» Articles » PMID: 19753143

Mammalian Olfactory Receptors

Overview
Specialty Cell Biology
Date 2009 Sep 16
PMID 19753143
Citations 46
Authors
Affiliations
Soon will be listed here.
Abstract

Perception of chemical stimuli from the environment is essential to most animals; accordingly, they are equipped with a complex olfactory system capable of receiving a nearly unlimited number of odorous substances and pheromones. This enormous task is accomplished by olfactory sensory neurons (OSNs) arranged in several chemosensory compartments in the nose. The sensitive and selective responsiveness of OSNs to odorous molecules and pheromones is based on distinct receptors in their chemosensory membrane; consequently, olfactory receptors play a key role for a reliable recognition and an accurate processing of chemosensory information. They are therefore considered as key elements for an understanding of the principles and mechanisms underlying the sense of smell. The repertoire of olfactory receptors in mammals encompasses hundreds of different receptor types which are highly diverse and expressed in distinct subcompartments of the nose. Accordingly, they are categorized into several receptor families, including odorant receptors (ORs), vomeronasal receptors (V1Rs and V2Rs), trace amine-associated receptors (TAARs), formyl peptide receptors (FPRs), and the membrane guanylyl cyclase GC-D. This large and complex receptor repertoire is the basis for the enormous chemosensory capacity of the olfactory system.

Citing Articles

Olfactory Receptors and Aortic Aneurysm: Review of Disease Pathways.

Stougiannou T, Christodoulou K, Karangelis D J Clin Med. 2025; 13(24.

PMID: 39768700 PMC: 11727755. DOI: 10.3390/jcm13247778.


Evolution of Sensory Receptors.

Valencia-Montoya W, Pierce N, Bellono N Annu Rev Cell Dev Biol. 2024; 40(1):353-379.

PMID: 38985841 PMC: 11526382. DOI: 10.1146/annurev-cellbio-120123-112853.


Role of Ectopic Olfactory Receptors in the Regulation of the Cardiovascular-Kidney-Metabolic Axis.

Beito M, Ashraf S, Odogwu D, Harmancey R Life (Basel). 2024; 14(5).

PMID: 38792570 PMC: 11122380. DOI: 10.3390/life14050548.


Cortical field maps across human sensory cortex.

Brewer A, Barton B Front Comput Neurosci. 2024; 17:1232005.

PMID: 38164408 PMC: 10758003. DOI: 10.3389/fncom.2023.1232005.


From odor to oncology: non-canonical odorant receptors in cancer.

Park S, Greer P, Lee N Oncogene. 2023; 43(5):304-318.

PMID: 38087050 DOI: 10.1038/s41388-023-02908-y.


References
1.
Shi P, Zhang J . Comparative genomic analysis identifies an evolutionary shift of vomeronasal receptor gene repertoires in the vertebrate transition from water to land. Genome Res. 2007; 17(2):166-74. PMC: 1781348. DOI: 10.1101/gr.6040007. View

2.
Liu A, Zhang X, Stolovitzky G, Califano A, Firestein S . Motif-based construction of a functional map for mammalian olfactory receptors. Genomics. 2003; 81(5):443-56. DOI: 10.1016/s0888-7543(03)00022-3. View

3.
Niimura Y, Nei M . Evolutionary dynamics of olfactory receptor genes in fishes and tetrapods. Proc Natl Acad Sci U S A. 2005; 102(17):6039-44. PMC: 1087945. DOI: 10.1073/pnas.0501922102. View

4.
Vassar R, Ngai J, Axel R . Spatial segregation of odorant receptor expression in the mammalian olfactory epithelium. Cell. 1993; 74(2):309-18. DOI: 10.1016/0092-8674(93)90422-m. View

5.
Lewin A . Receptors of mammalian trace amines. AAPS J. 2006; 8(1):E138-45. PMC: 2751432. DOI: 10.1208/aapsj080116. View