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Olfaction01:25

Olfaction

46.1K
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...
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Physiology of Smell and Olfactory Pathway01:20

Physiology of Smell and Olfactory Pathway

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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...
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Generalization, Discrimination, and Extinction01:24

Generalization, Discrimination, and Extinction

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Generalization, discrimination, and extinction are key concepts in operant conditioning that influence how behaviors are learned and maintained.
Generalization occurs when a behavior reinforced in one context is performed in similar situations. For instance, a student who studies diligently for calculus and receives excellent grades might apply the same study habits to psychology and history, expecting similar results. Generalization shows how learning in one setting can influence behavior in...
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Olfactory Receptors: Location and Structure01:03

Olfactory Receptors: Location and Structure

9.9K
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...
9.9K
G-Protein Gated Ion Channels01:21

G-Protein Gated Ion Channels

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GPCRs are primarily responsible for our sense of smell, taste, and vision.  The binding of a sensory stimulus activates GPCR to stimulate effector proteins, many of which are ion channels in the sensory organs. GPCRs modulate the opening and closing of the target ion channels either directly by binding them, or by releasing second messengers that activate these channels. As ions move across the membrane, the membrane potential is altered, which induces an appropriate response.
Sensory...
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Related Experiment Video

Updated: Oct 17, 2025

An Objective and Reproducible Test of Olfactory Learning and Discrimination in Mice
09:33

An Objective and Reproducible Test of Olfactory Learning and Discrimination in Mice

Published on: March 22, 2018

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Cortical feedback and gating in odor discrimination and generalization.

Gaia Tavoni1,2,3, David E Chen Kersen1,4, Vijay Balasubramanian1,2,4,5

  • 1Computational Neuroscience Initiative, University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.

Plos Computational Biology
|October 11, 2021
PubMed
Summary

Contextual changes in perception, particularly in the olfactory system, are explained by a new statistical model. This model uses central brain feedback to the olfactory bulb to explain how task demands influence odor responses for discrimination and generalization.

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Area of Science:

  • Neuroscience
  • Olfactory System Research
  • Computational Neuroscience

Background:

  • Context significantly influences sensory perception, especially in the olfactory system.
  • Task demands can alter cortical odor responses, affecting olfactory discrimination and generalization.

Purpose of the Study:

  • To propose a statistical mechanism explaining how context modulates olfactory perception.
  • To model the effects of central brain feedback and cortical gating on olfactory processing.

Main Methods:

  • Developed a simple statistical model incorporating unstructured feedback from the central brain to the olfactory bulb.
  • Incorporated selective cortical gating of sensory inputs into the model.

Main Results:

  • The model predicts that both convergence and divergence of cortical odor patterns increase with initial odor similarity.
  • This prediction aligns with findings from recent experimental studies.

Conclusions:

  • The proposed mechanism provides a framework for understanding context-dependent olfactory perception.
  • The theory predicts further experimental outcomes, including reversals of observed trends and effects in neurological conditions.