Department of Oral Physiology, School of Dentistry, Matsumoto Dental University, 1780 Gobara Hirooka, Shiojiri, Nagano 399-0781, Japan.
Department of Oral and Craniofacial Sciences, Faculty of Dentistry, University of Malaya, Kuala Lumpur 50603, Malaysia.
Int J Mol Sci. 2019 Jan 27;20(3):526. doi: 10.3390/ijms20030526.
Dental pain is a common health problem that negatively impacts the activities of daily living. Dentine hypersensitivity and pulpitis-associated pain are among the most common types of dental pain. Patients with these conditions feel pain upon exposure of the affected tooth to various external stimuli. However, the molecular mechanisms underlying dental pain, especially the transduction of external stimuli to electrical signals in the nerve, remain unclear. Numerous ion channels and receptors localized in the dental primary afferent neurons (DPAs) and odontoblasts have been implicated in the transduction of dental pain, and functional expression of various polymodal transient receptor potential (TRP) channels has been detected in DPAs and odontoblasts. External stimuli-induced dentinal tubular fluid movement can activate TRP channels on DPAs and odontoblasts. The odontoblasts can in turn activate the DPAs by paracrine signaling through ATP and glutamate release. In pulpitis, inflammatory mediators may sensitize the DPAs. They could also induce post-translational modifications of TRP channels, increase trafficking of these channels to nerve terminals, and increase the sensitivity of these channels to stimuli. Additionally, in caries-induced pulpitis, bacterial products can directly activate TRP channels on DPAs. In this review, we provide an overview of the TRP channels expressed in the various tooth structures, and we discuss their involvement in the development of dental pain.
牙齿疼痛是一种常见的健康问题,会对日常生活活动产生负面影响。牙本质过敏和牙髓炎症相关的疼痛是最常见的几种牙齿疼痛类型。患有这些病症的患者在受到各种外部刺激时会感到疼痛。然而,牙齿疼痛的分子机制,尤其是外部刺激向神经中的电信号的转换,仍不清楚。许多位于牙髓初级传入神经元(DPAs)和成牙本质细胞中的离子通道和受体都与牙齿疼痛的转换有关,并且已经在 DPAs 和成牙本质细胞中检测到各种多模态瞬时受体电位(TRP)通道的功能表达。外部刺激诱导的牙本质小管内流体运动可以激活 DPAs 和成牙本质细胞上的 TRP 通道。成牙本质细胞反过来可以通过 ATP 和谷氨酸释放的旁分泌信号激活 DPAs。在牙髓炎中,炎症介质可能会使 DPAs 敏化。它们还可以诱导 TRP 通道的翻译后修饰,增加这些通道向神经末梢的运输,并增加这些通道对刺激的敏感性。此外,在龋病引起的牙髓炎中,细菌产物可以直接激活 DPAs 上的 TRP 通道。在这篇综述中,我们概述了在各种牙齿结构中表达的 TRP 通道,并讨论了它们在牙齿疼痛发展中的作用。