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坚忍的牙根:矿物质和细胞外基质如何相互平衡以保持老年牙本质的稳定。

The stoic tooth root: how the mineral and extracellular matrix counterbalance to keep aged dentin stable.

机构信息

Department of General Dental Sciences, Marquette University, Milwaukee, WI, USA; Department of Restorative Dentistry, University of Illinois at Chicago, Chicago, IL, USA.

Department of Restorative Dentistry, University of Illinois at Chicago, Chicago, IL, USA.

出版信息

Acta Biomater. 2022 Jan 15;138:351-360. doi: 10.1016/j.actbio.2021.10.051. Epub 2021 Nov 2.

Abstract

Aging is a physiological process with profound impact on the biology and function of biosystems, including the human dentition. While resilient, human teeth undergo wear and disease, affecting overall physical, psychological, and social human health. However, the underlying mechanisms of tooth aging remain largely unknown. Root dentin is integral to tooth function in that it anchors and dissipates mechanical load stresses of the tooth-bone system. Here, we assess the viscoelastic behavior, composition, and ultrastructure of young and old root dentin using nano-dynamic mechanical analysis, micro-Raman spectroscopy, small angle X-ray scattering, atomic force and transmission electron microscopies. We find that the root dentin overall stiffness increases with age. Unlike other mineralized tissues and even coronal dentin, however, the ability of root dentin to dissipate energy during deformation does not decay with age. Using a deconstruction method to dissect the contribution of mineral and organic matrix, we find that the damping factor of the organic matrix does deteriorate. Compositional and ultrastructural analyses revealed higher mineral-to-matrix ratio, altered enzymatic and non-enzymatic collagen cross-linking, increased collagen d-spacing and fibril diameter, and decreased abundance of proteoglycans and sulfation pattern of glycosaminoglycans . Therefore, even in the absence of remodeling, the extracellular matrix of root dentin shares traits of aging with other tissues. To explain this discrepancy, we propose that altered matrix-mineral interactions, possibly mediated by carbonate ions sequestered at the mineral interface and/or altered glycosaminoglycans counteract the deleterious effects of aging on the structural components of the extracellular matrix. STATEMENT OF SIGNIFICANCE: Globally, a quarter of the population will be over 65 years old by 2050. Because many will retain their dentition, it will become increasingly important to understand and manage how aging affects teeth. Dentin is integral to the protective, biomechanical, and regenerative features of teeth. Here, we demonstrate that older root dentin not only has altered mechanical properties, but shows characteristic shifts in mineralization, composition, and post-translational modifications of the matrix. This strongly suggests that there is a mechanistic link between mineral and matrix components to the biomechanical performance of aging dentin with implications for efforts to slow or even reverse the aging process.

摘要

衰老是一个生物学过程,对生物系统的生物学和功能有着深远的影响,包括人类的牙齿。虽然具有弹性,但人类的牙齿会磨损和患病,从而影响整体的身体、心理和社会人类健康。然而,牙齿衰老的潜在机制在很大程度上仍然未知。根牙本质是牙齿功能的重要组成部分,它固定和分散牙齿-骨骼系统的机械负荷应力。在这里,我们使用纳米动态力学分析、微拉曼光谱、小角 X 射线散射、原子力显微镜和透射电子显微镜评估年轻和老年根牙本质的粘弹性行为、组成和超微结构。我们发现根牙本质的整体刚度随年龄增长而增加。然而,与其他矿化组织甚至冠部牙本质不同,根牙本质在变形过程中耗散能量的能力不会随年龄增长而下降。使用一种解构方法来剖析矿物质和有机基质的贡献,我们发现有机基质的阻尼因子确实会恶化。组成和超微结构分析显示,更高的矿物质与基质比、改变的酶和非酶胶原蛋白交联、增加的胶原蛋白 d 间距和纤维直径,以及减少的糖胺聚糖的丰度和糖胺聚糖的硫酸化模式。因此,即使没有重塑,根牙本质的细胞外基质也具有与其他组织相同的衰老特征。为了解释这种差异,我们提出,矿物质-基质相互作用的改变,可能是由矿物质界面上隔离的碳酸根离子介导的,或者是改变的糖胺聚糖,抵消了衰老对细胞外基质结构成分的有害影响。意义声明:到 2050 年,全球将有四分之一的人口超过 65 岁。由于许多人将保留他们的牙齿,因此了解和管理衰老如何影响牙齿将变得越来越重要。牙本质是牙齿保护、生物力学和再生特性的重要组成部分。在这里,我们证明,老年根牙本质不仅具有改变的机械性能,而且表现出矿化、基质组成和基质翻译后修饰的特征性变化。这强烈表明,矿物质和基质成分与衰老牙本质的生物力学性能之间存在机制联系,这对减缓甚至逆转衰老过程的努力具有重要意义。

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