Aarhus University Hospital
Aarhus, 8200, Denmark
NCT Number: NCT06955650
The investigators will test a new positron-emitting radiotracer to determine whether it is suitable for studying the oxytocin receptor by positron emission tomography (PET) in humans. If suitable, the radiotracer will be used to study the brain and trigeminal nerve in several disorders.
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Notify Me35 year–50 year
All sexes
Interventional
Early Phase 1
Aarhus, 8200, Denmark
The nine amino acid peptide oxytocin was first isolated in 1927 and is primarily recognised for its hormonal role in uterine contractions, lactation, and social bonding. It has been used to induce labour via infusion since the 1950s and was previously approved for nasal application to aid lactation, although its effectiveness for this purpose has since been questioned. Oxytocin is also involved in the modulation of pain within the body. It has been localised to the human dorsal root and trigeminal ganglia, and the terminals of hypothalamic neurons containing oxytocin-specific carrier proteins have been found in the dorsal horn of the spinal trigeminal nucleus. Oxytocin receptors have been identified in regions of the spinal cord associated with pain transmission in both non-human primates and rodents. Animal studies have provided evidence of oxytocin's analgesic effects, particularly following direct administration into the spinal canal or brain cavities.
Intrathecal administration of oxytocin, as opposed to intravenous delivery, has shown effectiveness in reducing chronic low back pain in humans, potentially involving the body's own opioid system. While direct access to the trigeminal system is challenging due to the skull's structure, a promising alternative is the nasocerebral pathway. This pathway enables certain substances administered nasally to reach central nervous system structures and has been explored as a method for delivering treatments to regions affected by neurodegenerative conditions.
Preliminary research suggests that intranasal delivery of oxytocin leads to pain relief restricted to areas supplied by the trigeminal nerve in both animals and humans. This effect appears to result from the nasal route enabling oxytocin to reach trigeminal receptors directly. In preclinical models, nasal but not systemic administration produced a significant analgesic effect in the face. Similar outcomes were observed in individuals with chronic migraine, where nasal oxytocin administration led to a strong reduction in facial pain. These findings suggest that intranasal oxytocin may work by concentrating in the trigeminal nerve via the nasocerebral route.
The current study aims to evaluate how oxytocin distributed via nasal administration spreads in the body, using positron emission tomography (PET). This imaging technique will allow visualisation of how the compound moves through the body and whether it reaches relevant structures such as the trigeminal nerve. The goal is to better understand how intranasal oxytocin might enable targeted pain relief and potentially support its use in treating conditions related to the trigeminal system.
Healthy volunteers accepted: Yes
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
13N-Oxytocin is a newly developed radiotracer designed to bind selectively to oxytocin receptors. It is labelled with nitrogen-13, a short-lived positron-emitting isotope, and is administered intranasally to facilitate direct access to the central nervous system via the nasal and trigeminal pathways. This radiotracer is investigational and is not intended to exert pharmacological effects. It is used solely for imaging purposes to assess the distribution and potential receptor binding sites of oxytocin in the human brain and the trigeminal nerve.
Following administration, PET imaging is conducted using a hybrid PET/MRI scanner. The imaging procedure enables visualisation of the biodistribution of 13N-Oxytocin in vivo. The PET scan protocol includes dynamic image acquisition to track tracer uptake over time and is used in conjunction with MRI for precise anatomical localisation.
Time frame: Up to 14 days post-administration
Description: Radiation dosimetry will be calculated based on dynamic PET scan data using MIRDcalc software. Organ-specific absorbed radiation doses and effective dose will be reported based on ICRP Publication 103 guidelines.
Units of Measure: Millisievert (mSv), milligray (mGy)
Time frame: Up to 14 days post-administration
Description: The biodistribution of 13N-Oxytocin will be assessed using PET imaging in combination with MRI for anatomical localisation. Standardised Uptake Values (SUVs) will be calculated using PMOD software to quantify tracer uptake in predefined brain regions and the trigeminal nerve.
Units of Measure: Standardised Uptake Value (SUV)
Aarhus University Hospital
Other
First-in-man Imaging of a New PET Radiotracer for Oxytocin Receptors - Biodistribution and Radiation Dosimetry
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