ISSN 1671-3710
CN 11-4766/R
主办:中国科学院心理研究所
出版:科学出版社

心理科学进展 ›› 2026, Vol. 34 ›› Issue (10): 1832-1842.doi: 10.3724/SP.J.1042.2026.1832 cstr: 32111.14.2026.1832

• 研究前沿 • 上一篇    下一篇

精神分裂症感觉衰减异常的神经递质调控机制

陈一月1, 曾雅欣1, 黄朝政2, 谢珮1   

  1. 1四川师范大学心理学院, 成都 610068;
    2西北师范大学心理学院, 兰州 730070
  • 收稿日期:2025-09-09 出版日期:2026-10-15 发布日期:2026-07-20

Neurotransmitter regulatory mechanisms of abnormal sensory attenuation in schizophrenia

CHEN Yiyue1, ZENG Yaxin1, HUANG Chaozheng2, XIE Pei1   

  1. 1School of Psychology, Sichuan Normal University, Chengdu 610068, China;
    2School of Psychology, Northwest Normal University, Lanzhou 730070, China
  • Received:2025-09-09 Online:2026-10-15 Published:2026-07-20

摘要: 精神分裂症作为一种高致残性精神障碍, 其临床表现之一是感觉处理功能缺陷, 主要以感觉衰减功能异常为核心病理特征, 表现为无法有效过滤自身动作产生的内部信号, 导致大脑将内部信号误判为外部刺激, 最终诱发幻觉等感知觉障碍, 严重影响患者的认知功能与社会功能。神经递质系统作为调控精神分裂症临床症状的关键生理通路, 在感觉衰减机制的调控中发挥核心作用。现有研究证实, 谷氨酸、多巴胺、γ-氨基丁酸(GABA)等核心神经递质系统的功能异常, 不仅是精神分裂症发病机制的重要生物学基础, 也是导致感觉衰减功能缺损的关键诱因。本研究旨在从生物学、遗传学及认知神经学多视角切入, 系统解析神经递质系统对感觉衰减的影响, 为开发针对精神分裂症感觉衰减机制的干预策略和治疗方法提供理论依据。

关键词: 神经递质, 感觉衰减, 精神分裂, 神经通路

Abstract: Schizophrenia is a severe and complex psychiatric disorder with high heterogeneity, characterized by positive symptoms (such as hallucinations and delusions), negative symptoms (including emotional blunting and social withdrawal), and extensive cognitive impairments, which severely affect patients’ cognitive, emotional, and behavioral functions. Among its core neurophysiological features, abnormal sensory processing—especially deficits in sensory attenuation—has attracted increasing attention in academic circles. Sensory attenuation plays a crucial role in regulating individuals’ adaptive responses to environmental stimuli: it enables the brain to dynamically adjust the responses of neuronal populations to repetitive sensory inputs, filter out irrelevant information, and prioritize the processing of important signals, thereby ensuring the efficient allocation of cognitive resources. However, schizophrenia patients often exhibit significant abnormalities in sensory attenuation, manifested as hypersensitivity to environmental stimuli and reduced ability to screen information. This neurophysiological disturbance not only directly leads to cognitive control deficits and abnormal subjective experiences but also is closely associated with the emergence of core symptoms like hallucinations, potentially serving as the neurobiological basis for the disease’s cognitive and behavioral abnormalities. Neurotransmitters, as key substances for information transmission between neurons, are critical regulators of sensory attenuation mechanisms. A large body of research has confirmed that functional abnormalities in multiple neurotransmitter systems—including glutamate, dopamine, and γ-aminobutyric acid (GABA)—are closely related to the pathogenesis of schizophrenia and are important factors contributing to the disruption of sensory attenuation mechanisms, though their specific regulatory mechanisms have not yet been fully and systematically clarified. Glutamate, the main excitatory neurotransmitter in the brain, affects sensory attenuation through abnormal activity of glutamatergic neurons (e.g., reduced activity in the prefrontal cortex and hippocampus) and dysfunction of N-methyl-D-aspartate (NMDA) receptors, which impairs synaptic plasticity and the brain’s adaptive responses to repetitive stimuli. Dopamine, a major modulatory neurotransmitter, exerts complex effects on sensory attenuation: abnormal activity of dopaminergic neurons in brain regions such as the striatum and prefrontal cortex, along with dysfunction of dopamine receptors (particularly D1 receptors), leads to biased processing and integration of sensory information, resulting in hypersensitivity to sensory stimuli. GABA, the primary inhibitory neurotransmitter in the brain, contributes to sensory attenuation deficits through reduced numbers or impaired function of GABAergic neurons in key brain regions (e.g., prefrontal cortex, hippocampus) and dysfunction of GABA-A receptors, disrupting the inhibitory regulation of neuronal excitability and thus the normal sensory attenuation process. Genetic factors further modulate the function of these neurotransmitter systems. For instance, the Val158Met polymorphism of the catechol-O-methyltransferase (COMT) gene affects dopamine metabolism, while polymorphisms in GRIN genes (which encode NMDA receptor subunits) regulate glutamate signaling; both ultimately influence sensory attenuation by altering neurotransmitter function. From a cognitive neuroscience perspective, neurotransmitter abnormalities disrupt the normal activity of visual, auditory, and tactile sensory pathways and impair the functional integrity of the default mode network (DMN), further exacerbating sensory attenuation deficits in schizophrenia patients. This review integrates multimodal evidence from neurobiology, molecular genetics, and cognitive neuroscience to systematically discuss the regulatory roles of neurotransmitters in abnormal sensory attenuation in schizophrenia. It emphasizes the need for future longitudinal studies combining dynamic neuroimaging techniques (e.g., fMRI, PET) to clarify the temporal relationship between neurotransmitter abnormalities and sensory attenuation deficits. Additionally, it proposes that future research should focus on developing targeted interventions (such as D1 receptor modulators and NMDA receptor partial agonists) and constructing individualized prediction models using multi-omics data and machine learning algorithms, with the goal of providing a scientific basis for precise intervention in schizophrenia and promoting improvements in patients’ prognosis and social function recovery.

Key words: schizophrenia, sensory attenuation, neurotransmitter, neural pathway

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