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A Visual Description of the Dissection of the Cerebral Surface Vasculature and Associated Meninges and the Choroid Plexus from Rat Brain
Published on: November 14, 2012
Distribution of temperature changes and neurovascular coupling in rat brain following
Daniel Coman1,2,3, Basavaraju G Sanganahalli1,2,3, Lihong Jiang1,3
1Magnetic Resonance Research Center (MRRC), Yale University, New Haven, CT, USA.
Abstract:
(+/-)3,4-methylenedioxymethamphetamine (MDMA, "ecstasy") is an abused psychostimulant that produces strong monoaminergic stimulation and whole-body hyperthermia. MDMA-induced thermogenesis involves activation of uncoupling proteins (UCPs), primarily a type specific to skeletal muscle (UCP-3) and absent from the brain, although other UCP types are expressed in the brain (e.g. thalamus) and might contribute to thermogenesis. Since neuroimaging of brain temperature could provide insights into MDMA action, we measured spatial distributions of systemically administered MDMA-induced temperature changes and dynamics in rat cortex and subcortex using a novel magnetic resonance method, Biosensor Imaging of Redundant Deviation in Shifts (BIRDS), with an exogenous temperature-sensitive probe (thulium ion and macrocyclic chelate 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetramethyl-1,4,7,10-tetraacetate (DOTMA(4-))). The MDMA-induced temperature rise was greater in the cortex than in the subcortex (1.6 ± 0.4 °C versus 1.3 ± 0.4 °C) and occurred more rapidly (2.0 ± 0.2 °C/h versus 1.5 ± 0.2 °C/h). MDMA-induced temperature changes and dynamics in the cortex and body were correlated, although the body temperature exceeded the cortex temperature before and after MDMA. Temperature, neuronal activity, and blood flow (CBF) were measured simultaneously in the cortex and subcortex (i.e. thalamus) to investigate possible differences of MDMA-induced warming across brain regions. MDMA-induced warming correlated with increases in neuronal activity and blood flow in the cortex, suggesting that the normal neurovascular response to increased neural activity was maintained. In contrast to the cortex, a biphasic relationship was seen in the subcortex (i.e. thalamus), with a decline in CBF as temperature and neural activity rose, transitioning to a rise in CBF for temperature above 37 °C, suggesting that MDMA affected CBF and neurovascular coupling differently in subcortical regions. Considering that MDMA effects on CBF and heat dissipation (as well as potential heat generation) may vary regionally, neuroprotection may require different cooling strategies.
Insights
3,4-methylenedioxymethamphetamine (MDMA) causes brain hyperthermia. This study used novel MRI to map MDMA-induced temperature changes in rat brains, revealing regional differences in warming and neurovascular coupling.
Area of Science:
- Neuroscience
- Pharmacology
- Biophysics
Background:
- 3,4-methylenedioxymethamphetamine (MDMA, "ecstasy") is a psychostimulant known to cause hyperthermia.
- Uncoupling proteins (UCPs) are implicated in MDMA-induced thermogenesis, with UCP-3 in skeletal muscle and other UCPs in the brain.
- Understanding brain temperature changes is crucial for insights into MDMA's neurobiological effects.
Purpose of the Study:
- To measure and map MDMA-induced temperature changes and dynamics in specific rat brain regions (cortex and subcortex).
- To investigate the relationship between temperature, neuronal activity, and cerebral blood flow (CBF) in different brain areas following MDMA administration.
- To explore potential regional differences in MDMA's effects on neurovascular coupling.
Main Methods:
- Utilized a novel magnetic resonance imaging (MRI) technique, Biosensor Imaging of Redundant Deviation in Shifts (BIRDS).
- Employed an exogenous temperature-sensitive probe (thulium ion and DOTMA(4-)) for accurate temperature measurements.
- Simultaneously measured temperature, neuronal activity, and CBF in rat cortex and subcortex (thalamus).
Main Results:
- MDMA induced greater and faster temperature increases in the cortex compared to the subcortex.
- MDMA-induced warming in the cortex correlated with increased neuronal activity and CBF, indicating maintained neurovascular coupling.
- Subcortical (thalamus) warming showed a biphasic response in CBF, with an initial decline followed by an increase, suggesting altered neurovascular coupling.
Conclusions:
- MDMA-induced hyperthermia exhibits regional variations within the brain.
- Neurovascular coupling is differentially affected by MDMA in cortical versus subcortical regions.
- Tailored neuroprotective strategies may be necessary, considering the regional variability in MDMA's effects on brain temperature and blood flow.

