| Literature DB >> 26733299 |
Myeounghoon Cha1, Kyuhong Lee2, Chulhyun Lee2, Jee-Hyun Cho2, Chaejoon Cheong2, Jin-Hun Sohn3, Bae Hwan Lee4.
Abstract
As imaging technology develops, magnetic resonance imaging (MRI) has furthered our understanding of brain function by clarifying the anatomical structure and generating functional imaging data related to information processing in pain conditions. Recent studies have reported that manganese (Mn(2+))-enhanced MRI (MEMRI) provides valuable information about the functions of the central nervous system. The aim of this study was to identify specific brain regions activated during noxious electric stimulation using high-resolution MEMRI. Male Sprague Dawley rats were divided into three groups: naïve, sham electrical stimulation, and noxious electric stimulation. Under urethane with α-chloralose mixture anesthesia, a catheter was placed in the external carotid artery to administrate 20% mannitol and manganese chloride (25mM MnCl2). Noxious electric stimulation (2Hz, 10V) was applied to the hind paw with a needle electrode. Stimulation-induced neuronal activation was detected using 4.7-T MRI. In response to noxious electrical stimulation, remarkable Mn(2+)-enhanced signals were observed in the agranular insular cortex, auditory cortex, primary somatosensory cortex of the hind limb, and granular and dysgranular insular cortex, which correspond to sensory tactile electric stimulus to the hindpaws. These results indicate that the combination of MEMRI with activity-induced Mn(2+)-dependent contrast can delineate functional areas in the rat brain.Entities:
Keywords: In vivo imaging; Manganese-enhanced MRI; Noxious electrical stimulation
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Year: 2015 PMID: 26733299 DOI: 10.1016/j.neulet.2015.11.027
Source DB: PubMed Journal: Neurosci Lett ISSN: 0304-3940 Impact factor: 3.046