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Published on: July 12, 2012
Oral manganese as an MRI contrast agent for the detection of nociceptive activity
Kathleen E Jacobs1, Deepak Behera, Jarrett Rosenberg
1Department of Radiology, Stanford University, Stanford, CA 94305, USA.
Abstract:
The ability of divalent manganese to enter neurons via calcium channels makes manganese an excellent MRI contrast agent for the imaging of nociception, the afferent neuronal encoding of pain perception. There is growing evidence that nociceptive neurons possess increased expression and activity of calcium channels, which would allow for the selective accumulation of manganese at these sites. In this study, we show that oral manganese chloride leads to increased enhancement of peripheral nerves involved in nociception on T(1)-weighted MRI. Oral rather than intravenous administration was chosen for its potentially better safety profile, making it a better candidate for clinical translation with important applications, such as pain diagnosis, therapy and research. The spared nerve injury (SNI) model of neuropathic pain was used for the purposes of this study. SNI rats were given, sequentially, increasing amounts of manganese chloride (lowest, 2.29 mg/100 g weight; highest, 20.6 mg/100 g weight) with alanine and vitamin D(3) by oral gavage. Compared with controls, SNI rats demonstrated increased signal-to-background ratios on T(1)-weighted fast spin echo MRI, which was confirmed by and correlated strongly with spectrometry measurements of nerve manganese concentration. We also found the difference between SNI and control rats to be greater at 48 h than at 24 h after dosing, indicating increased manganese retention in addition to increased manganese uptake in nociceptive nerves. This study demonstrates that oral manganese is a viable method for the imaging of nerves associated with increased nociceptive activity.
Insights
Oral manganese chloride enhances MRI imaging of nerves involved in pain perception. This method shows increased manganese uptake and retention in nociceptive nerves, offering a safer approach for pain diagnosis and research.
Area of Science:
- Neuroscience
- Medical Imaging
- Pharmacology
Background:
- Divalent manganese enters neurons via calcium channels, enabling its use as an MRI contrast agent.
- Nociceptive neurons show increased calcium channel expression and activity, suggesting selective manganese accumulation.
- Neuropathic pain imaging requires novel contrast agents with improved safety profiles.
Purpose of the Study:
- To investigate the efficacy of oral manganese chloride as an MRI contrast agent for imaging nociception.
- To evaluate manganese uptake and retention in peripheral nerves associated with neuropathic pain.
- To assess the safety and clinical translatability of oral manganese administration for pain research.
Main Methods:
- Utilized the spared nerve injury (SNI) rat model of neuropathic pain.
- Administered increasing doses of oral manganese chloride with alanine and vitamin D(3).
- Performed T(1)-weighted fast spin echo MRI and spectrometry to quantify nerve manganese concentration.
Main Results:
- SNI rats showed significantly increased signal-to-background ratios on MRI compared to controls.
- MRI findings strongly correlated with spectrometry measurements of nerve manganese concentration.
- Increased manganese retention was observed in SNI rats at 48 hours post-dosing compared to 24 hours.
Conclusions:
- Oral manganese chloride is a viable method for enhancing MRI visualization of nerves involved in nociception.
- The selective uptake and retention of manganese in nociceptive nerves support its potential as a pain imaging agent.
- Oral administration offers a safer alternative for clinical translation in pain diagnosis, therapy, and research.
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