Salmon Phil
Skyscan NV, Vluchtenburgstraat 3C, 2630 Aartselaar, Belgium.
J Bone Miner Res. 2004 May;19(5):695-702. doi: 10.1359/JBMR.040210. Epub 2004 Feb 16.
The RANK-RANKL-OPG system of osteoclast regulation may play a key role in determining chaotic structure in trabecular bone. Iliac trabecular bone from juvenile Paget's disease patients deficient in functional OPG shows parallel, anisotropic structure instead of normal chaotic structure. Evidence from experimental systems suggests that RANK-RANKL-OPG controls key nonlinear "chaogenic" parameters, such as friction, forcing frequency, feedback, and boundary forcing. The RANK-RANKL-osteoprotegerin (OPG) system of osteoclast regulation may play a key role in determining chaotic structure in trabecular bone. Iliac trabecular bone from juvenile Paget's disease (JPD) patients deficient in functional OPG shows parallel, anisotropic structure instead of normal chaotic structure. Evidence from experimental systems suggests that RANK-RANKL-OPG controls key nonlinear "chaogenic" parameters, such as friction, forcing frequency, feedback, and boundary forcing. The Belousov-Zhabotinsky reaction-diffusion system, the catalytic oxidation of CO on platinum surfaces, and thermal diffusion in liquid helium allow visualization of nonlinear emergent patterns such as labyrinthine structures, turbulence, and cellular structures, all of which bear some resemblance to trabecular bone. In JPD, the gene for OPG (TNFRSF11B) is subject to an inactivating mutation, leading to increased resorption and accelerated remodeling. Histomorphometric images of iliac crest trabecular bone from teenagers suffering from JPD show a highly unusual array of parallel, regular trabecular plates, instead of the typical chaotic, fractal patterns of normal trabecular bone. Loss of OPG function is associated with a change from chaotic to regular structure, suggesting that the RANK-RANKL-OPG system is controlling key nonlinear "chaogenic" parameters. Looking at trabecular bone from the perspective of nonlinear pattern formation may help understand other phenomena, such as the marked dependence of trabecular bone's architectural and mechanical quality on remodeling rate independent of the trabecular bone mass.
破骨细胞调节的RANK-RANKL-OPG系统可能在决定小梁骨的混沌结构中起关键作用。来自缺乏功能性OPG的青少年佩吉特病患者的髂骨小梁骨呈现出平行的各向异性结构,而非正常的混沌结构。实验系统的证据表明,RANK-RANKL-OPG控制着关键的非线性“致混沌”参数,如摩擦力、强迫频率、反馈和边界强迫。破骨细胞调节的RANK-RANKL-骨保护素(OPG)系统可能在决定小梁骨的混沌结构中起关键作用。来自缺乏功能性OPG的青少年佩吉特病(JPD)患者的髂骨小梁骨呈现出平行的各向异性结构,而非正常的混沌结构。实验系统的证据表明,RANK-RANKL-OPG控制着关键的非线性“致混沌”参数,如摩擦力、强迫频率、反馈和边界强迫。贝洛索夫-扎博京斯基反应-扩散系统、CO在铂表面的催化氧化以及液氦中的热扩散,使得非线性涌现模式如迷宫结构、湍流和细胞结构得以可视化,所有这些都与小梁骨有一些相似之处。在JPD中,OPG(TNFRSF11B)基因发生失活突变,导致吸收增加和重塑加速。来自患有JPD的青少年的髂嵴小梁骨的组织形态计量学图像显示出高度异常的平行、规则小梁板排列,而非正常小梁骨典型的混沌、分形模式。OPG功能丧失与从混沌结构向规则结构的转变相关,这表明RANK-RANKL-OPG系统正在控制关键的非线性“致混沌”参数。从非线性模式形成的角度看待小梁骨可能有助于理解其他现象,比如小梁骨的结构和力学质量对重塑速率的显著依赖性,而这种依赖性与小梁骨量无关。