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牙本质力学生物学:弥合结构与功能之间的差距。

Dentin Mechanobiology: Bridging the Gap between Architecture and Function.

机构信息

Institute of Tissue Regeneration Engineering (ITREN), Dankook University, Cheonan 31116, Republic of Korea.

Mechanobiology Dental Medicine Research Center, Cheonan 31116, Republic of Korea.

出版信息

Int J Mol Sci. 2024 May 22;25(11):5642. doi: 10.3390/ijms25115642.

DOI:10.3390/ijms25115642
PMID:38891829
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11171917/
Abstract

It is remarkable how teeth maintain their healthy condition under exceptionally high levels of mechanical loading. This suggests the presence of inherent mechanical adaptation mechanisms within their structure to counter constant stress. Dentin, situated between enamel and pulp, plays a crucial role in mechanically supporting tooth function. Its intermediate stiffness and viscoelastic properties, attributed to its mineralized, nanofibrous extracellular matrix, provide flexibility, strength, and rigidity, enabling it to withstand mechanical loading without fracturing. Moreover, dentin's unique architectural features, such as odontoblast processes within dentinal tubules and spatial compartmentalization between odontoblasts in dentin and sensory neurons in pulp, contribute to a distinctive sensory perception of external stimuli while acting as a defensive barrier for the dentin-pulp complex. Since dentin's architecture governs its functions in nociception and repair in response to mechanical stimuli, understanding dentin mechanobiology is crucial for developing treatments for pain management in dentin-associated diseases and dentin-pulp regeneration. This review discusses how dentin's physical features regulate mechano-sensing, focusing on mechano-sensitive ion channels. Additionally, we explore advanced in vitro platforms that mimic dentin's physical features, providing deeper insights into fundamental mechanobiological phenomena and laying the groundwork for effective mechano-therapeutic strategies for dentinal diseases.

摘要

令人惊讶的是,牙齿在极高的机械负荷下仍能保持健康状态。这表明牙齿结构中存在内在的机械适应机制,可以对抗持续的压力。牙本质位于釉质和牙髓之间,在机械支持牙齿功能方面起着至关重要的作用。其中等硬度和黏弹性特性归因于其矿化的纳米纤维细胞外基质,赋予了它柔韧性、强度和刚性,使其能够承受机械负荷而不会断裂。此外,牙本质的独特结构特征,如牙本质小管内的成牙本质细胞过程和牙髓中成牙本质细胞与感觉神经元之间的空间分隔,有助于对外部刺激产生独特的感觉感知,同时作为牙本质-牙髓复合体的防御屏障。由于牙本质的结构决定了其对机械刺激的伤害感受和修复功能,因此了解牙本质的机械生物学对于开发针对与牙本质相关的疾病和牙本质-牙髓再生的疼痛管理治疗方法至关重要。本文综述了牙本质的物理特性如何调节机械感觉,重点介绍了机械敏感离子通道。此外,我们还探讨了模拟牙本质物理特性的先进体外平台,为深入了解基本的机械生物学现象提供了依据,并为牙本质疾病的有效机械治疗策略奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e849/11171917/3e43b0bf859b/ijms-25-05642-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e849/11171917/d7104d59e16c/ijms-25-05642-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e849/11171917/3e43b0bf859b/ijms-25-05642-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e849/11171917/d7104d59e16c/ijms-25-05642-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e849/11171917/3e43b0bf859b/ijms-25-05642-g001.jpg

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Adv Sci (Weinh). 2024 Apr;11(15):e2308253. doi: 10.1002/advs.202308253. Epub 2024 Feb 14.
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Adult dental epithelial stem cell-derived organoids deposit hydroxylapatite biomineral.
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The Hippo-YAP/β-catenin signaling axis coordinates odontogenic differentiation in dental pulp stem cells: Implications for dentin-pulp regeneration.河马-YAP/β-连环蛋白信号轴协调牙髓干细胞的牙源性分化:对牙本质-牙髓再生的意义。
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