Migraine: Multiple Processes, Complex Pathophysiology

Мигрень: множественные процессы, сложная патофизиология
David Borsook, Rami Burstein, Rodrigo Noseda
2015-04-29

Glutamate neurotransmissionMigraine pathophysiologyNeuronal hyperexcitabilityNeurovascular headache disorderTrigemino-vascular pathway
Migraine is a common, multifactorial, disabling, recurrent, hereditary neurovascular headache disorder. It usually strikes sufferers a few times per year in childhood and then progresses to a few times per week in adulthood, particularly in females. Attacks often begin with warning signs (prodromes) and aura (transient focal neurological symptoms) whose origin is thought to involve the hypothalamus, brainstem, and cortex. Once the headache develops, it typically throbs, intensifies with an increase in intracranial pressure, and presents itself in association with nausea, vomiting, and abnormal sensitivity to light, noise, and smell. It can also be accompanied by abnormal skin sensitivity (allodynia) and muscle tenderness. Collectively, the symptoms that accompany migraine from the prodromal stage through the headache phase suggest that multiple neuronal systems function abnormally. As a consequence of the disease itself or its genetic underpinnings, the migraine brain is altered structurally and functionally. These molecular, anatomical, and functional abnormalities provide a neuronal substrate for an extreme sensitivity to fluctuations in homeostasis, a decreased ability to adapt, and the recurrence of headache. Advances in understanding the genetic predisposition to migraine, and the discovery of multiple susceptible gene variants (many of which encode proteins that participate in the regulation of glutamate neurotransmission and proper formation of synaptic plasticity) define the most compelling hypothesis for the generalized neuronal hyperexcitability and the anatomical alterations seen in the migraine brain. Regarding the headache pain itself, attempts to understand its unique qualities point to activation of the trigeminovascular pathway as a prerequisite for explaining why the pain is restricted to the head, often affecting the periorbital area and the eye, and intensifies when intracranial pressure increases.
1
Activation of the trigeminovascular pathway is proposed as necessary to explain migraine pain’s head-restricted, often periorbital distribution and worsening with increased intracranial pressure.
2
Migraine is a multifactorial, hereditary neurovascular disorder with recurrent attacks that often increase from childhood to several episodes per week in adulthood, especially among females.
3
Migraine is associated with structural and functional brain alterations that increase sensitivity to homeostatic fluctuations, reduce adaptive capacity, and promote headache recurrence.
4
Prodromes and aura likely involve abnormal activity across the hypothalamus, brainstem, and cortex, while the full symptom profile indicates dysfunction of multiple neuronal systems.
5
Susceptible gene variants, particularly those regulating glutamate neurotransmission and synaptic plasticity, provide a leading explanation for generalized neuronal hyperexcitability and anatomical brain changes.

Migraine and the migraine brain

The multifactorial pathophysiology of migraine, including neuronal hyperexcitability, structural and functional brain abnormalities, and trigeminovascular activation underlying recurrent headache and associated symptoms

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2015-04-29
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David Borsook
Rami Burstein
Rodrigo Noseda
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