Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
School of Engineering, The University of Tokyo, Tokyo, 113-8656, Japan.

The olfactory system in insects has evolved to process the dynamic changes in the concentration of food odors or sex pheromones to localize the nutrients or conspecific mating partners. Experimental studies have suggested that projection neurons (PNs) in insects encode not only the stimulus intensity but also its rate-of-change (input gradient). In this study, we aim to develop a simple computational model for a PN to understand the mechanism underlying the coding of the rate-of-change information. We show that the spike frequency adaptation is a potential key mechanism for reproducing the phasic response pattern of the PN in Drosophila. We also demonstrate that this adaptation mechanism enables the PN to encode the rate-of-change of the input firing rate. Finally, our model predicts that the PN exhibits the intensity-invariant response for the pulse and ramp odor stimulus. These results suggest that the developed model is useful for investigating the coding principle underlying olfactory information processing in insects.

UI MeSH Term Description Entries
D007313 Insecta Members of the phylum ARTHROPODA composed or organisms characterized by division into three parts: head, thorax, and abdomen. They are the dominant group of animals on earth with several hundred thousand different kinds. Three orders, HEMIPTERA; DIPTERA; and SIPHONAPTERA; are of medical interest in that they cause disease in humans and animals. (From Borror et al., An Introduction to the Study of Insects, 4th ed, p1). Insects,Insect
D007395 Interneurons Most generally any NEURONS which are not motor or sensory. Interneurons may also refer to neurons whose AXONS remain within a particular brain region in contrast to projection neurons, which have axons projecting to other brain regions. Intercalated Neurons,Intercalated Neuron,Interneuron,Neuron, Intercalated,Neurons, Intercalated
D009812 Odorants The volatile portions of chemical substances perceptible by the sense of smell. Odors,Aroma,Fragrance,Scents,Aromas,Fragrances,Odor,Odorant,Scent
D009833 Olfactory Pathways Set of nerve fibers conducting impulses from olfactory receptors to the cerebral cortex. It includes the OLFACTORY NERVE; OLFACTORY BULB; OLFACTORY TRACT; OLFACTORY TUBERCLE; ANTERIOR PERFORATED SUBSTANCE; and OLFACTORY CORTEX. Olfactory Pathway,Pathway, Olfactory,Pathways, Olfactory
D004330 Drosophila A genus of small, two-winged flies containing approximately 900 described species. These organisms are the most extensively studied of all genera from the standpoint of genetics and cytology. Fruit Fly, Drosophila,Drosophila Fruit Flies,Drosophila Fruit Fly,Drosophilas,Flies, Drosophila Fruit,Fly, Drosophila Fruit,Fruit Flies, Drosophila
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D012903 Smell The ability to detect scents or odors, such as the function of OLFACTORY RECEPTOR NEURONS. Olfaction,Sense of Smell,Smell Sense
D018034 Olfactory Receptor Neurons Neurons in the OLFACTORY EPITHELIUM with proteins (RECEPTORS, ODORANT) that bind, and thus detect, odorants. These neurons send their DENDRITES to the surface of the epithelium with the odorant receptors residing in the apical non-motile cilia. Their unmyelinated AXONS synapse in the OLFACTORY BULB of the BRAIN. Neurons, Olfactory Receptor,Olfactory Receptor Cells,Olfactory Receptor Neuron,Olfactory Sensory Cells,Olfactory Sensory Cilia,Olfactory Sensory Neurons,Cell, Olfactory Receptor,Cell, Olfactory Sensory,Cells, Olfactory Receptor,Cells, Olfactory Sensory,Cilia, Olfactory Sensory,Cilias, Olfactory Sensory,Neuron, Olfactory Receptor,Neuron, Olfactory Sensory,Neurons, Olfactory Sensory,Olfactory Receptor Cell,Olfactory Sensory Cell,Olfactory Sensory Cilias,Olfactory Sensory Neuron,Receptor Cell, Olfactory,Receptor Cells, Olfactory,Receptor Neuron, Olfactory,Receptor Neurons, Olfactory,Sensory Cell, Olfactory,Sensory Cells, Olfactory,Sensory Cilia, Olfactory,Sensory Cilias, Olfactory,Sensory Neuron, Olfactory,Sensory Neurons, Olfactory

Related Publications

Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
August 2017, Experimental neurobiology,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
August 2004, The Journal of neuroscience : the official journal of the Society for Neuroscience,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
December 2009, Journal of neurophysiology,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
April 1981, The Journal of pharmacology and experimental therapeutics,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
August 2019, eLife,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
August 2003, Neuroscience research,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
August 2003, Journal of neurophysiology,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
January 2023, Frontiers in neuroscience,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
January 2020, Frontiers in neural circuits,
Hayeong Lee, and Lubomir Kostal, and Ryohei Kanzaki, and Ryota Kobayashi
January 2015, PloS one,
Copied contents to your clipboard!