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Tissue viscoelasticity is related to tissue composition but may not fully predict the apparent-level viscoelasticity in human trabecular bone – An experimental and finite element study

机译:组织粘弹性与组织组合物有关,但可能无法完全预测人小梁骨中的表观水平粘弹性 - 实验和有限元研究

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Abstract Trabecular bone is viscoelastic under dynamic loading. However, it is unclear how tissue viscoelasticity controls viscoelasticity at the apparent-level. In this study, viscoelasticity of cylindrical human trabecular bone samples ( n =11, male, age 18–78 years) from 11 proximal femurs were characterized using dynamic and stress-relaxation testing at the apparent-level and with creep nanoindentation at the tissue-level. In addition, bone tissue elasticity was determined using scanning acoustic microscope (SAM). Tissue composition and collagen crosslinks were assessed using Raman micro-spectroscopy and high performance liquid chromatography (HPLC), respectively. Values of material parameters were obtained from finite element (FE) models by optimizing tissue-level creep and apparent-level stress-relaxation to experimental nanoindentation and unconfined compression testing values, respectively, utilizing the second order Prony series to depict viscoelasticity. FE simulations showed that tissue-level equilibrium elastic modulus ( E eq ) increased with increasing crystallinity ( r =0.730, p =.011) while at the apparent-level it increased with increasing hydroxylysyl pyridinoline content ( r =0.718, p =.019). In addition, the normalized shear modulus g 1 ( r =?0.780, p =.005) decreased with increasing collagen ratio (amide III/CH 2 ) at the tissue-level, but increased ( r =0.696, p =.025) with increasing collagen ratio at the apparent-level. No significant relations were found between the measured or simulated viscoelastic parameters at the tissue- and apparent-levels nor were the parameters related to tissue elasticity determined with SAM. However, only E eq , g 2 and relaxation time τ 1 from simulated viscoelastic values were statistically different between tissue- and apparent-levels ( p
机译:抽象的小梁骨是动态载荷下的粘弹性。然而,目前尚不清楚组织粘弹性如何在表观级别控制粘弹性。在本研究中,使用11个近端股骨的圆柱形人小梁骨样品(n = 11,男性,年龄18-78岁)的粘弹性使用动态和应力 - 放松测试在表观水平和组织处的蠕变纳米凸缘 - 等级。此外,使用扫描声学显微镜(SAM)测定骨组​​织弹性。使用拉曼微光谱和高效液相色谱(HPLC)评估组织组合物和胶原交联剂。通过优化组织级蠕变和表观级应力松弛分别利用二阶Prony系列来描绘粘弹性,从有限元(Fe)模型中从有限元(Fe)模型中获得了有限元(Fe)模型。 FE模拟表明,组织级平衡弹性模量(E Q)随着结晶度(R = 0.730,P = 0.011)而增加,同时在随着羟基吡啶啉烯醇含量的增加(R = 0.718,P = .019 )。另外,归一化剪切模量G 1(R =Δ0.780,p = .005)随着组织水平的增加而增加(酰胺III / CH 2),但增加(r = 0.696,p = .025)随着表观级别的增加。在组织和表观级别的测量或模拟粘弹性参数之间没有发现显着关系,也没有与使用SAM确定的组织弹性相关的参数。然而,在模拟粘弹性值中只有E eq,g 2和弛豫时间τ1在组织和表观级别之间存在统计学不同(p

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