Our sense of smell has a powerful effect on our behavior and emotions. Aromas can evoke vivid memories of the past or warn us of a smoldering fire. Yet to neuroscientists, smell remains the most mysterious of our five senses.
Once the nose detects something, how does the brain determine what it means? Scientists aren鈥檛 sure. To help them figure it out, 黑料吃瓜资源 (CSHL) investigators Florin Albeanu, Alexei Koulakov, and Anthony Zador have created an extensive new map of the brain鈥檚 olfactory circuits.
鈥淚t鈥檚 an open question at this point, how exactly we process smell,鈥 says Albeanu. 鈥淲hat are the features in the odor space that the brain is extracting and using to create percepts of olfactory objects? And exactly what are the mechanisms in the brain?鈥
Because previous studies of the olfactory cortex failed to find any logical organization among neurons there, many neuroscientists suspected information about odors was relayed randomly through the brain. But those studies examined connectivity patterns of just a few dozen neurons.
Using new DNA-based brain-mapping technologies developed in Zador鈥檚 lab, called MAPseq and BARseq, the CSHL team can trace the paths of more individual olfactory-processing neurons than ever before鈥攖housands within the brain of a single mouse. Thanks to their work, scientists may be able to make sense of the olfactory circuitry and its underlying logic.
The new map charts the way sensory information is routed between olfactory-processing parts of the brain. These include the olfactory bulb, which receives sensory information from the nose, the primary smell-processing hub called the piriform cortex, and several other brain regions that receive inputs from the olfactory bulb.
Within the piriform cortex, the team found that neurons toward the front of the brain had different connectivity patterns than those in the back. 鈥淎s you move along this axis, you see the neurons鈥 projection pattern gradually changing in terms of how it broadcasts information into other brain regions,鈥 Koulakov says. 鈥淭hat is synchronized with the way the olfactory bulb projects to those brain regions, as well as to the same locations within the piriform cortex,鈥 he explains. Each of these parallel 鈥渃ircuit motifs鈥 may process different aspects of odor information.
This recalls what neuroscientists have found in other parts of the brain where neurons鈥 connections and locations correspond to specific features of sensory inputs like sights and sounds. In the auditory system, neurons鈥 position along an axis relates to the sound frequencies we hear. Similarly, in the visual system, neurons鈥 position conveys information about a seen object鈥檚 location, among other characteristics, and different neural circuits are tuned to objects鈥 locations and identities (鈥渨here鈥 vs. 鈥渨hat鈥 pathways).
Researchers say the olfactory map could offer inroads to 鈥渢he last frontier of sensory neuroscience.鈥 They suggest it points toward the existence of different neural circuits dedicated to assessing the identity of a smell, how pleasant it is, or where it鈥檚 coming from, and how to act on it. 鈥淚t puts us and the field in a way, in a very different state of mind,鈥 Albeanu says. 鈥淚t鈥檚 a step toward understanding the nature of olfactory processing.鈥
Written by: Jennifer Michalowski, Science Writer | [email protected] | 516-367-8455
Funding
National Institutes of Health The BRAIN Initiative, NIH Director鈥檚 Transformative Research Awards, Simons Foundation
Citation
Chen, Y., et al., 鈥淗igh-throughput sequencing of single neuron projections reveals spatial organization in the olfactory cortex,鈥 Cell, October 27, 2022. DOI: