» Articles » PMID: 17917106

Searching for the Ligands of Odorant Receptors

Overview
Journal Mol Neurobiol
Date 2007 Oct 6
PMID 17917106
Citations 16
Authors
Affiliations
Soon will be listed here.
Abstract

Through the sense of smell mammals can detect and discriminate between a large variety of odorants present in the surrounding environment. Odorants bind to a large repertoire of odorant receptors located in the cilia of olfactory sensory neurons of the nose. Each olfactory neuron expresses one single type of odorant receptor, and neurons expressing the same type of receptor project their axons to one or a few glomeruli in the olfactory bulb, creating a map of odorant receptor inputs. The information is then passed on to other regions of the brain, leading to odorant perception. To understand how the olfactory system discriminates between odorants, it is necessary to determine the odorant specificities of individual odorant receptors. These studies are complicated by the extremely large size of the odorant receptor family and by the poor functional expression of these receptors in heterologous cells. This article provides an overview of the methods that are currently being used to investigate odorant receptor-ligand interactions.

Citing Articles

Shedding light on human olfaction: Electrophysiological recordings from sensory neurons in acute slices of olfactory epithelium.

Hernandez-Clavijo A, Sanchez Trivino C, Guarneri G, Ricci C, Mantilla-Esparza F, Gonzalez-Velandia K iScience. 2023; 26(7):107186.

PMID: 37456832 PMC: 10345129. DOI: 10.1016/j.isci.2023.107186.


Sensory Transduction in Photoreceptors and Olfactory Sensory Neurons: Common Features and Distinct Characteristics.

Genovese F, Reisert J, Kefalov V Front Cell Neurosci. 2021; 15:761416.

PMID: 34690705 PMC: 8531253. DOI: 10.3389/fncel.2021.761416.


Is It Possible to Predict the Odor of a Molecule on the Basis of its Structure?.

Genva M, Kenne Kemene T, Deleu M, Lins L, Fauconnier M Int J Mol Sci. 2019; 20(12).

PMID: 31226833 PMC: 6627536. DOI: 10.3390/ijms20123018.


Sparsened neuronal activity in an optogenetically activated olfactory glomerulus.

Braubach O, Tombaz T, Geiller T, Homma R, Bozza T, Cohen L Sci Rep. 2018; 8(1):14955.

PMID: 30297851 PMC: 6175855. DOI: 10.1038/s41598-018-33021-w.


Evolutionary ecology of chemosensation and its role in sensory drive.

Yohe L, Brand P Curr Zool. 2018; 64(4):525-533.

PMID: 30108633 PMC: 6084603. DOI: 10.1093/cz/zoy048.


References
1.
Mizrahi A, Matsunami H, Katz L . An imaging-based approach to identify ligands for olfactory receptors. Neuropharmacology. 2004; 47(5):661-8. DOI: 10.1016/j.neuropharm.2004.07.020. View

2.
Abaffy T, Matsunami H, Luetje C . Functional analysis of a mammalian odorant receptor subfamily. J Neurochem. 2006; 97(5):1506-18. PMC: 4096696. DOI: 10.1111/j.1471-4159.2006.03859.x. View

3.
SENGUPTA P, Chou J, Bargmann C . odr-10 encodes a seven transmembrane domain olfactory receptor required for responses to the odorant diacetyl. Cell. 1996; 84(6):899-909. DOI: 10.1016/s0092-8674(00)81068-5. View

4.
Glusman G, Yanai I, Rubin I, Lancet D . The complete human olfactory subgenome. Genome Res. 2001; 11(5):685-702. DOI: 10.1101/gr.171001. View

5.
Larsson M, Domingos A, Jones W, Chiappe M, Amrein H, Vosshall L . Or83b encodes a broadly expressed odorant receptor essential for Drosophila olfaction. Neuron. 2004; 43(5):703-14. DOI: 10.1016/j.neuron.2004.08.019. View