Samuel Jitin, Park Jun-Sang, Almer Jonathan, Wang Xiaodu
Departments of Mechanical Engineering, University of Texas at San Antonio, United States.
Advanced Photon Source, Argonne National Laboratory, United States.
J Mech Behav Biomed Mater. 2016 Apr;57:128-38. doi: 10.1016/j.jmbbm.2015.12.001. Epub 2015 Dec 12.
Water, an important constituent in bone, resides in different compartments in bone matrix and may impose significant effects on its bulk mechanical properties. However, a clear understanding of the mechanistic role of water in toughening bone is yet to emerge. To address this issue, this study used a progressive loading protocol, coupled with measurements of in situ mineral and collagen fibril deformations using synchrotron X-ray diffraction techniques. Using this unique approach, the contribution of water to the ultrastructural behavior of bone was examined by testing bone specimens in different loading modes (tension and compression) and hydration states (wet and dehydrated). The results indicated that the effect of water on the mechanical behavior of mineral and collagen phases at the ultrastructural level was loading-mode dependent and correlated with the bulk behavior of bone. Tensile loading elicited a transitional drop followed by an increase in load bearing by the mineral phase at the ultrastructural level, which was correlated with a strain hardening behavior of bone at the bulk level. Compression loading caused a continuous loss of load bearing by the mineral phase, which was reflected at the bulk level as a strain softening behavior. In addition, viscous strain relaxation and pre-strain reduction were observed in the mineral phase in the presence of water. Taken together, the results of this study suggest that water dictates the bulk behavior of bone by altering the interaction between mineral crystals and their surrounding matrix.
水是骨骼的重要组成部分,存在于骨基质的不同区域,可能对其整体力学性能产生重大影响。然而,对于水在增强骨骼韧性中的作用机制,目前尚缺乏清晰的认识。为解决这一问题,本研究采用了渐进加载方案,并结合同步加速器X射线衍射技术对原位矿物质和胶原纤维变形进行测量。利用这种独特的方法,通过在不同加载模式(拉伸和压缩)和水化状态(湿态和脱水态)下测试骨标本,研究了水对骨超微结构行为的影响。结果表明,在超微结构水平上,水对矿物质和胶原相力学行为的影响取决于加载模式,且与骨的整体行为相关。拉伸加载在超微结构水平上引发矿物质相的承载能力先过渡性下降,随后上升,这与骨在整体水平上的应变硬化行为相关。压缩加载导致矿物质相的承载能力持续下降,在整体水平上表现为应变软化行为。此外,在有水存在的情况下,矿物质相中观察到粘性应变松弛和预应变降低。综上所述,本研究结果表明,水通过改变矿物质晶体与其周围基质之间的相互作用来决定骨的整体行为。