The measurement of global shortening as a new parameter to evaluate bone specimen response to uniaxial loading: Length change measurement for bone tissue specimens

E. Rizzuto, Enrica Urciuoli, B. Peruzzi, Z. Prete
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引用次数: 1

Abstract

Mechanical load is nowadays considered one of the factor mainly affecting bone tissue properties, both as architecture and functionality. Mechanotransduction is the capability of cells to translate mechanical stresses into biochemical signals, and several studies performed on mouse models demonstrated that also bone cells show a high responsiveness to mechanical stimuli. To date, bone cells mechanotransduction is mainly investigated in animal models, by the use of organ cultures or directly in vivo, and the actual strains induced by the external loads are measured through the use of micro strain gauges placed on the tibia mid-diaphysis. With the aim of proposing a new parameter to come along with the measurement of the actual strains, we exploited the capability of tibial global shortening to return useful information. We employed an experimental system based on a dual mode actuator/transducer with an adequate force range and a high length resolution to retrieve the small shortening of the bone specimens subjected to uniaxially load. Preliminary results showed that the tibia global shortening has a linear relationship with the increasing load, in the range of force usually used in these studies. In addition, the tibia global shortening showed the capability of gathering the changes occurring in the bone tissue mechanical properties when subjecting the specimens to loading signals of different frequencies. When tested with load signals of a frequency equal or higher than 1 Hz, in fact, the bone specimens showed a more rigid behavior. At 9 N of load, for example, the average value of tibia global shortening measured at 0.1 Hz is, on average, 18 % higher than when measured at all the other tested frequencies.
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测量整体缩短作为评估骨标本对单轴载荷响应的新参数:骨组织标本长度变化测量
目前,机械载荷被认为是影响骨组织结构和功能的主要因素之一。机械转导是细胞将机械应力转化为生化信号的能力,在小鼠模型上进行的几项研究表明,骨细胞对机械刺激也表现出高度的反应性。迄今为止,骨细胞的机械转导主要是在动物模型中,通过器官培养或直接在体内进行研究,并且通过放置在胫骨中骨干上的微应变计来测量外部载荷引起的实际应变。为了提出一个新的参数来测量实际应变,我们利用胫骨整体缩短的能力来返回有用的信息。我们采用了一种基于双模致动器/换能器的实验系统,该系统具有足够的力范围和高长度分辨率来检索受单轴载荷作用下骨标本的小缩短。初步结果表明,胫骨整体缩短与载荷的增加呈线性关系,在这些研究中通常使用的力范围内。此外,胫骨整体短缩显示了在不同频率加载信号作用下骨组织力学性能变化的收集能力。事实上,当频率等于或高于1hz的载荷信号进行测试时,骨试件表现出更强的刚性行为。例如,在9牛载荷下,在0.1 Hz下测量的胫骨整体缩短的平均值比在所有其他测试频率下测量的平均值平均高18%。
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