牙科中的压电通道:解码力的功能效应。

IF 5.7 1区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE
J Lai,Q Wu,B Gao,W Cai,Y Wang
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引用次数: 0

摘要

口腔系统是一个高度复杂的机械感觉结构,它不断适应机械刺激的变化,对细胞和组织施加机械力。了解这些力量如何转化为生化信号,以及它们如何介导基因表达和细胞活动一直是牙科研究的重要焦点。压电通道,包括Piezo1和Piezo2,是机械激活的阳离子通道,其特征是细胞外“帽”结构域和3个外围机械敏感叶片。最近的研究表明,施加在组织上的机械力可以诱导细胞膜变形,导致压电通道的构象改变,从而促进阳离子流入,从而调节细胞活动。钙离子的内流是压电通道激活的最常被讨论的结果,它启动了多种信号通路,调节牙本质过敏、牙槽骨重塑和颞下颌关节(TMJ)骨关节炎。在大鼠模型中,压电通道的化学抑制已被证明可以减轻牙釉质过敏,降低正畸牙齿移动的速度,减缓TMJ骨关节炎的进展。缺乏压电通道的小鼠表现出反应性牙本质形成受损,牙槽骨体积减少和颌骨发育畸形。考虑到压电通道在机械力的功能效应解码中的作用,本文将对压电通道在牙科中的作用进行综述,并按解剖部位组织,以提供对压电通道及其介导的信号串扰的全面认识,为各种力相关口腔疾病的治疗提供良好的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Piezo Channels in Dentistry: Decoding the Functional Effects of Forces.
The oral system is a highly complex mechanosensory structure that continuously adapts to changes in mechanical stimuli, exerting mechanical forces on cells and tissues. Understanding how these forces are converted into biochemical signals and how they mediate gene expression and cellular activities has been a significant focus in dentistry. Piezo channels, including Piezo1 and Piezo2, are mechanically activated cation channels characterized by an extracellular "cap" domain and 3 peripheral mechanosensitive blades. Recent research has demonstrated that mechanical forces applied to tissues can induce deformation of cell membranes, leading to conformational changes in Piezo channels that facilitate cation influx, thereby regulating cellular activities. The influx of Ca2+, the most discussed outcome of Piezo channel activation, initiates diverse signaling pathways that regulate dentin hypersensitivity, alveolar bone remodeling, and temporomandibular joint (TMJ) osteoarthritis. The chemical inhibition of Piezo channels has been shown to alleviate dentinal hypersensitivity, reduce the rate of orthodontic tooth movement, and slow the progression of TMJ osteoarthritis in rat models. Mice deficient in piezo channels exhibit impaired reactive dentin formation, reduced alveolar bone volume, and developmental deformities of the jawbone. Considering their roles in decoding the functional effects of mechanical forces, this review summarizes the involvement of Piezo channels in dentistry, organized by anatomical sites, to provide comprehensive knowledge of Piezo channels and their mediated signal crosstalk, which offers promising therapeutic prospects for the treatment of various force-related oral diseases.
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来源期刊
Journal of Dental Research
Journal of Dental Research 医学-牙科与口腔外科
CiteScore
15.30
自引率
3.90%
发文量
155
审稿时长
3-8 weeks
期刊介绍: The Journal of Dental Research (JDR) is a peer-reviewed scientific journal committed to sharing new knowledge and information on all sciences related to dentistry and the oral cavity, covering health and disease. With monthly publications, JDR ensures timely communication of the latest research to the oral and dental community.
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