习惯化
神经科学
心理学
扁桃形结构
敏化
有害刺激
前额叶皮质
海马体
前额叶腹内侧皮质
刺激
慢性疼痛
功能磁共振成像
医学
认知
伤害
内科学
受体
作者
Richard Harrison,Carien M. van Reekum,Greig Adams,Wiebke Gandhi,Tim V. Salomons
出处
期刊:Pain
[Lippincott Williams & Wilkins]
日期:2025-07-24
卷期号:166 (10): e435-e446
标识
DOI:10.1097/j.pain.0000000000003636
摘要
Abstract Acute pain serves to warn an organism of potential damage. Two plausible theoretical response scenarios for prolonged painful stimulation could be hypothesised: If the organism does not sense potential harm an individual may habituate. Whereas, if harm is possible, pain sensitization may be more probable. Examining how an individual adapts to prolonged stimulation will provide unique insight into the mechanisms underlying pain habituation and sensitisation and, potentially, a valuable perspective on the development of chronic pain. However, currently little is known about the stability of these individual differences or their underlying neural mechanisms. To address this, 85 participants completed an MRI session, involving a noxious stimulation task and a resting-state scan. Habituation/sensitization was operationalized as the slope of change in pain ratings across the task. Habituation was associated with increasing activity in the anterior hippocampus and amygdala over time, with sensitization associated with increasing activity in the sensorimotor cortices. These regions were then used as seeds for a resting-state functional connectivity analysis, which revealed that habituation was associated with higher connectivity between the hippocampus and ventromedial prefrontal cortex, as well as higher connectivity between sensorimotor regions and the hippocampus, amygdala, and insula cortex. We have shown that habituation/sensitization to pain is a stable trait underpinned by differential activity in brain regions supporting sensory processing and appraisal. The perspective of these stable phenotypical patterns could have clinical applications and potential for improving our understanding of the development of chronic pain.
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