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.

NMR in Biomedicine
|August 20, 2015
PubMed

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.

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