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Related Concept Videos

Olfaction01:25

Olfaction

The sense of smell is achieved through the activities of the olfactory system. It starts when an airborne odorant enters the nasal cavity and reaches olfactory epithelium (OE). The OE is protected by a thin layer of mucus, which also serves the purpose of dissolving more complex compounds into simpler chemical odorants. The size of the OE and the density of sensory neurons varies among species; in humans, the OE is only about 9-10 cm2.
The olfactory receptors are embedded in the cilia of the...
Physiology of Smell and Olfactory Pathway01:20

Physiology of Smell and Olfactory Pathway

Humans detect odors with the help of specialized cells located in the upper part of the nasal cavity, called olfactory receptor neurons (ORNs). ORNs possess hair-like structures called cilia, which are receptive to sensations from the inhaled air. When an odorant molecule binds to a specific receptor on the cell of the cilia, it leads to a series of events that ultimately cause the ORN to send electrical signals to the olfactory bulb in the brain through the olfactory nerves.
The olfactory...
Olfactory Receptors: Location and Structure01:03

Olfactory Receptors: Location and Structure

The process of olfaction, also known as the sense of smell, is a sophisticated chemical response system. The specialized sensory neurons that facilitate this process, known as olfactory receptor neurons, are situated in an upper segment of the nasal cavity, known as the olfactory epithelium. Olfactory sensory neurons are bipolar, with their dendrites extending from the epithelium's apex into the mucus that lines the nasal cavity. Airborne molecules, when inhaled, traverse the olfactory...
Motor and Sensory Areas of the Cortex01:14

Motor and Sensory Areas of the Cortex

The cerebral cortex, the brain's outermost layer, is pivotal in processing complex cognitive tasks, emotions, and various sensory inputs and executing voluntary motor activities. This intricate structure is divided into three primary functional areas: the motor areas, sensory areas, and association areas.
Motor Areas
The motor areas located in the frontal lobe are central to controlling voluntary movements. This region is further subdivided into the primary motor cortex and the premotor cortex.
Sensory Perception: Organization of the Somatosensory System01:11

Sensory Perception: Organization of the Somatosensory System

The somatosensory system is the central and peripheral nervous system component that senses and processes touch, pressure, pain, temperature, and body position or proprioception. The process of sensation takes place at three levels:
The receptor level:
The receptor level is the first stage of sensation. It involves the detection of a stimulus by specialized sensory receptors. The stimulus must arrive within the receptor's receptive field. Next, the receptor converts the energy of the stimulus...
Visual System01:26

Visual System

Light enters the eye through the cornea, a transparent, dome-shaped surface covering the surface of the eyeball that helps to direct and focus incoming light. This light is then channeled toward the pupil, an adjustable opening whose size is controlled by the iris. The iris, a pigmented muscle, regulates the amount of light entering the eye by contracting or dilating the pupil, thereby ensuring optimal light levels for clear vision.
Once through the pupil, the light passes through the lens, a...

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Related Experiment Video

Updated: May 28, 2026

Imaging Odor-Evoked Activities in the Mouse Olfactory Bulb using Optical Reflectance and Autofluorescence Signals
08:30

Imaging Odor-Evoked Activities in the Mouse Olfactory Bulb using Optical Reflectance and Autofluorescence Signals

Published on: October 31, 2011

Continuous Spatial Representations in the Olfactory Bulb may Reflect Perceptual Categories.

Benjamin Auffarth1, Agustín Gutierrez-Galvez, Santiago Marco

  • 1Department of Computational Biology, KTH Royal Institute of Technology Stockholm, Sweden.

Frontiers in Systems Neuroscience
|October 21, 2011
PubMed
Summary

Odor perception in rats reveals that the olfactory bulb encodes odor quality spatially. This suggests that perceptual dimensions of smell are represented similarly across species, with spatial codes being more informative than population codes.

Keywords:
glomerulimemory organizationodor qualityolfactionolfactory bulbperceptionpopulation codingspatial coding

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The Olfactory System as a Model to Study Axonal Growth Patterns and Morphology In Vivo
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Quadruple Immunostaining of the Olfactory Bulb for Visualization of Olfactory Sensory Axon Molecular Identity Codes
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Quadruple Immunostaining of the Olfactory Bulb for Visualization of Olfactory Sensory Axon Molecular Identity Codes

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Related Experiment Videos

Last Updated: May 28, 2026

Imaging Odor-Evoked Activities in the Mouse Olfactory Bulb using Optical Reflectance and Autofluorescence Signals
08:30

Imaging Odor-Evoked Activities in the Mouse Olfactory Bulb using Optical Reflectance and Autofluorescence Signals

Published on: October 31, 2011

The Olfactory System as a Model to Study Axonal Growth Patterns and Morphology In Vivo
08:29

The Olfactory System as a Model to Study Axonal Growth Patterns and Morphology In Vivo

Published on: October 30, 2014

Quadruple Immunostaining of the Olfactory Bulb for Visualization of Olfactory Sensory Axon Molecular Identity Codes
06:32

Quadruple Immunostaining of the Olfactory Bulb for Visualization of Olfactory Sensory Axon Molecular Identity Codes

Published on: June 5, 2017

Area of Science:

  • Neuroscience
  • Olfactory System Research
  • Sensory Processing

Background:

  • The olfactory bulb is crucial for processing odors, filtering and organizing sensory information.
  • Previous research suggested perceptual odor organization in the piriform cortex, but recent studies point to the olfactory bulb's role.

Purpose of the Study:

  • To investigate how odor recognition in the rat olfactory bulb translates into a spatial map of odor quality.
  • To compare spatial and population codes with human perceptual similarity reports.

Main Methods:

  • Statistical analysis of 2-deoxyglucose images from the glomerular layer of the rat olfactory bulb.
  • Principal component analysis to identify odor representation dimensions.
  • Comparison of spatial and population codes with human perceptual data.

Main Results:

  • Confirmed the first principal component relates to pleasantness, while higher components remain unclear.
  • Identified continuous spatial representations for perceptual odor categories within the olfactory bulb.
  • Spatial representations provided a better match to human perceptual similarity than population codes.

Conclusions:

  • Perceptual odor categories may be embedded in glomerular activations within the olfactory bulb.
  • Spatial coding in the olfactory bulb appears to underlie olfactory perception.
  • Human and rat olfactory coding share related perceptual dimensions, suggesting conserved mechanisms.