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Updated: Oct 31, 2025

3D-Neuronavigation In Vivo Through a Patient's Brain During a Spontaneous Migraine Headache
Published on: June 2, 2014
Hypothalamic functional MRI activity in the initiation phase of spontaneous and glyceryl trinitrate-induced migraine
Willebrordus P J van Oosterhout1,2, Anne M van Opstal3, Guus G Schoonman1,4
1Department of Neurology, Leiden University Medical Center, Leiden, The Netherlands.
Abstract:
The hypothalamus has been suggested to be important in the initiation cascade of migraine attacks based on clinical and biochemical observations. Previous imaging studies could not disentangle the changes due to the attack and those due to the trigger compound. With a novel approach, we assessed hypothalamic neuronal activity in early premonitory phases of glyceryl-trinitrate (GTN)-induced and spontaneous migraine attacks. We measured the hypothalamic blood oxygen level-dependent (BOLD) response to oral glucose ingestion with 3T-functional magnetic resonance imaging (MRI) in 27 women, 16 with migraine without aura and 11 controls group matched for age and body mass index (BMI), on 1 day without prior GTN administration and on a second day after GTN administration (to coincide with the premonitory phase of an induced attack). Interestingly, subgroups of patients with and without GTN-triggered attacks could be compared. Additionally, five migraineurs were investigated in a spontaneous premonitory phase. Linear mixed models were used to study between- and within-group effects. Without prior GTN infusion, the BOLD response to glucose was similar in migraine participants and controls (P = .41). After prior GTN infusion, recovery occurred steeper and faster in migraineurs (versus Day 1; P < .0001) and in those who developed an attack versus those who did not (P < .0001). Prior GTN infusion did not alter the glucose-induced response in controls (versus baseline; P = .71). Just before spontaneous attacks, the BOLD-response recovery was also faster (P < .0001). In this study, we found new and direct evidence of altered hypothalamic neuronal function in the immediate preclinical phase of both GTN-provoked and spontaneous migraine attacks.
Insights
Hypothalamic neuronal activity changes during the premonitory phase of migraine attacks. This study provides direct evidence of altered hypothalamic function preceding both triggered and spontaneous migraine episodes.
Area of Science:
- Neuroscience
- Medical Imaging
Background:
- The hypothalamus is implicated in migraine pathophysiology.
- Previous studies struggled to differentiate attack-related changes from trigger effects.
Purpose of the Study:
- To investigate hypothalamic neuronal activity in the premonitory phase of migraine attacks.
- To differentiate pre-attack changes from trigger compound effects using functional MRI.
Main Methods:
- Assessed hypothalamic blood oxygen-level-dependent (BOLD) response to oral glucose using 3T-functional MRI.
- Studied 27 women (16 migraineurs, 11 controls) on two days: baseline and after glyceryl-trinitrate (GTN) administration.
- Investigated five migraineurs during spontaneous premonitory phases.
Main Results:
- Hypothalamic BOLD response to glucose was similar in migraineurs and controls at baseline.
- After GTN, glucose-induced BOLD response recovery was faster in migraineurs, particularly those who developed an attack.
- GTN did not alter the response in controls.
- Faster BOLD response recovery was also observed before spontaneous attacks.
Conclusions:
- Direct evidence of altered hypothalamic neuronal function in the immediate preclinical phase of migraine attacks.
- Hypothalamic dysfunction is a key feature preceding both triggered and spontaneous migraine episodes.
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