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3D multiscale imaging of human vocal folds using synchrotron X-ray microtomography in phase retrieval mode

机译:在相位检索模式下使用同步加速器X射线显微断层摄影术对人的声带进行3D多尺度成像

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摘要

Human vocal folds possess outstanding abilities to endure large, reversible deformations and to vibrate up to more than thousand cycles per second. This unique performance mainly results from their complex specific 3D and multiscale structure, which is very difficult to investigate experimentally and still presents challenges using either confocal microscopy, MRI or X-ray microtomography in absorption mode. To circumvent these difficulties, we used high-resolution synchrotron X-ray microtomography with phase retrieval and report the first ex vivo 3D images of human vocal-fold tissues at multiple scales. Various relevant descriptors of structure were extracted from the images: geometry of vocal folds at rest or in a stretched phonatory-like position, shape and size of their layered fibrous architectures, orientation, shape and size of the muscle fibres as well as the set of collagen and elastin fibre bundles constituting these layers. The developed methodology opens a promising insight into voice biomechanics, which will allow further assessment of the micromechanics of the vocal folds and their vibratory properties. This will then provide valuable guidelines for the design of new mimetic biomaterials for the next generation of artificial larynges.
机译:人声折叠具有出色的承受大的,可逆的变形并每秒振动超过一千次的能力。这种独特的性能主要来自其复杂的特定3D和多尺度结构,这很难通过实验进行研究,但在吸收模式下使用共聚焦显微镜,MRI或X射线显微断层照相术仍面临挑战。为了克服这些困难,我们使用了具有相位恢复功能的高分辨率同步X射线显微断层照相术,并报告了人声折叠组织的第一张离体3D图像,具有多个比例。从图像中提取了各种相关的结构描述符:静止或处于延伸的发声状位置时的声带几何形状,分层纤维结构的形状和大小,肌肉纤维的方向,形状和大小以及一组胶原和弹性纤维束构成这些层。发达的方法学为语音生物力学打开了广阔的前景,这将允许进一​​步评估声带的微力学及其振动特性。然后,这将为下一代人工喉的新型模拟生物材料的设计提供有价值的指导。

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