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Updated: Jun 5, 2026

Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Prolactin is a peripheral marker of manganese neurotoxicity
A P Marreilha Dos Santos1, M Lopes Santos, Maria C Batoréu
1i-Med.UL, Faculty of Pharmacy, University of Lisbon, Lisbon, Portugal. apsantos@ff.ul.pt
Unlabelled:
Excessive exposure to Mn induces neurotoxicity, referred to as manganism. Exposure assessment relies on Mn blood and urine analyses, both of which show poor correlation to exposure. Accordingly, there is a critical need for better surrogate biomarkers of Mn exposure. The aim of this study was to examine the relationship between Mn exposure and early indicators of neurotoxicity, with particular emphasis on peripheral biomarkers. Male Wistar rats (180-200g) were injected intraperitoneally with 4 or 8 doses of Mn (10mg/kg). Mn exposure was evaluated by analysis of Mn levels in brain and blood along with biochemical end-points (see below).
Results:
Brain Mn levels were significantly increased both after 4 and 8 doses of Mn compared with controls (p<0.001). Blood levels failed to reflect a dose-dependent increase in brain Mn, with only the 8-dose-treated group showing significant differences (p<0.001). Brain glutathione (GSH) levels were significantly decreased in the 8-dose-treated animals (p<0.001). A significant and dose-dependent increase in prolactin levels was found for both treated groups (p<0.001) compared to controls. In addition, a decrease in motor activity was observed in the 8-dose-treated group compared to controls.
Conclusions:
(1) The present study demonstrates that peripheral blood level is a poor indicator of Mn brain accumulation and exposure; (2) Mn reduces GSH brain levels, likely reflecting oxidative stress; (3) Mn increases blood prolactin levels, indicating changes in the integrity of the dopaminergic system. Taken together these results suggest that peripheral prolactin levels may serve as reliable predictive biomarkers of Mn neurotoxicity.
Insights
Manganese (Mn) exposure causes neurotoxicity. Blood Mn levels poorly indicate brain accumulation, but increased blood prolactin may predict Mn-induced neurotoxicity.
Area of Science:
- Neurotoxicology
- Biomarker Discovery
- Environmental Health
Background:
- Excessive manganese (Mn) exposure leads to neurotoxicity, known as manganism.
- Current exposure assessments using blood and urine Mn levels show poor correlation with actual exposure.
- There is a critical need for reliable biomarkers to assess Mn exposure and its neurotoxic effects.
Purpose of the Study:
- To investigate the relationship between Mn exposure and early neurotoxicity indicators in rats.
- To evaluate peripheral biomarkers as potential surrogates for Mn exposure and neurotoxicity.
Main Methods:
- Male Wistar rats were administered 4 or 8 doses of Mn (10mg/kg) intraperitoneally.
- Mn levels in brain and blood were analyzed.
- Biochemical endpoints, including brain glutathione (GSH) and blood prolactin levels, were measured. Motor activity was also assessed.
Main Results:
- Brain Mn levels significantly increased with Mn administration.
- Blood Mn levels did not accurately reflect brain Mn accumulation.
- A significant, dose-dependent increase in blood prolactin and a decrease in brain GSH were observed in Mn-exposed rats. Motor activity was reduced in the high-dose group.
Conclusions:
- Peripheral blood Mn levels are poor indicators of Mn brain burden.
- Manganese exposure reduces brain glutathione, suggesting oxidative stress.
- Increased blood prolactin levels correlate with Mn exposure and dopaminergic system changes, indicating potential as a predictive biomarker for Mn neurotoxicity.
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