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Knock-In Mice with NOP-eGFP Receptors Identify Receptor Cellular and Regional Localization
Akihiko Ozawa1, Gloria Brunori1, Daniela Mercatelli2
1Torrey Pines Institute for Molecular Studies, Port St Lucie, Florida, 34987.
Abstract:
The nociceptin/orphanin FQ (NOP) receptor, the fourth member of the opioid receptor family, is involved in many processes common to the opioid receptors including pain and drug abuse. To better characterize receptor location and trafficking, knock-in mice were created by inserting the gene encoding enhanced green fluorescent protein (eGFP) into the NOP receptor gene (Oprl1) and producing mice expressing a functional NOP-eGFP C-terminal fusion in place of the native NOP receptor. The NOP-eGFP receptor was present in brain of homozygous knock-in animals in concentrations somewhat higher than in wild-type mice and was functional when tested for stimulation of [(35)S]GTPγS binding in vitro and in patch-clamp electrophysiology in dorsal root ganglia (DRG) neurons and hippocampal slices. Inhibition of morphine analgesia was equivalent when tested in knock-in and wild-type mice. Imaging revealed detailed neuroanatomy in brain, spinal cord, and DRG and was generally consistent with in vitro autoradiographic imaging of receptor location. Multicolor immunohistochemistry identified cells coexpressing various spinal cord and DRG cellular markers, as well as coexpression with μ-opioid receptors in DRG and brain regions. Both in tissue slices and primary cultures, the NOP-eGFP receptors appear throughout the cell body and in processes. These knock-in mice have NOP receptors that function both in vitro and in vivo and appear to be an exceptional tool to study receptor neuroanatomy and correlate with NOP receptor function.
Significance Statement:
The NOP receptor, the fourth member of the opioid receptor family, is involved in pain, drug abuse, and a number of other CNS processes. The regional and cellular distribution has been difficult to determine due to lack of validated antibodies for immunohistochemical analysis. To provide a new tool for the investigation of receptor localization, we have produced knock-in mice with a fluorescent-tagged NOP receptor in place of the native NOP receptor. These knock-in mice have NOP receptors that function both in vitro and in vivo and have provided a detailed characterization of NOP receptors in brain, spinal cord, and DRG neurons. They appear to be an exceptional tool to study receptor neuroanatomy and correlate with NOP receptor function.
Insights
Researchers developed fluorescent nociceptin/orphanin FQ (NOP) receptor knock-in mice to study pain and drug abuse. These functional NOP-eGFP mice reveal detailed receptor distribution in the central nervous system, aiding future research.
Area of Science:
- Neuroscience
- Pharmacology
- Genetics
Background:
- The nociceptin/orphanin FQ (NOP) receptor is crucial for pain and drug abuse.
- Understanding NOP receptor distribution is vital, but challenging due to antibody limitations.
Purpose of the Study:
- To create a reliable tool for visualizing and studying NOP receptor localization and function.
- To characterize the neuroanatomy of NOP receptors in the central nervous system.
Main Methods:
- Generated knock-in mice expressing a functional NOP-eGFP fusion receptor.
- Utilized in vitro functional assays ([(35)S]GTPγS binding) and electrophysiology (patch-clamp).
- Performed in vivo imaging, autoradiography, and multicolor immunohistochemistry.
Main Results:
- NOP-eGFP receptors were functional in knock-in mice, with concentrations comparable to wild-type.
- Detailed neuroanatomical distribution was mapped in the brain, spinal cord, and dorsal root ganglia (DRG).
- Identified coexpression with other opioid receptors and cellular markers.
Conclusions:
- NOP-eGFP knock-in mice provide a powerful tool for studying NOP receptor neuroanatomy and function.
- The study offers a detailed characterization of NOP receptor distribution.
- This model facilitates correlation of receptor localization with NOP receptor-mediated processes like pain and drug abuse.
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