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Updated: Sep 26, 2026

Assaying Surface Expression of Chemosensory Receptors in Heterologous Cells
Published on: February 23, 2011
Endoplasmic reticulum retention, degradation, and aggregation of olfactory G-protein coupled receptors
Min Lu1, Fernando Echeverri, Bryan D Moyer
1Senomyx, Inc., 11099 North Torrey Pines Road, La Jolla, CA 92037, USA.
Abstract:
The mammalian olfactory G-protein coupled receptor family is comprised of hundreds of proteins that mediate odorant binding and initiate signal transduction cascades leading to the sensation of smell. However, efforts to functionally express olfactory receptors and identify specific odorant ligand-olfactory receptor interactions have been severely impeded by poor olfactory receptor surface expression in heterologous systems. Therefore, experiments were performed to elucidate the cellular mechanism(s) responsible for inefficient olfactory receptor cell surface expression. We determined that the mouse odorant receptors mI7 and mOREG are not selected for export from the ER and therefore are not detectable at the Golgi apparatus or plasma membrane. Specifically, olfactory receptors interact with the ER chaperone calnexin, are excluded from ER export sites, do not accumulate in ER-Golgi transport intermediates at 15 degrees C, and contain endoglycosidase H-sensitive oligosaccharides, consistent with olfactory receptor exclusion from post-ER compartments. A labile pool of ER-retained olfactory receptors are post-translationally modified by polyubiquitination and targeted for degradation by the proteasome. In addition, olfactory receptors are sequestered into ER aggregates that are degraded by autophagy. Collectively, these data demonstrate that poor surface expression of olfactory receptors in heterologous cells is attributable to a combination of ER retention due to inefficient folding and poor coupling to ER export machinery, aggregation, and degradation via both proteasomal and autophagic pathways.
Insights
Mammalian olfactory receptors fail to reach the cell surface due to ER retention and degradation. This study uncovers the cellular mechanisms behind poor olfactory receptor expression, impacting smell research.
Area of Science:
- Molecular Biology
- Cell Biology
- Neuroscience
Background:
- Mammalian olfactory G-protein coupled receptors (GPCRs) are crucial for smell perception.
- Functional expression of olfactory receptors (ORs) in heterologous systems is hindered by poor surface localization.
Purpose of the Study:
- To investigate the cellular mechanisms responsible for inefficient olfactory receptor cell surface expression.
- To identify factors contributing to the low surface expression of olfactory receptors in heterologous systems.
Main Methods:
- Utilized mouse odorant receptors mI7 and mOREG for experiments.
- Investigated interactions with ER chaperone calnexin.
- Analyzed ER export site exclusion, ER-Golgi transport, and oligosaccharide modifications.
- Assessed proteasomal and autophagic degradation pathways.
Main Results:
- Olfactory receptors mI7 and mOREG are retained in the endoplasmic reticulum (ER).
- ORs interact with calnexin, are excluded from ER export sites, and show ER-localized oligosaccharides.
- ER-retained ORs undergo polyubiquitination and proteasomal degradation.
- ORs form ER aggregates degraded via autophagy.
Conclusions:
- Poor surface expression of olfactory receptors is due to ER retention, inefficient folding, and impaired ER export.
- Aggregation and subsequent degradation by proteasomal and autophagic pathways further reduce surface expression.
- Understanding these mechanisms is vital for advancing olfactory receptor research and drug discovery.
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