Bone Aging by Advanced Glycation End Products: A Multiscale Mechanical Analysis

被引:25
作者
Ganeko, K. [1 ]
Masaki, C. [1 ]
Shibata, Y. [2 ]
Mukaibo, T. [1 ]
Kondo, Y. [1 ]
Nakamoto, T. [1 ]
Miyazaki, T. [2 ]
Hosokawa, R. [1 ]
机构
[1] Kyushu Dent Univ, Dept Oral Reconstruct & Rehabil, Kitakyushu, Fukuoka 8038580, Japan
[2] Showa Univ, Sch Dent, Dept Conservat Dent, Div Biomat & Engn, Tokyo 142, Japan
关键词
methionine; collagen; elasticity; biomechanical phenomena; hardness tests; Raman spectroscopy; INSTRUMENTED INDENTATION; ELASTIC-MODULUS; CORTICAL BONE; NANOINDENTATION; FRACTURE; HARDNESS; TISSUES;
D O I
10.1177/0022034515602214
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
The quality and quantity of mandibular bone are essential prerequisites for osseointegrated implants. Only the Hounsfield unit on preoperative computed tomography is currently used as a clinical index. Nevertheless, a considerable mismatch occurs between bone quality and the Hounsfield unit. Loss of bone toughness during aging has been accepted based on empirical evidence, but this concept is unlikely evidence based at the level of mechanical properties. Nonenzymatic bone matrix cross-links associated with advanced glycation end products predominate as a consequence of aging. Thus, loss of tissue integrity could diminish the bone toughening mechanism. Here, we demonstrate an impaired bone toughening mechanism caused by mimicking aging in rabbits on a methionine-rich diet, which enabled an enhanced nonenzymatically cross-linked bone matrix. A 3-point bending test revealed a greater reduction in femoral fracture resistance in rabbits on a methionine-rich diet, despite higher maximum and normalized breaking forces (287.3 N and 88.1%, respectively), than in rabbits on a normal diet (262.2 N and 79.7%, respectively). In situ nanoindentation on mandibular cortical bone obtained from rabbits on a methionine-rich diet did not enable strain rate-dependent stiffening and consequent large-dimensional recovery during rapid loading following constant displacement after a rapid-load indentation test as compared with those in rabbits on a normal diet. Such nanoscale structure-function relationships dictate resistance to cracking propagation at the material level and allow for the overall bone toughening mechanism to operate under large external stressors. The strain-dependent stiffening was likely associated with strain-energy transfer to the superior cross-linked bone matrix network of the normal diet, while the reduction in the enzymatically cross-linked matrix in bone samples from rabbits on a methionine-rich diet likely diminished the intrinsic bone toughening mechanism. The present study also provides a precise protocol for evaluating bone mechanical properties at the material level based on observations from a series of nanoindentation experiments.
引用
收藏
页码:1684 / 1690
页数:7
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