Nanomechanical and Molecular Characterization of Aging in Dentinal Collagen

牙本质 脱盐 牙本质小管 纳米压痕 化学 超微结构 牙冠(牙科) 糖基化 牙本质形成 牙髓(牙) 胶原纤维 基质(化学分析) 纤维 生物物理学 牙科 材料科学 解剖 复合材料 成牙本质细胞 生物化学 搪瓷漆 生物 医学 色谱法 受体
作者
C. Schuh,Camila Leiva‐Sabadini,Shudi Huang,Nelson P. Barrera,Laurent Bozec,Sebastián Aguayo
出处
期刊:Journal of Dental Research [SAGE Publishing]
卷期号:101 (7): 840-847 被引量:9
标识
DOI:10.1177/00220345211072484
摘要

Methylglyoxal (MGO) is an important molecule derived from glucose metabolism with the capacity of attaching to collagen and generating advanced glycation end products (AGEs), which accumulate in tissues over time and are associated with aging and diseases. However, the accumulation of MGO-derived AGEs in dentin and their effect on the nanomechanical properties of dentinal collagen remain unknown. Thus, the aim of the present study was to quantify MGO-based AGEs in the organic matrix of human dentin as a function of age and associate these changes with alterations in the nanomechanical and ultrastructural properties of dentinal collagen. For this, 12 healthy teeth from <26-y-old and >50-y-old patients were collected and prepared to obtain crown and root dentin discs. Following demineralization, MGO-derived AGEs were quantified with a competitive ELISA. In addition, atomic force microscopy nanoindentation was utilized to measure changes in elastic modulus in peritubular and intertubular collagen fibrils. Finally, principal component analysis was carried out to determine aging profiles for crown and root dentin. Results showed an increased presence of MGO AGEs in the organic matrix of dentin in the >50-y-old specimens as compared with the <26-y-old specimens in crown and root. Furthermore, an increase in peritubular and intertubular collagen elasticity was observed in the >50-y-old group associated with ultrastructural changes in the organic matrix as determined by atomic force microscopy analysis. Furthermore, principal component analysis loading plots suggested different “aging profiles” in crown and root dentin, which could have important therapeutic implications in restorative and adhesive dentistry approaches. Overall, these results demonstrate that the organic matrix of human dentin undergoes aging-related changes due to MGO-derived AGEs with important changes in the nanomechanical behavior of collagen that may affect diagnostic and restorative procedures in older people.

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