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High-resolution Spatiotemporal Analysis of Receptor Dynamics by Single-molecule Fluorescence Microscopy
Published on: July 25, 2014
Real-time imaging of mu opioid receptors by total internal reflection fluorescence microscopy
Cristina Roman-Vendrell1, Guillermo Ariel Yudowski
1Department of Anatomy and Neurobiology, School of Medicine, University of Puerto Rico, San Juan, Puerto Rico.
Abstract:
Receptor trafficking and signaling are intimately linked, especially in the Mu opioid receptor (MOR) where ligand-dependent endocytosis and recycling have been associated with opioid tolerance and dependence. Ligands of MOR can induce receptor endocytosis and recycling within minutes of exposure in heterologous systems and cultured neurons. Endocytosis removes desensitized receptors after their activation from the plasma membrane, while recycling promotes resensitization by delivering functional receptors to the cell surface. These rapid mechanisms can escape traditional analytical methods where only snapshots are obtained from highly dynamic events.Total internal reflection fluorescence (TIRF) microscopy is a powerful tool that can be used to investigate, in real time, surface trafficking events at the single molecule level. The restricted excitation of fluorophores located at or near the plasma membrane in combination with high sensitivity quantitative cameras makes it possible to record and analyze individual endocytic and recycling event in real time. In this chapter, we describe a TIRF microscopy protocol to investigate in real time, the ligand-dependent MOR trafficking in Human Embryonic Kidney 293 cells and dissociated striatal neuronal cultures. This approach can provide unique spatio-temporal resolution to understand the fundamental events controlling MOR trafficking at the plasma membrane.
Insights
This study explores Mu opioid receptor (MOR) trafficking using total internal reflection fluorescence (TIRF) microscopy. The research visualizes real-time, ligand-dependent receptor endocytosis and recycling, crucial for understanding opioid tolerance and dependence.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Receptor trafficking and signaling are closely linked, particularly for the Mu opioid receptor (MOR).
- Ligand-dependent endocytosis and recycling of MOR are implicated in opioid tolerance and dependence.
- Rapid receptor dynamics challenge traditional analytical methods.
Purpose of the Study:
- To describe a Total Internal Reflection Fluorescence (TIRF) microscopy protocol.
- To investigate ligand-dependent MOR trafficking in real time.
- To understand fundamental events controlling MOR trafficking at the plasma membrane.
Main Methods:
- Utilizing Total Internal Reflection Fluorescence (TIRF) microscopy.
- Analyzing single-molecule, real-time surface trafficking events.
- Applying the protocol to Human Embryonic Kidney 293 cells and striatal neuronal cultures.
Main Results:
- TIRF microscopy allows real-time visualization of individual endocytic and recycling events.
- The method provides high spatio-temporal resolution of MOR trafficking.
- Ligand-dependent MOR trafficking dynamics at the plasma membrane can be studied.
Conclusions:
- TIRF microscopy is a powerful tool for studying rapid, dynamic receptor trafficking events.
- This approach offers unique insights into the mechanisms of opioid receptor regulation.
- Understanding MOR trafficking is key to addressing opioid tolerance and dependence.
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