Related Experiment Video
Updated: Jul 27, 2026

In Vivo SiRNA Transfection and Gene Knockdown in Spinal Cord via Rapid Noninvasive Lumbar Intrathecal Injections in Mice
Published on: March 22, 2014
Chronic opioid antagonist treatment selectively regulates trafficking and signaling proteins in mouse spinal cord
Chintan N Patel1, Vikram Rajashekara, Kaushal Patel
1Department of Pharmaceutical Sciences, St. John's University, Queens, New York 11439, USA.
Abstract:
Chronic opioid antagonist treatment produces functional supersensitivity and mu-opioid receptor (muOR) upregulation. Studies suggest a role for G-protein receptor kinases (GRKs) and dynamin (DYN), but not signaling proteins (e.g., G(ialpha2)), in regulation of muOR density following opioid treatment. Therefore, this study examined muOR density, agonist potency, and the abundance and gene expression of GRK-2, DYN-2, and G(ialpha2) in mouse spinal cord after opioid antagonist treatment. Mice were implanted with a 15 mg naltrexone (NTX) or placebo pellet and 8 days later pellets were removed. At 24 and 192 h following NTX treatment, mice were tested for spinal DAMGO analgesia. Other mice were sacrificed at 0 or 192 h following NTX treatment and G(ialpha2), GRK-2, and DYN-2 protein and mRNA levels determined. [(3)H] DAMGO binding studies were also conducted. Immediately following NTX treatment (0 h), muOR density was increased (+ approximately 135%), while 192 h following NTX treatment muOR density was unchanged. NTX increased DAMGO analgesic potency (3.1-fold) 24 h following NTX treatment, while there was no effect at 192 h. NTX decreased protein and mRNA abundance of GRK-2 (-32%; -48%) and DYN-2 (-25%; -29%) in spinal cord at 0 h. At 192 h following 8-day NTX treatment, GRK-2 protein and mRNA were at control levels, while DYN-2 protein remained decreased (-31%) even though DYN-2 mRNA had returned to control levels. G(ialpha2) was unaffected by NTX treatment. These data suggest that opioid antagonist-induced mu-receptor upregulation is mediated by changes in abundance and gene expression of proteins implicated in receptor trafficking, which may decrease constitutive receptor cycling.
Insights
Opioid antagonist treatment increases mu-opioid receptor (muOR) density and analgesic potency by altering the expression of receptor trafficking proteins like GRK-2 and dynamin-2 (DYN-2). These changes may reduce constitutive receptor cycling.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- Chronic opioid antagonist treatment leads to functional supersensitivity and mu-opioid receptor (muOR) upregulation.
- G-protein receptor kinases (GRKs) and dynamin (DYN) are implicated in muOR regulation, but not signaling proteins like G(ialpha2).
Purpose of the Study:
- To investigate the effects of opioid antagonist treatment on muOR density, agonist potency, and the expression of GRK-2, DYN-2, and G(ialpha2) in the mouse spinal cord.
Main Methods:
- Mice received naltrexone (NTX) or placebo pellets for 8 days.
- Assessed spinal DAMGO analgesia, muOR density via [(3)H] DAMGO binding, and protein/mRNA levels of GRK-2, DYN-2, and G(ialpha2) at 0 and 192 hours post-NTX removal.
Main Results:
- NTX treatment acutely increased muOR density (+135%) and DAMGO analgesic potency (3.1-fold at 24h), with normalization by 192h.
- NTX decreased GRK-2 and DYN-2 protein and mRNA levels at 0h.
- At 192h, GRK-2 returned to control levels, while DYN-2 protein remained decreased despite normalized mRNA.
Conclusions:
- Opioid antagonist-induced muOR upregulation involves changes in the expression of receptor trafficking proteins (GRK-2, DYN-2).
- These molecular alterations may contribute to reduced constitutive receptor cycling and functional supersensitivity.
Related Concept Videos
Opioid Receptors: Overview
Analgesia and Pain Management
Opioid Analgesics: Morphine and Other Natural Cogeners
Opioid Analgesics: Synthetic and Semisynthetic Opioids

