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伤害感受器中由损伤驱动的结构和分子修饰

Injury-Driven Structural and Molecular Modifications in Nociceptors.

作者信息

García-Domínguez Mario

机构信息

Program of Immunology and Immunotherapy, CIMA-Universidad de Navarra, 31008 Pamplona, Spain.

Department of Immunology and Immunotherapy, Clínica Universidad de Navarra, 31008 Pamplona, Spain.

出版信息

Biology (Basel). 2025 Jun 29;14(7):788. doi: 10.3390/biology14070788.

Abstract

Peripheral tissue injury initiates a multifaceted cascade of structural and molecular modifications within nociceptors, the primary sensory neurons tasked with detecting noxious stimuli. These alterations play a crucial role in the induction and maintenance of pain states, encompassing acute and chronic pain. Structural remodeling includes alterations in axonal architecture, dendritic morphology, and synaptic connectivity, collectively impacting nociceptor excitability and functional integration. Simultaneously, molecular adaptations comprise the regulation of ion channels, receptor expression, and intracellular signaling pathways, as well as transcriptional reprogramming that modulates nociceptive signaling. This review synthesizes current evidence regarding the cellular and molecular bases of injury-induced plasticity in nociceptors, identifying prospective targets for therapeutic intervention to counteract maladaptive sensitization. Elucidating these processes is critical for the advancement of pain treatment strategies and for enhancing clinical outcomes in individuals experiencing neuropathic pain secondary to tissue injury.

摘要

外周组织损伤会在伤害感受器(负责检测有害刺激的初级感觉神经元)内引发一系列多方面的结构和分子改变。这些改变在疼痛状态(包括急性和慢性疼痛)的诱导和维持中起着关键作用。结构重塑包括轴突结构、树突形态和突触连接性的改变,共同影响伤害感受器的兴奋性和功能整合。同时,分子适应性变化包括离子通道的调节、受体表达和细胞内信号通路,以及调节伤害性信号传导的转录重编程。本综述综合了有关伤害感受器损伤诱导可塑性的细胞和分子基础的现有证据,确定了对抗适应不良性敏化的治疗干预潜在靶点。阐明这些过程对于推进疼痛治疗策略以及改善因组织损伤继发神经性疼痛的个体的临床结局至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db96/12292338/266c3c55dd6c/biology-14-00788-g001.jpg

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