» Articles » PMID: 17686948

Adrenergic Modulation of Olfactory Bulb Circuitry Affects Odor Discrimination

Overview
Journal Learn Mem
Specialty Neurology
Date 2007 Aug 10
PMID 17686948
Citations 82
Authors
Affiliations
Soon will be listed here.
Abstract

A rodent's survival depends upon its ability to perceive odor cues necessary to guide mate selection, sexual behavior, foraging, territorial formation, and predator avoidance. Arguably, the need to discriminate odor cues in a complex olfactory environment requires a highly adaptable olfactory system. Indeed, it has been proposed that context-dependent modulation of the initial sensory relay could alter olfactory perception. Interestingly, 40% of the adrenergic innervation from the locus coeruleus, fibers that are activated by contextual cues, innervates the first relay station in the olfactory system (the main olfactory bulb). Here we utilize restricted pharmacological inhibition of olfactory bulb noradrenergic receptors in awake-behaving animals. We show that combined blockade of alpha and beta adrenergic receptors does not impair two-odor discrimination behavior per se but does impair the ability to discriminate perceptually similar odors. Thus, contextual cues conveyed by noradrenergic fibers alter processing before the second synapse in the olfactory cortex, resulting in tuning of the ability to discriminate between similar odors.

Citing Articles

Noradrenergic inputs from the locus coeruleus to anterior piriform cortex and the olfactory bulb modulate olfactory outputs.

Geng C, Li R, Li S, Liu P, Peng Y, Liu C Nat Commun. 2025; 16(1):260.

PMID: 39747920 PMC: 11697270. DOI: 10.1038/s41467-024-55609-9.


Value-related learning in the olfactory bulb occurs through pathway-dependent perisomatic inhibition of mitral cells.

Lindeman S, Fu X, Reinert J, Fukunaga I PLoS Biol. 2024; 22(3):e3002536.

PMID: 38427708 PMC: 10936853. DOI: 10.1371/journal.pbio.3002536.


Activation of Beta-adrenergic Receptors Upregulates the Signal-to-Noise Ratio of Auditory Input in the Medial Prefrontal Cortex and Mediates Auditory Fear Conditioning.

Xie H, Tian Y, Li Z, Wang K, Li R, Yi S Mol Neurobiol. 2023; 61(3):1833-1844.

PMID: 37787950 DOI: 10.1007/s12035-023-03667-3.


Robust odor identification in novel olfactory environments in mice.

Li Y, Swerdloff M, She T, Rahman A, Sharma N, Shah R Nat Commun. 2023; 14(1):673.

PMID: 36781878 PMC: 9925783. DOI: 10.1038/s41467-023-36346-x.


Rapid Effects of Vagus Nerve Stimulation on Sensory Processing Through Activation of Neuromodulatory Systems.

Rodenkirch C, Carmel J, Wang Q Front Neurosci. 2022; 16:922424.

PMID: 35864985 PMC: 9294458. DOI: 10.3389/fnins.2022.922424.


References
1.
Trombley P, Shepherd G . Noradrenergic inhibition of synaptic transmission between mitral and granule cells in mammalian olfactory bulb cultures. J Neurosci. 1992; 12(10):3985-91. PMC: 6575954. View

2.
Shang Y, Dluzen D . Nisoxetine infusion into the olfactory bulb enhances the capacity for male rats to identify conspecifics. Neuroscience. 2001; 104(4):957-64. DOI: 10.1016/s0306-4522(01)00120-8. View

3.
Cometto-Muniz J, Cain W, Abraham M . Quantification of chemical vapors in chemosensory research. Chem Senses. 2003; 28(6):467-77. DOI: 10.1093/chemse/28.6.467. View

4.
Zhang J, Okutani F, Inoue S, Kaba H . Activation of the cyclic AMP response element-binding protein signaling pathway in the olfactory bulb is required for the acquisition of olfactory aversive learning in young rats. Neuroscience. 2003; 117(3):707-13. DOI: 10.1016/s0306-4522(02)00962-4. View

5.
Davis R . Olfactory learning. Neuron. 2004; 44(1):31-48. DOI: 10.1016/j.neuron.2004.09.008. View