Correlation of Brain Magnetic Resonance Imaging Changes with Pallidal Manganese Concentrations in Rhesus Monkeys Following Subchronic Manganese Inhalation
Open Access
- 25 April 2006
- journal article
- research article
- Published by Oxford University Press (OUP) in Toxicological Sciences
- Vol. 92 (1) , 219-227
- https://doi.org/10.1093/toxsci/kfj209
Abstract
High-dose manganese exposure is associated with parkinsonism. Because manganese is paramagnetic, its relative distribution within the brain can be examined using magnetic resonance imaging (MRI). Herein, we present the first comprehensive study to use MRI, pallidal index (PI), and T1 relaxation rate (R1) in concert with chemical analysis to establish a direct association between MRI changes and pallidal manganese concentration in rhesus monkeys following subchronic inhalation of manganese sulfate (MnSO4). Monkeys exposed to MnSO4 at ≥ 0.06 mg Mn/m3 developed increased manganese concentrations in the globus pallidus, putamen, olfactory epithelium, olfactory bulb, and cerebellum. Manganese concentrations within the olfactory system of the MnSO4-exposed monkeys demonstrated a decreasing rostral-caudal concentration gradient, a finding consistent with olfactory transport of inhaled manganese. Marked MRI signal hyperintensities were seen within the olfactory bulb and the globus pallidus; however, comparable changes could not be discerned in the intervening tissue. The R1 and PI were correlated with the pallidal manganese concentration. However, increases in white matter manganese concentrations in MnSO4-exposed monkeys confounded the PI measurement and may lead to underestimation of pallidal manganese accumulation. Our results indicate that the R1 can be used to estimate regional brain manganese concentrations and may be a reliable biomarker of occupational manganese exposure. To our knowledge, this study is the first to provide evidence of direct olfactory transport of an inhaled metal in a nonhuman primate. Pallidal delivery of manganese, however, likely arises primarily from systemic delivery and not directly from olfactory transport.Keywords
This publication has 32 references indexed in Scilit:
- Sub-chronic inhalation of high concentrations of manganese sulfate induces lower airway pathology in rhesus monkeysRespiratory Research, 2005
- Whole Blood and Red Blood Cell Manganese Reflected Signal Intensities of T1‐Weighted Magnetic Resonance Images better than Plasma Manganese in Liver CirrhoticsJournal of Occupational Health, 2005
- Statistical mapping of functional olfactory connections of the rat brain in vivoNeuroImage, 2004
- Multiple risk factors for Parkinson's diseaseJournal of the Neurological Sciences, 2004
- Nasal Toxicity of Manganese Sulfate and Manganese Phosphate in Young Male Rats Following Subchronic (13-Week) Inhalation ExposureInhalation Toxicology, 2003
- Non Invasive Quantification of Manganese Deposits in the Rat Brain by Local Measurement of NMR Proton T1 Relaxation TimesNeuroToxicology, 2001
- Anesthetic protocol: propofol use in Rhesus macaques (Macaca mulatta) during magnetic resonance imaging with stereotactic head frame applicationBrain Research Protocols, 2001
- Direct Olfactory Transport of Inhaled Manganese (54MnCl2) to the Rat Brain: Toxicokinetic Investigations in a Unilateral Nasal Occlusion ModelToxicology and Applied Pharmacology, 2000
- Central olfactory connections in the macaque monkeyJournal of Comparative Neurology, 1994
- Manganese induced brain lesions inMacaca fascicularis as revealed by positron emission tomography and magnetic resonance imagingArchives of Toxicology, 1992