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Characterization of the mechanical behavior of the optic nerve sheath and its role in spaceflight-induced ophthalmic changes

机译:光神经护套的力学行为的表征及其在太空诱导的眼科变化中的作用

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Visual impairment and intracranial pressure (VIIP) syndrome is characterized by a number of permanent ophthalmic changes, including loss of visual function. It occurs in some astronauts during long-duration spaceflight missions. Thus, understanding the pathophysiology of VIIP is currently a major priority in space medicine research. It is hypothesized that maladaptive remodeling of the optic nerve sheath (ONS), in response to microgravity-induced elevations in intracranial pressure (ICP), contributes to VIIP. However, little is known about ONS biomechanics. In this study, we developed a custom mechanical testing system that allowed for unconfined lengthening, twisting, and circumferential distension of the porcine ONS during inflation and axial loading. Data were fit to a four-fiber family constitutive equation to extract material and structural parameters. Inflation testing showed a characteristic "cross-over point" in the pressure-diameter curves under different axial loads in all samples that were tested; the cross-over pressure was mmHg (). Large sample-to-sample variations were observed in the circumferential strain, while only modest variations were observed in the circumferential stress. Multiphoton microscopy revealed that the collagen fibers of the ONS were primarily oriented axially when the tissue was loaded. The existence of this cross-over behavior is expected to be neuroprotective, as it would avoid optic nerve compression during routine changes in gaze angle, so long as ICP was within the normal range. Including these observations into computational models of VIIP will help provide insight into the pathophysiology of VIIP and could help identify risk factors and potential interventions.
机译:视觉损伤和颅内压(VIIP)综合征的特征在于许多永久性眼科变化,包括视觉功能的丧失。它发生在一些宇航员在长期空空航天任务期间。因此,了解VIIP的病理生理学目前是太空医学研究的主要优先事项。假设视神经护套(ONS)的适应性重构,响应于微重力诱导的颅内压(ICP),有助于VIIP。然而,关于ONS生物力学知之甚少。在这项研究中,我们开发了一种定制的机械测试系统,允许在充气和轴向载荷期间猪切割的非整合延长,扭曲和周向倾斜。数据适合于四纤维家族本构方程,以提取材料和结构参数。通胀测试在所有测试的所有样品中显示出在不同轴向载荷下的压力直径曲线中的特征“交叉点”;交叉压力是mmhg()。在圆周应变中观察到大的样品到样品变化,而在圆周应力中仅观察到适度的变化。多光子显微镜显示,当加载组织时,ON的胶原纤维主要轴向定向。预计这种交叉行为的存在是神经保护的,因为它将在凝视角度的常规变化期间避免视神经压缩,只要ICP在正常范围内。将这些观察结果包括在VIIP的计算模型中,将有助于深入了解VIIP的病理生理学,并有助于识别危险因素和潜在干预措施。

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