Effects of surface profile on porcine dural mechanical properties

IF 1.4 3区 医学 Q4 ENGINEERING, BIOMEDICAL
Atsutaka Tamura , Chikano Sakaue
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引用次数: 0

Abstract

Background

Cerebrospinal fluid leakage through the spinal meninges is difficult to diagnose and treat. Moreover, its underlying mechanism remains unknown. Considering that the dura mater is structurally the strongest and outermost membrane among the three-layered meninges, we hypothesized that a dural mechanical tear would trigger spontaneous cerebrospinal fluid leakage, especially when a traumatic loading event is involved. Thus, accurate biomechanical properties of the dura mater are indispensable for improving computational models, which aid in predicting blunt impact injuries and creating artificial substitutes for transplantation and surgical training.

Method

We characterized the surface profile of the spinal dura and its mechanical properties (Young's moduli) with a distinction of its inherent anatomical sites (i.e., the cervical and lumbar regions as well as the dorsal and ventral sides of the spinal cord).

Findings

Although the obtained Young's moduli exhibited no considerable difference between the aforementioned anatomical sites, our results suggested that the wrinkles structurally formed along the longitudinal direction would relieve stress concentration on the dural surface under in vivo and supraphysiological conditions, enabling mechanical protection of the dural tissue from a blunt impact force that was externally applied to the spine.

Interpretation

This study provides fundamental data that can be used for accurately predicting cerebrospinal fluid leakage due to blunt impact trauma.

表面轮廓对猪硬脑膜机械特性的影响
背景脑脊液穿透脊膜漏是一种难以诊断和治疗的疾病。此外,其基本机制仍不清楚。考虑到硬脑膜在结构上是三层脑膜中最坚固、最外层的膜,我们假设硬脑膜机械性撕裂会引发自发性脑脊液漏,尤其是当涉及创伤性加载事件时。因此,精确的硬脑膜生物力学特性对于改进计算模型是不可或缺的,而计算模型有助于预测钝性撞击损伤以及为移植和手术训练创造人工替代物、结果虽然所获得的杨氏模量在上述解剖部位之间没有明显差异,但我们的结果表明,在体内和超生理条件下,沿纵向形成的褶皱结构可缓解硬脊膜表面的应力集中,使硬脊膜组织在受到外部钝性冲击力时得到机械保护。释义 这项研究提供了基本数据,可用于准确预测钝性撞击创伤导致的脑脊液泄漏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Clinical Biomechanics
Clinical Biomechanics 医学-工程:生物医学
CiteScore
3.30
自引率
5.60%
发文量
189
审稿时长
12.3 weeks
期刊介绍: Clinical Biomechanics is an international multidisciplinary journal of biomechanics with a focus on medical and clinical applications of new knowledge in the field. The science of biomechanics helps explain the causes of cell, tissue, organ and body system disorders, and supports clinicians in the diagnosis, prognosis and evaluation of treatment methods and technologies. Clinical Biomechanics aims to strengthen the links between laboratory and clinic by publishing cutting-edge biomechanics research which helps to explain the causes of injury and disease, and which provides evidence contributing to improved clinical management. A rigorous peer review system is employed and every attempt is made to process and publish top-quality papers promptly. Clinical Biomechanics explores all facets of body system, organ, tissue and cell biomechanics, with an emphasis on medical and clinical applications of the basic science aspects. The role of basic science is therefore recognized in a medical or clinical context. The readership of the journal closely reflects its multi-disciplinary contents, being a balance of scientists, engineers and clinicians. The contents are in the form of research papers, brief reports, review papers and correspondence, whilst special interest issues and supplements are published from time to time. Disciplines covered include biomechanics and mechanobiology at all scales, bioengineering and use of tissue engineering and biomaterials for clinical applications, biophysics, as well as biomechanical aspects of medical robotics, ergonomics, physical and occupational therapeutics and rehabilitation.
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