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人类硬脑膜微观结构的形态力学图谱

Morpho-mechanical mapping of human dura mater microstructure.

作者信息

Niestrawska Justyna Anna, Rodewald Marko, Schultz Constanze, Quansah Elsie, Meyer-Zedler Tobias, Schmitt Michael, Popp Jürgen, Tomasec Igor, Ondruschka Benjamin, Hammer Niels

机构信息

Division of Macroscopic and Clinical Anatomy Gottfried Schatz Research Center, Medical University of Graz, Austria.

Leibniz Institute of Photonic Technology, Member of Leibniz Health Technologies, Member of the Leibniz Centre for Photonics in Infection Research (LPI), Jena Germany; Institute of Physical Chemistry (IPC) and Abbe Center of Photonics (ACP), Friedrich Schiller University Jena, Member of the Leibniz Centre for Photonics in Infection Research (LPI), Jena, Germany.

出版信息

Acta Biomater. 2023 Oct 15;170:86-96. doi: 10.1016/j.actbio.2023.08.024. Epub 2023 Aug 19.

Abstract

The human dura mater is known to impact vastly traumatic brain injury mechanopathology. In spite of this involvement, dura mater is typically neglected in computational and physical human head models. The lack of location-dependent microstructural and related mechanical data of dura mater may be considered a rationale behind this simplification. The anisotropic nature of dura mater under various loading conditions so far remains unelucidated. Furthermore, principal collagen fiber orientation is yet to be quantified for a morpho-mechanically-informed material model on the dura mater. This study aims to assess how location-dependent mechanical anisotropy is linked to principal collagen fiber orientation. Uniaxial extension tests were performed in a heated tissue bath for 60 samples from six individuals and correlated to the three-dimensional collagen structure in four individuals using second-harmonic generation (SHG) imaging. Failure stress and stretch at failure, elastic modulus, and a microstructurally motivated material model were integrated to examine local differences in dura mater morpho-mechanics. The quantitative observation of collagen fiber orientation and dispersion confirmed that collagen is highly aligned in the human dura mater and that both fiber orientation and dispersion differ depending on the location investigated. This observation provides a possible explanation for the previously observed isotropic mechanical behavior, as the main collagen fiber direction is not oriented along the anterior-posterior or medial-lateral direction at most of the mapped locations. Additionally, these site-dependent structural properties have implications for the mechanical load response and therefore potentially for the regional functions dura mater has to fulfill. The here chosen non-symmetrical fiber dispersion material model fits the data well and provides a comprehensive parameter base for further studies and future finite element models. STATEMENT OF SIGNIFICANCE: The human dura mater greatly affects traumatic brain injury mechanisms, but it is often ignored in computational and physical head models. This is because there is a lack of detailed microstructural and mechanical data specific to the dura mater. Its anisotropic nature and collagen fiber orientation have not been fully understood, hindering the development of an accurate material model. Hence, this study combines morphological data on collagen fiber orientation and dispersion at multiple locations of human cranial dura mater, and links microstructure to location-specific load-displacement behavior. It provides microstructurally informed mechanical information towards realistic head models for predicting location-dependent tissue behavior and failure for assessing brain injury and graft material development.

摘要

已知人类硬脑膜对创伤性脑损伤的力学病理学有巨大影响。尽管有这种关联,但在人体头部的计算模型和物理模型中,硬脑膜通常被忽视。缺乏硬脑膜位置相关的微观结构和相关力学数据,可能是这种简化的一个原因。到目前为止,硬脑膜在各种加载条件下的各向异性性质仍未阐明。此外,对于硬脑膜的形态力学信息材料模型,主要胶原纤维取向尚未得到量化。本研究旨在评估位置相关的力学各向异性如何与主要胶原纤维取向相关联。在加热的组织浴中对来自六个人的60个样本进行了单轴拉伸试验,并使用二次谐波产生(SHG)成像将其与四个人的三维胶原结构相关联。整合了破坏应力、破坏时的拉伸、弹性模量和一个基于微观结构的材料模型,以研究硬脑膜形态力学的局部差异。对胶原纤维取向和分散的定量观察证实,胶原在人类硬脑膜中高度排列,并且纤维取向和分散因所研究的位置而异。这一观察结果为先前观察到的各向同性力学行为提供了一种可能的解释,因为在大多数映射位置,主要胶原纤维方向并非沿前后或内外方向取向。此外,这些位点相关的结构特性对机械载荷响应有影响,因此可能对硬脑膜必须履行的区域功能有影响。这里选择的非对称纤维分散材料模型与数据拟合良好,并为进一步研究和未来的有限元模型提供了全面的参数基础。重要性声明:人类硬脑膜对创伤性脑损伤机制有很大影响,但在计算和物理头部模型中经常被忽略。这是因为缺乏特定于硬脑膜的详细微观结构和力学数据。其各向异性性质和胶原纤维取向尚未完全理解,阻碍了准确材料模型的开发。因此,本研究结合了人类颅硬脑膜多个位置的胶原纤维取向和分散的形态学数据,并将微观结构与特定位置的载荷 - 位移行为联系起来。它为逼真的头部模型提供了基于微观结构的力学信息,用于预测特定位置的组织行为和破坏,以评估脑损伤和移植材料的开发。

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