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Hollow Polypropylene Yarns as a Biomimetic Brain Phantom for the Validation of High-Definition Fiber Tractography Imaging

机译:空心聚丙烯纱作为仿生脑幻影的高清晰度纤维束成像成像的验证。

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Current brain imaging methods largely fail to provide detailed information about the location and severity of axonal injuries and do not anticipate recovery of the patients with traumatic brain injury. High-definition fiber tractography appears as a novel imaging modality based on water motion in the brain that allows for direct visualization and quantification of the degree of axons damage, thus predicting the functional deficits due to traumatic axonal injury and loss of cortical projections. This neuroimaging modality still faces major challenges because it lacks a "gold standard" for the technique validation and respective quality control. The present work aims to study the potential of hollow polypropylene yarns to mimic human white matter axons and construct a brain phantom for the calibration and validation of brain diffusion techniques based on magnetic resonance imaging, including high-definition fiber tractography imaging. Hollow multifilament polypropylene yarns were produced by melt-spinning process and characterized in terms of their physicochemical properties. Scanning electronic microscopy images of the filaments cross section has shown an inner diameter of approximately 12 pm, confirming their appropriateness to mimic the brain axons. The chemical purity of polypropylene yarns as well as the interaction between the water and the filament surface, important properties for predicting water behavior and diffusion inside the yarns, were also evaluated. Restricted and hindered water diffusion was confirmed by fluorescence microscopy. Finally, the yarns were magnetic resonance imaging scanned and analyzed using high-definition fiber tractography, revealing an excellent choice of these hollow polypropylene structures for simulation of the white matter brain axons and their suitability for constructing an accurate brain phantom.
机译:当前的脑成像方法在很大程度上不能提供关于轴突损伤的位置和严重性的详细信息,并且不能预期患有脑损伤的患者的康复。高清晰度纤维束摄影术是一种基于大脑中水运动的新颖成像方式,可以直接可视化和量化轴突损伤的程度,从而预测由于创伤性轴突损伤和皮质突起丧失而引起的功能缺陷。这种神经影像学方法仍然面临重大挑战,因为它缺乏技术验证和相应质量控制的“金标准”。本工作旨在研究中空聚丙烯纱线模仿人类白质轴突的潜力,并构建基于磁共振成像(包括高清晰度纤维束成像)的脑扩散技术,用于校准和验证脑扩散技术。中空复丝聚丙烯纱线是通过熔纺工艺生产的,并根据其理化特性进行了表征。细丝横截面的扫描电子显微镜图像显示了大约12 pm的内径,证实了它们适合模拟脑轴突。还评估了聚丙烯纱线的化学纯度以及水与长丝表面之间的相互作用,预测水行为和纱线内部扩散的重要性能。通过荧光显微镜证实了水的扩散受到限制和阻碍。最终,对纱线进行了磁共振成像扫描,并使用高清纤维束成像技术进行了分析,结果表明,这些空心聚丙烯结构可用于模拟白质脑轴突,并且非常适合构建精确的人体模型,因此是一个绝佳的选择。

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